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 PRODUCT DATASHEET
AAT2786
SystemPowerTM
General Description
The AAT2786 is a dual output power solution. It includes a 1.5A, 1.4MHz, high-efficiency step-down converter and a high performance 150mA LDO regulator. The stepdown regulator output voltage is adjustable from 0.6V to VIN. The LDO regulator has a factory preset fixed output voltage from 1.2V to 3.3V. The step-down converter consumes only 42A of no-load quiescent current and is designed to maintain high efficiency throughout the load range. The step-down converter has ultra-low RDS(ON) integrated MOSFETs and can operate up to 100% duty cycle to enable high output voltage, high current applications which require a low dropout threshold. The AAT2786 provides excellent transient response and high output accuracy across the operating range. Pulling the MODE/SYNC pin high enables "PWM Only" mode, maintaining constant frequency and low output ripple across the operating range. Alternatively, the converter may be synchronized to an external clock input via the MODE/SYNC pin. The MicroPower low dropout linear regulator in the AAT2786 has been specifically designed for high-speed turn-on and turn-off performance, fast transient response, and good noise and power supply ripple rejection (PSRR), making it ideal for powering sensitive circuits with fast switching requirements. Over-temperature and short-circuit protection safeguard the AAT2786 and system components from damage.
1.5A Step-Down Converter and 150mA LDO
Features
* VIN Range : 2.5V to 5.5V * 1.5A Step-Down Converter VOUT Range: 0.6V to VIN 95% Peak Efficiency High Efficiency across load range 42A No Load Quiescent Current Optional "PWM Only" Low Noise Mode Current limit and soft start * 150mA LDO Regulator VOUT Range: 1.2V to 3.3V (Fixed) High Power Supply Rejection Ratio Low Output Noise * Independent Enable Pins * Integrated Power MOSFETs * Over-Temperature Protection * TDFN34-16 Package * -40C to +85C Temperature Range
Applications
* * * * * Cellular and Smart Phones PDAs, Palmtops Digital Still and Video Cameras Portable Instruments Battery-Powered Applications
Typical Application
U1 BUCK IN R1 100 C1 opt C2 10F C3 1F ON/OFF ON/OFF LDO IN ON/OFF C6 1F C8 10nF
16 15 12
L1 LX LX FB
1
VP VP VIN BUCK_EN MODE/SYNC LDOIN LDO_EN BYP
BUCK OUT 3.3H R2 Adj C5 Opt
2 5
C4 22F
13 14
AAT2786IRN
GND
4
R3 59k
11 9 8
LDO_OUT
6
LDO OUT
PGND
3
C7 2.2F
7
10
N/C
LDO_GND
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1
PRODUCT DATASHEET
AAT2786
SystemPowerTM
Pin Descriptions
Pin #
1, 2 3 4 5 6 7 8 9 10 11 12 13 14 15,16
1.5A Step-Down Converter and 150mA LDO
Symbol
LX PGND GND FB LDOOUT LDO_GND BYP LDO_EN N/C LDOIN VIN BUCK_EN MODE/SYNC VP
Description
Step-down converter switching node. Connect the output inductor to this pin. The switching node is internally connected to the drain of both high- and low-side MOSFETs. Step-down converter main power ground return pin. Connect to the output and input capacitor return. Non-power signal ground pin. Step-down converter feedback input pin. This pin is connected either directly to the converter output or to an external resistive divider for an adjustable output. LDO output pin; should be decoupled with 2.2F ceramic capacitor. LDO ground connection pin. LDO bypass capacitor connection; to improve AC ripple rejection, connect a 10nF capacitor to GND. This will also provide a soft start function. LDO enable pin; this pin should not be left floating. When pulled low, the LDO PMOS pass transistor turns off and all internal circuitry enters low-power mode, consuming less than 1A. Open LDO input voltage pin; should be decoupled with 1F or greater capacitor. Step-down converter power supply. Supplies power for the internal circuitry. Step-down converter enable pin. A logic low disables the step-down converter and it consumes less than 1A of current. When connected high, it resumes normal operation. Connect to ground for Light-Load/PWM mode and optimized efficiency throughout the load range. Connect high for low noise PWM operation under all operating conditions. Connect to an external clock for synchronization (PWM only). Step-down converter input voltage for the power switches.
Pin Configuration
TDFN34-16 (Top View)
LX LX PGND GND FB LDOOUT LDO_GND BYP
1 2 3 4 5 6 7 8
16 15 14 13 12 11 10 9
VP VP MODE/SYNC BUCK_EN VIN LDOIN N/C LDO_EN
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2786.2008.04.1.0
PRODUCT DATASHEET
AAT2786
SystemPowerTM
Absolute Maximum Ratings
TA = 25C unless otherwise noted. Symbol
VIN VLX VFB VN VLDOIN VENIN(MAX) TJ TLEAD
1.5A Step-Down Converter and 150mA LDO
Description
VIN, VP to GND LX Pin to GND FB Pin to GND MODE/SYNC, BUCK_EN to GND VLDOIN to LDO_GND LDO_EN to LDO_GND Maximum Junction Operating Temperature Maximum Soldering Temperature (at leads, 10 sec)
Value
6.0 -0.3 to VIN + 0.3 -0.3 to VIN + 0.3 -0.3 to 6.0 6.0 -0.3 to VIN + 0.3 -40 to +150 300
Units
V
C
Thermal Information
Symbol
PD JA VLDOIN
Description
Maximum Power Dissipation1 Thermal Resistance LDO Input Voltage
Value
2.0 50 + VDO) to 5.5
Units
W C/W V
(VLDOUT
1. Derate 20mW/C above 25C ambient temperature. Stresses above those listed in Absolute Maximum Ratings may cause permanent damage to the device. Functional operation at conditions other than the operating conditions specified is not implied. 2. Mounted on an FR4 board. 3. To calculate minimum input voltage, use the following equation: VIN(MIN) = VOUT(MAX) + VDO(MAX) as long as VIN 2.5V.
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
Electrical Characteristics1
1.5A Step-Down Converter and 150mA LDO
VIN=3.6V; TA = -40oC to 85oC unless otherwise noted. Typical values are at TA = 25oC. Symbol Description Conditions Min
2.5 0.6 VIN Rising Hysteresis VIN Falling IOUT = 0A to 1.5A, VIN = 2.4V to 5.5V No Load VEN = GND 150 1.7 -3.0 42 1.8 0.120 0.085 VIN = 5.5V, VLX = 0 to VIN ILOAD = 0A to 1.5A VIN = 2.4V to 5.5V No Load, TA = 25C VOUT = 1.0V TA = 25C From Enable to Output Regulation 1.12 0.60 1.4 150 140 15 0.6 1.4 VIN = VEN = 5.5V 1.0 0.591 1.0 0.5 0.2 0.60 0.609 0.2 1.68 3.0 3.0 90 1.0
Typ
Max
5.5
Units
V V
Step-Down Converter VIN Input Voltage VOUT Output Voltage Range VUVLO VOUT IQ ISHDN ILIM RDS(ON)H RDS(ON)L ILXLEAK VLOADREG VLINEREG/ VIN VFB UVLO Threshold Output Voltage Tolerance Quiescent Current Shutdown Current Current Limit High Side Switch On-Resistance Low Side Switch On-Resistance LX Leakage Current Load Regulation Line Regulation
VIN
2.5
V
mV V % A A A A % %/V V A MHz s C C V V A
Feedback Threshold Voltage Accuracy (Adjustable Version) IFB FB Leakage Current Internal Oscillator Frequency FOSC Synchronous Clock Start-Up Time TS TSD Over-Temperature Shutdown Threshold THYS Over-Temperature Shutdown Hysteresis MODE/SYNC VMODE/SYNC(L) Enable Threshold Low VMODE/SYNC(H) Enable Threshold High IMODE/SYNC Enable Leakage Current
1. The AAT2786 is guaranteed to meet performance specifications over the -40C to +85C operating temperature range and is assured by design, characterization, and correlation with statistical process controls.
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2786.2008.04.1.0
PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Electrical Characteristics (continued)
VLDOIN = VOUT(NOM) + 1V for VOUT options greater than 1.5V. VIN = 2.5 for VOUT 1.5V. IOUT = 1mA, COUT = 2.2F, CIN = 1F, TA = -40C to +85C, unless otherwise noted. Typical values are TA = 25C. Symbol
VLDOOUT ILDOOUT VDO ISC IQ ISD VOUT/ VOUT*VIN VOUT(line) VOUT(load) PSRR eN TSD THYS TC Enable VIL VIH IEN_BUCK IEN_LDO tENDLY
Description
Output Voltage Tolerance Output Current Dropout Voltage2, 3 Short-Circuit Current Ground Current Shutdown Current Line Regulation Dynamic Line Regulation Dynamic Load Regulation Power Supply Rejection Ratio Output Noise Over-Temperature Shutdown Threshold Over-Temperature Shutdown Hysteresis Output Voltage Temperature Coefficient Enable Enable Enable Enable Enable Threshold Low Threshold High Leakage Current Leakage Current Delay Time
Conditions
TA = 25C ILDOOUT = 1mA to 150mA TA = -40C to 85C VLDOOUT > 1.2V ILDOOUT = 150mA VLDOOUT < 0.4V VIN = 5V, No Load, EN = VIN VIN = 5V, EN = 0V VIN = VOUT + 1 to 5.0V VIN = VLDOOUT + 1V to VLDOOUT + 2V, ILDOOUT = 150mA, TR/TF = 2s ILDOOUT = 1mA to 150mA, TR < 5s 1 kHz ILDOOUT = 10mA, 10kHz CBYP = 10nF 1MHz Noise Power BW = 300Hz - 50kHz
Min
-1.5 -2.5 150
Typ
Max
1.5 2.5
Units
% mA mV mA A A %/V mV mV dB Vrms C C ppm/C
LDO Regulator
200 600 70
300 125 1 0.09
2.5 30 67 47 45 50 145 12 22 0.6 1.4
VEN_BUCK = 5V VEN_LDO = 5V BYP = Open
1 1.0 15
V V A A s
1. VDO is defined as VLDOIN - VLDOOUT when VLDOOUT is 98% of nominal. 2. For VLDOOUT < 2.3V, VDO = 2.5V - VLDOOUT.
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Typical Characteristics-Step-Down Converter
Efficiency vs. Output Current
(Light-Load Mode; VOUT = 3.3V)
100 0.50
Load Regulation
(Light-Load Mode; VOUT = 3.3V)
VIN = 3.6V
90
Efficiency (%)
80 70 60 50 40 0.1
VIN = 4.2V
VIN = 5.0V
VOUT Error (%)
0.25
VIN = 3.6V
VIN = 4.2V
0.00
-0.25
VIN = 5.0V
1
10
100
1000
10000
-0.50 0.1
1
10
100
1000
10000
Output Current (mA)
Output Current (mA)
Efficiency vs. Output Current
(PWM Mode; VOUT = 3.3V)
100 0.50
Load Regulation
(PWM Mode; VOUT = 3.3V)
VIN = 3.6V
80
Efficiency (%)
60 40 20 0 1.0
VIN = 5.0V VIN = 4.2V
VOUT Error (%)
0.25
VIN = 3.6V
VIN = 5.0V
0.00
VIN = 4.2V
-0.25
10
100
1000
10000
-0.50 0.1
1
10
100
1000
10000
Output Current (mA)
Output Current (mA)
Efficiency vs. Output Current
(Light-Load Mode; VOUT = 2.5V)
100 0.50
Load Regulation
(Light-Load Mode; VOUT = 2.5V)
VIN = 2.7V
90
Efficiency (%)
80
VIN = 3.6V
70 60 50 0.1 1 10
VIN = 4.2V
VOUT Error (%)
0.25
VIN = 2.7V
VIN = 3.6V
0.00
-0.25
VIN = 4.2V
100
1000
10000
-0.50 0.1
1
10
100
1000
10000
Output Current (mA)
Output Current (mA)
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2786.2008.04.1.0
PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Typical Characteristics-Step-Down Converter
Efficiency vs. Output Current
(PWM Mode; VOUT = 2.5V)
100 90 80 100
Efficiency vs. Output Current
(PWM Mode; VOUT = 2.5V)
90 80
VIN = 2.7V Efficiency (%)
VIN = 2.7V
Efficiency (%)
70 60 50 40 30 20 10 0 1
70 60 50 40 30 20 10 0
VIN = 5.0V VIN = 4.2V VIN = 3.6V
10 100 1000 10000
VIN = 5.0V VIN = 4.2V VIN = 3.6V
1 10 100 1000 10000
Output Current (mA)
Output Current (mA)
Efficiency vs. Output Current
(Light-Load Mode; VOUT = 1.8V)
100 90 0.50
Load Regulation
(Light-Load Mode; VOUT = 1.8V)
VIN = 2.7V VOUT Error (%)
0.25
Efficiency (%)
80 70 60 50 40 0.1
VIN = 3.6V
VIN = 2.7V
VIN = 3.6V
VIN = 4.2V
0.00
-0.25
VIN = 4.2V
1 10 100 1000 10000 -0.50 0.1 1 10 100 1000
Output Current (mA)
Output Current (mA)
Efficiency vs. Output Current
(PWM Mode; VOUT = 1.8V)
100 90 80 0.50
Load Regulation
(PWM Mode; VOUT = 1.8V)
Efficiency (%)
70 60 50 40 30 20 10 0 1 10
VIN = 4.2V
VOUT Error (%)
VIN = 2.7V
0.25
VIN = 2.7V
VIN = 3.6V
0.00
VIN = 3.6V
-0.25
VIN = 4.2V
100
1000
10000
-0.50 0.1
1
10
100
1000
10000
Output Current (mA)
Output Current (mA)
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Typical Characteristics-Step-Down Converter
Efficiency vs. Output Current
(Light-Load Mode; VOUT = 1.2V)
100 90 0.50
Load Regulation
(Light-Load Mode; VOUT = 1.2V)
VIN = 2.7V VOUT Error (%)
0.25
Efficiency (%)
80 70 60 50 40 30 0.1 1 10 100 1000 10000
VIN = 2.7V
VIN = 3.6V
VIN = 3.6V
VIN = 4.2V
0.00
-0.25
VIN = 4.2V
-0.50 0.1
1
10
100
1000
10000
Output Current (mA)
Output Current (mA)
Efficiency vs. Output Current
(PWM Mode; VOUT = 1.2V)
100 90 80 0.50
Load Regulation
(PWM Mode; VOUT = 1.2V)
VIN = 2.7V VIN = 4.2V VIN = 3.6V VOUT Error (%)
Efficiency (%)
70 60 50 40 30 20 10 0 1 10 100
0.25
VIN = 2.7V
VIN = 3.6V
0.00
-0.25
VIN = 4.2V
1000
10000
-0.50
0.1
1
10
100
1000
10000
Output Current (mA)
Output Current (mA)
Output Voltage vs. Temperature
(VIN = 3.6V; VOUT = 1.8V; IOUT = 1A) Output Voltage Change (%)
1.0 0.6 0.4 0.2 0 -0.2 -0.4 -0.6 -0.8 -1.0 -40 -20 0 20 40 60 80 70 0.8 65 60 55 50 45 40 35 30 2.7
Supply Current vs. Supply Voltage
(VOUT = 1.8V; No Load; Light-Load Mode)
Supply Current (A)
85C
25C
-40C
3.1 3.5 3.9 4.3 4.7 5.1 5.5
Temperature (C)
Supply Voltage (V)
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2786.2008.04.1.0
PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Typical Characteristics-Step-Down Converter
Switching Frequency vs. Temperature
(VIN = 3.6V; VOUT = 1.8V; IOUT = 1A) Switching Frequency (MHz) Output Voltage Error (%)
1.40 1.38 1.36 1.34 1.32 1.30 1.28 1.26 1.24 -40 -20 0 20 40 60 80 0.12 0.10 0.08 0.06 0.04 0.02 0.00 -0.02 -0.04 2.7 2.9 3.1 3.3 3.5 3.7 3.9 4.1 4.3 4.5 4.7 4.9 5.1 5.3 5.5
Line Regulation
(VOUT = 1.8V; IOUT = 1A)
Temperature (C)
Supply Voltage (V)
Switching Frequency vs. Input Voltage
(IOUT = 1A) Switching Frequency (MHz)
1.40 1.39 1.38 1.37 1.36 1.35 1.34 1.33 1.32 2.7 2.9 3.1 3.3 3.5 3.7 3.9 4.1 4.3 4.5 4.7 4.9 5.1 5.3 5.5
Enable Soft Start
(VOUT = 3.6V; IOUT = 1.5A)
VOUT = 1.8V VOUT = 2.5V
EN (2V/div) VOUT (1V/div) IIN (500mA/div) Time (100s/div)
VOUT = 3.3V
Input Voltage (V)
P-Channel RDS(ON) vs. Input Voltage
180 170 160 150
N-Channel RDS(ON) vs. Input Voltage
120C RDS(ON) (m)
140 130 120 110 100 90 80 70 60
120C
RDS(ON) (m)
150 140 130 120 110 100 90 2.7 2.9 3.1 3.3 3.5 3.7 3.9 4.1 4.3 4.5 4.7 4.9 5.1 5.3 5.5
85C 25C
85C 25C
2.7 2.9 3.1 3.3 3.5 3.7 3.9 4.1 4.3 4.5 4.7 4.9 5.1 5.3 5.5
Input Voltage (V)
Input Voltage (V)
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Typical Characteristics-Step-Down Converter
Heavy Load Switching Waveform
(PWM Mode; VIN = 3.6V; VOUT = 1.8V; 1.5A Load) Output Voltage (AC coupled) (top) (mV)
4.0 2.0 0.0 -2.0 -4.0 -6.0 -8.0 -10.0 -12.0 2.6
Light Load Switching Waveform
(PWM Mode; VIN = 3.6V; VOUT = 1.8V; 1mA Load) Output Voltage (AC coupled) (top) (mV)
4.0 2.0 0.0 -2.0 -4.0 -6.0 -8.0 -10.0 -12.0 1200
Inductor Ripple Current (bottom) (mA)
Inductor Ripple Current (bottom) (mA)
2.4 2.2 2.0 1.8 1.6 1.4 1.2 1.0
1000 800 600 400 200 0 -200 -400
Time (2.5s/div)
Time (2.5s/div)
Light Load Switching Waveform
(Light-Load Mode; VIN = 3.6V; VOUT = 1.8V; 1mA Load) Output Voltage (AC coupled) (top) (mV)
8.0 4.0 0.0 -4.0 -8.0 -12.0 -16.0 -20.0 -24.0 700 2.5
Load Transient Response
(VIN = 3.6V; VOUT = 1.8V; CFF = 100pF)
3.5 3.0 2.5 2.0 1.5 1.0 0.5 0.0 -0.5
Inductor Ripple Current (bottom) (mA)
600 500 400 300 200 100 0 -100
2.0
Output Voltage (top) (V)
1.5 1.0 0.5 0.0 -0.5 -1.0 -1.5
Load Current (bottom) (A)
Time (100s/div)
Time (50s/div)
Load Transient Response
(VIN = 3.6V; VOUT = 1.8V; No CFF)
2.5 2.0 3.5 3.0 5.0 4.5
Line Transient Response
(VOUT = 1.8V; 1.5A Load)
3.0 2.8 2.6 2.4 2.2 2.0 1.8 1.6 1.4
Output Voltage (top) (V)
1.0 0.5 0.0 -0.5 -1.0 -1.5
2.0 1.5 1.0 0.5 0.0 -0.5
Input Voltage (top) (V)
1.5
2.5
4.0 3.5 3.0 2.5 2.0 1.5 1.0
Output Voltage (bottom) (V)
Load Current (bottom) (A)
Time (50s/div)
Time (200s/div)
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2786.2008.04.1.0
PRODUCT DATASHEET
AAT2786
SystemPowerTM
Typical Characteristics-LDO
Dropout Voltage vs. Temperature
1.5A Step-Down Converter and 150mA LDO
Dropout Characteristics
3.20
260 240 220 200 180 160 140 120 100 80 60 40 20 0
Dropout Voltage (mV)
Output Voltage (V)
IL = 150mA IL = 100mA
3.00 2.80 2.60
IOUT = 0mA IOUT = 10mA IOUT = 50mA IOUT = 100mA IOUT = 150mA
2.40 2.20 2.00 2.70
IL = 50mA
-40 -30 -20 -10 0 10 20 30 40 50 60 70 80 90 100 110 120
2.80
2.90
3.00
3.10
3.20
Temperature (C)
Input Voltage (V)
Dropout Voltage vs. Output Current
90.00
Ground Current vs. Input Voltage
80.00 70.00 60.00 50.00 40.00 30.00 20.00 10.00 0.00
300
Dropout Voltage (mV)
250 200 150 100 50 0 0 25 50 75 100 125 150
85C 25C -40C
Ground Current (A)
IOUT = 150mA IOUT = 0mA IOUT = 50mA
IOUT = 10mA
2
2.5
3
3.5
4
4.5
Output Current (mA)
Input Voltage (V)
Quiescent Current vs. Temperature
100
Output Voltage vs. Temperature
1.203 1.202
Quiescent Current (A)
90
Output Voltage (V)
-40 -30 -20 -10 0 10 20 30 40 50 60 70 80 90 100 110 120
80 70 60 50 40 30 20 10 0
1.201 1.200 1.199 1.198 1.197 1.196 -40 -30 -20 -10
0
10 20
30
40
50 60
70 80
90 100
Temperature (C)
Temperature (C)
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
Typical Characteristics-LDO
Initial Power-Up Response Time
(CBYP = 10nF) VEN (5V/div)
1.5A Step-Down Converter and 150mA LDO
Turn-Off Response Time
(CBYP = 10nF)
VEN (5V/div)
VOUT (1V/div)
Time (400s/div)
VOUT (1V/div) Time (50s/div)
Turn-On Time From Enable (VIN present)
(CBYP = 10nF)
1200
Over-Current Protection
VEN (5V/div) Output Current (mA) VOUT (1V/div)
Time (5s/div)
1000 800 600 400 200 0 -200
Time (20ms/div)
Line Transient Response
6 3.04 2.90
Load Transient Response
500
VIN
Output Voltage (V)
Input Voltage (V)
5 4 3 2 1 0
3.03 3.02 3.01 3.00
2.85 2.80 2.75 2.70 2.65 2.60
VOUT
400 300 200 100 0
Output Current (mA)
Output Voltage (V)
VOUT
2.99 2.98
IOUT Time (100s/div)
-100
Time (100s/div)
12
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2786.2008.04.1.0
PRODUCT DATASHEET
AAT2786
SystemPowerTM
Typical Characteristics-LDO
AAT2786 Self Noise
(COUT = 10F, ceramic)
Noise Amplitude (V/rtHz)
10
1.5A Step-Down Converter and 150mA LDO
VIH and V IL vs. VIN
1.250 1.225
1
1.200 1.175
VIH
0.1 Band Power: 300Hz to 50kHz = 44.6Vrms/rtHz 100Hz to 100kHz = 56.3Vrms/rtHz
1.150 1.125
0.01
1.100 1.075 100 1000 10000 1.050 2.5 3.0 3.5
VIL
0.001 0.01 0.1 1 10
4.0
4.5
5.0
5.5
Frequency (kHz)
Input Voltage (V)
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
Functional Block Diagram
1.5A Step-Down Converter and 150mA LDO
VIN
Oscillator
VP
Co ntro l Circ uit
LX PGND
MODE/SYNC
GND FB BUCK_EN Bias LDO_EN LDOIN BYP LDOOUT
RLDOFB1
RLDOFB2
LDO_GND
Functional Description
The AAT2786 is a dual output power solution. It includes a 1.5A, 1.4MHz, high-efficiency step-down converter and a high performance 150mA LDO regulator. The stepdown regulator output voltage is adjustable from 0.6V to VIN. The LDO regulator has a factory preset fixed output voltage from 1.2V to 3.3V. The on and off states of the step-down converter and the LDO regulator are independently controlled by separate enable pins.
Step-Down Converter
The step-down converter in the AAT2786 is a high performance 1.5A monolithic step-down converter operating at 1.4MHz switching frequency. It minimizes external component size and optimizes efficiency over the complete load range. Apart from the small bypass input capacitor, only a small L-C filter is required at the output. Typically, a 3.3H inductor and a 22F ceramic capacitor are recommended for a 3.3V output (see table of recommended values).
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2786.2008.04.1.0
PRODUCT DATASHEET
AAT2786
SystemPowerTM
At dropout, the step-down converter duty cycle increases to 100% and the output voltage tracks the input voltage minus the RDS(ON) drop of the P-channel high side MOSFET (plus the DC drop of the external inductor). The device integrates extremely low RDS(ON) MOSFETs to achieve low dropout voltage during 100% duty cycle operation. This is advantageous in applications requiring high output voltages (typically > 2.5V) at low input voltages. The integrated low-loss MOSFET switches can provide greater than 95% efficiency at full load. Light-Load operation maintains high efficiency under light load conditions (typically <150mA). The MODE/SYNC pin allows optional "PWM only" mode. This maintains constant frequency and low output ripple across all load conditions. Alternatively, the IC can be synchronized to an external clock via the MODE/ SYNC input. External synchronization is maintained between 0.6MHz and 3.0MHz. In battery-powered applications, as VIN decreases, the converter dynamically adjusts the operating frequency prior to dropout to maintain the required duty cycle and provide accurate output regulation. Output regulation is maintained until the dropout voltage, or minimum input voltage, is reached. At 1.5A output load, dropout voltage headroom is approximately 200mV. The step-down converter in the AAT2786 typically achieves better than 0.5% output regulation across the input voltage and output load range. A current limit of 2.0A (typical) protects the IC and system components from short-circuit damage. Typical no load quiescent current is 42A. Thermal protection completely disables switching when the maximum junction temperature is detected. The junction over-temperature threshold is 140C with 15C of hysteresis. Once an over-temperature or over-current fault condition is removed, the output voltage automatically recovers. Peak current mode control and optimized internal compensation provide high loop bandwidth and excellent response to input voltage and fast load transient events. Soft start eliminates output voltage overshoot when the step-down converter is enabled. Under-voltage lockout prevents spurious start-up events.
1.5A Step-Down Converter and 150mA LDO
Control Loop
The step-down converter in the AAT2786 is a peak current mode step-down converter. The current through the P-channel MOSFET (high side) is sensed for current loop control, as well as short-circuit and overload protection. A fixed slope compensation signal is added to the sensed current to maintain stability for duty cycles greater than 50%. The peak current mode loop appears as a voltageprogrammed current source in parallel with the output capacitor. The output of the voltage error amplifier programs the current mode loop for the necessary peak switch current to force a constant output voltage for all load and line conditions. Internal loop compensation terminates the transconductance voltage error amplifier output. The reference voltage is internally set to program the converter output voltage greater than or equal to 0.6V.
Soft Start/Enable
Soft start limits the current surge seen at VIN and eliminates output voltage overshoot. When EN_BUCK input is pulled low the step-down converter is forced into a lowpower, non-switching state. The total input current during shutdown is less than 1A.
Current Limit and Over-Temperature Protection
For overload conditions, the peak input current in the step-down converter is limited. To minimize power dissipation and stresses under current limit and short-circuit conditions, switching is terminated after entering current limit for a series of pulses. Switching is terminated for seven consecutive clock cycles after a current limit has been sensed for a series of four consecutive clock cycles. Thermal protection completely disables switching when internal dissipation becomes excessive. The junction over-temperature threshold is 140C with 15C of hysteresis. Once an over-temperature or overcurrent fault conditions is removed, the output voltage automatically recovers.
Under-Voltage Lockout
Internal bias of all circuits is controlled via the VIN input. Under-voltage lockout (UVLO) in the step-down converter guarantees sufficient VIN bias and proper operation of all internal circuitry prior to activation.
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
LDO Functional Description
The LDO regulator in the AAT2786 is intended for applications with output current load requirements from no load to 150mA. The advanced circuit design of the AAT2786 LDO regulator has been specifically optimized for very fast start-up and shutdown timing. This proprietary CMOS LDO has also been tailored for superior transient response characteristics. These traits are particularly important for applications that require fast power supply timing, such as GSM cellular telephone handsets. The high-speed turn-on capability of the LDO regulator is enabled through the implementation of a fast start control circuit, which accelerates the turn-on behavior of fundamental control and feedback circuits. Fast turn-off response time is achieved by an active output pull-down circuit, which is enabled when the LDO regulator is placed in shutdown mode. This active fast shutdown circuit has no adverse effect on normal device operation. The AAT2786 LDO regulator has very fast transient response characteristics, which is an important feature for applications in which fast line and load transient response are required. This rapid transient response behavior is accomplished through the implementation of an active error amplifier feedback control. This proprietary circuit design is unique to this MicroPower LDO regulator. The LDO regulator output has been specifically optimized to function with low-cost, low-ESR ceramic capacitors. However, the design will allow for operation over a wide range of capacitor types. A bypass pin has been provided to allow the addition of an optional voltage reference bypass capacitor to reduce output self noise and increase power supply ripple rejection. Device self noise and PSRR will be improved by the addition of a small ceramic capacitor to this pin. However, increased CBYPASS values may slow down the LDO regulator turn-on time.
1.5A Step-Down Converter and 150mA LDO
When the LDO regulator is in shutdown mode, an internal 1.5k resistor is connected between VOUT and GND. This is intended to discharge COUT when the LDO regulator is disabled. The internal 1.5k has no adverse effect on device turn-on time.
Short-Circuit Protection
The AAT2786 contains an internal short-circuit protection circuit that will trigger when the output load current exceeds the internal threshold limit. Under short-circuit conditions, the output of the LDO regulator will be current limited until the short-circuit condition is removed from the output or LDO regulator package power dissipation exceeds the device thermal limit.
Thermal Protection
The AAT2786 has an internal thermal protection circuit which will turn on when the device die temperature exceeds 150C. The internal thermal protection circuit will actively turn off the LDO regulator output pass device to prevent the possibility of over temperature damage. The LDO regulator output will remain in a shutdown state until the internal die temperature falls back below the 150C trip point. The combination and interaction between the short circuit and thermal protection systems allows the LDO regulator to withstand indefinite short-circuit conditions without sustaining permanent damage.
No-Load Stability
The AAT2786 is designed to maintain output voltage regulation and stability under operational no load conditions. This is an important characteristic for applications where the output current may drop to zero.
Enable Function
The AAT2786 features an LDO regulator enable/ disable function. This pin (EN) is active high and is compatible with CMOS logic. To assure the LDO regulator will switch on, the EN turn-on control level must be greater than 1.5V. The LDO regulator will go into the disable shutdown mode when the voltage on the EN pin falls below 0.6V. If the enable function is not needed in a specific application, it may be tied to VIN to keep the LDO regulator in a continuously on state.
Reverse Output-to-Input Voltage Conditions and Protection
Under normal operating conditions, a parasitic diode exists between the output and input of the LDO regulator. The input voltage should always remain greater than the output load voltage, maintaining a reverse bias on the internal parasitic diode. Conditions where VOUT might exceed VIN should be avoided since this would forward bias the internal parasitic diode and allow excessive current flow into the VOUT pin, possibly damaging the LDO regulator.
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AAT2786
SystemPowerTM
In applications where there is a possibility of VOUT exceeding VIN for brief amounts of time during normal operation, the use of a larger value CIN capacitor is highly recommended. A larger value of CIN with respect to COUT will effect a slower CIN decay rate during shutdown, thus preventing VOUT from exceeding VIN. In applications where there is a greater danger of VOUT exceeding VIN for extended periods of time, it is recommended to place a Schottky diode across VIN to VOUT (connecting the cathode to VIN and anode to VOUT). The Schottky diode forward voltage should be less than 0.45V. This LDO regulator has complete short-circuit and thermal protection. The integral combination of these two internal protection circuits gives the AAT2786 LDO regulator a comprehensive safety system to guard against extreme adverse operating conditions. Device power dissipation is limited to the package type and thermal dissipation properties. Refer to the Thermal Considerations section of this datasheet for details on device operation at maximum output current loads.
1.5A Step-Down Converter and 150mA LDO
Manufacturer's specifications list both the inductor DC current rating, which is a thermal limitation, and the peak current rating, which is determined by the saturation characteristics. The inductor should not show any appreciable saturation under normal load conditions. Some inductors may meet the peak and average current ratings yet result in excessive losses due to a high DCR. Always consider the losses associated with the DCR and its effect on the total converter efficiency when selecting an inductor. The 3.3H CDRH4D28 series Sumida inductor has a 49.2m worst case DCR and a 1.57A DC current rating. At full 1.5A load, the inductor DC loss is 97mW which gives less than 1.5% loss in efficiency for a 1.5A, 3.3V output.
Input Capacitor
Select a 10F to 22F X7R or X5R ceramic capacitor for the input. To estimate the required input capacitor size, determine the acceptable input ripple level (VPP) and solve for C. The calculated value varies with input voltage and is a maximum when VIN is double the output voltage.
Component Selection For Step-Down Converter
Inductor Selection
The step-down converter uses peak current mode control with slope compensation to maintain stability for duty cycles greater than 50%. The output inductor value must be selected so the inductor current down slope meets the internal slope compensation requirements. The internal slope compensation for the adjustable and low voltage fixed versions is 0.75A/s. This equates to a slope compensation that is 75% of the inductor current down slope for a 1.8V output and 1.8H inductor.
CIN =
V VO * 1- O VIN VIN
VPP - ESR * FS IO
VO V 1 * 1 - O = for VIN = 2 * VO VIN VIN 4 CIN(MIN) = 1
VPP - ESR * 4 * FS IO
m= L=
0.75 * VO 0.75 * 1.8V A = = 0.75 L 1.8H s 0.75 * VO 0.75 * 3.3V = 3.3H = m A 0.75 s
Always examine the ceramic capacitor DC voltage coefficient characteristics when selecting the proper value. For example, the capacitance of a 10F, 6.3V, X5R ceramic capacitor with 5.0V DC applied is actually about 6F. The maximum input capacitor RMS current is:
The inductor should be set equal to the output voltage numeric value in micro henries (H). This guarantees that there is sufficient internal slope compensation.
IRMS = IO *
VO V * 1- O VIN VIN
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
The input capacitor RMS ripple current varies with the input and output voltage and will always be less than or equal to half of the total DC load current.
1.5A Step-Down Converter and 150mA LDO
Output Capacitor
The output capacitor limits the output ripple and provides holdup during large load transitions. A 10F to 22F X5R or X7R ceramic capacitor typically provides sufficient bulk capacitance to stabilize the output during large load transitions and has the ESR and ESL characteristics necessary for low output ripple. The output voltage droop due to a load transient is dominated by the capacitance of the ceramic output capacitor. During a step increase in load current, the ceramic output capacitor alone supplies the load current until the loop responds. Within two or three switching cycles, the loop responds and the inductor current increases to match the load current demand. The relationship of the output voltage droop during the three switching cycles to the output capacitance can be estimated by:
VO V * 1- O = VIN VIN
For VIN = 2 * VO
D * (1 - D) =
0.52 =
1 2
I IRMS(MAX) = O 2
The term VIN VIN appears in both the input voltage ripple and input capacitor RMS current equations and is a maximum when VO is twice VIN. This is why the input voltage ripple and the input capacitor RMS current ripple are a maximum at 50% duty cycle. The input capacitor provides a low impedance loop for the edges of pulsed current drawn by the AAT2786. Low ESR/ESL X7R and X5R ceramic capacitors are ideal for this function. To minimize stray inductance, the capacitor should be placed as closely as possible to the IC. This keeps the high frequency content of the input current localized, minimizing EMI and input voltage ripple. The proper placement of the input capacitor (C1) can be seen in the evaluation board layout in the Layout section of this datasheet (see Figure 2). A laboratory test set-up typically consists of two long wires running from the bench power supply to the evaluation board input voltage pins. The inductance of these wires, along with the low-ESR ceramic input capacitor, can create a high Q network that may affect converter performance. This problem often becomes apparent in the form of excessive ringing in the output voltage during load transients. Errors in the loop phase and gain measurements can also result. Since the inductance of a short PCB trace feeding the input voltage is significantly lower than the power leads from the bench power supply, most applications do not exhibit this problem. In applications where the input power source lead inductance cannot be reduced to a level that does not affect the converter performance, a high ESR tantalum or aluminum electrolytic should be placed in parallel with the low ESR/ESL bypass ceramic capacitor. This dampens the high Q network and stabilizes the system.
VO
V * 1- O
COUT =
3 * ILOAD VDROOP * FS
Once the average inductor current increases to the DC load level, the output voltage recovers. The above equation establishes a limit on the minimum value for the output capacitor with respect to load transients. The internal voltage loop compensation also limits the minimum output capacitor value to 10F. This is due to its effect on the loop crossover frequency (bandwidth), phase margin, and gain margin. Increased output capacitance will reduce the crossover frequency with greater phase margin.
Adjustable Output Resistor Selection
The output voltage on the AAT2786 is programmed with external resistors R1 and R2. To limit the bias current required for the external feedback resistor string while maintaining good noise immunity, the minimum suggested value for R2 is 59k. Although a larger value will further reduce quiescent current, it will also increase the impedance of the feedback node, making it more sensitive to external noise and interference. Table 1 summarizes the resistor values for various output voltages with R2 set to either 59k for good noise immunity or 221k for reduced no load input current.
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
VOUT(V)
0.8 0.9 1.0 1.1 1.2 1.3 1.4 1.5 1.8 1.85 2.0 2.5 3.0 3.3
1.5A Step-Down Converter and 150mA LDO
R2 = 221k R1(k)
75 113 150 187 221 261 301 332 442 464 523 715 887 1000
R2 = 59k R1(k)
19.6 29.4 39.2 49.9 59.0 68.1 78.7 88.7 118 124 137 187 237 267
The AAT2786 has been specifically designed to function with very low ESR ceramic capacitors. For best performance, ceramic capacitors are recommended. Typical output capacitor values for maximum output current conditions range from 1F to 10F. Applications utilizing the exceptionally low output noise and optimum power supply ripple rejection characteristics of the AAT2786 should use 2.2F or greater for COUT. If desired, COUT may be increased without limit. In low output current applications where output load is less than 10mA, the minimum value for COUT can be as low as 0.47F.
Table 1: AAT2786 Resistor Values for Various Output Voltages.
Bypass Capacitor and Low Noise Applications
A bypass capacitor pin is provided to enhance the low noise characteristics of the AAT2786 LDO regulator. The bypass capacitor is not necessary for operation of the AAT2786. However, for best device performance, a small ceramic capacitor should be placed between the bypass pin (BYP) and the device ground pin (GND). The value of CBYP may range from 470pF to 10nF. For lowest noise and best possible power supply ripple rejection performance, a 10nF capacitor should be used. To practically realize the highest power supply ripple rejection and lowest output noise performance, it is critical that the capacitor connection between the BYP pin and GND pin be direct and PCB traces should be as short as possible. Refer to the PCB Layout Recommendations section of this datasheet for examples. There is a relationship between the bypass capacitor value and the LDO regulator turn-on time and turn-off time. In applications where fast device turn-on and turn-off time are desired, the value of CBYP should be reduced. In applications where low noise performance and/ or ripple rejection are less of a concern, the bypass capacitor may be omitted. The fastest device turn on time will be realized when no bypass capacitor is used. DC leakage on this pin can affect the LDO regulator output noise and voltage regulation performance. For this reason, the use of a low leakage, high quality ceramic (NPO or C0G type) or film capacitor is highly recommended.
Component Selection For LDO
Input Capacitor
Typically, a 1F or larger capacitor is recommended for CIN in most applications. A CIN capacitor is not required for basic LDO regulator operation. However, if the AAT2786 is physically located more than three centimeters from an input power source, a CIN capacitor will be needed for stable operation. CIN should be located as close to the device VIN pin as practically possible. CIN values greater than 1F will offer superior input line transient response and will assist in maximizing the highest possible power supply ripple rejection. Ceramic, tantalum, or aluminum electrolytic capacitors may be selected for CIN. There is no specific capacitor ESR requirement for CIN. However, for 150mA LDO regulator output operation, ceramic capacitors are recommended for CIN due to their inherent capability over tantalum capacitors to withstand input current surges from low impedance sources, such as batteries in portable devices.
Output Capacitor
For proper load voltage regulation and operational stability, a capacitor is required between pins VOUT and GND. The COUT capacitor connection to the LDO regulator ground pin should be made as direct as practically possible for maximum device performance.
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
Capacitor Characteristics
Ceramic composition capacitors are highly recommended over all other types of capacitors for use with the AAT2786. Ceramic capacitors offer many advantages over their tantalum and aluminum electrolytic counterparts. A ceramic capacitor typically has very low ESR, is lower cost, has a smaller PCB footprint, and is nonpolarized. Line and load transient response of the LDO regulator is improved by using low-ESR ceramic capacitors. Since ceramic capacitors are non-polarized, they are not prone to incorrect connection damage.
1.5A Step-Down Converter and 150mA LDO
Consult capacitor vendor datasheets carefully when selecting capacitors for LDO regulators.
Thermal Calculations
There are three types of losses associated with the AAT2786 step-down converter: switching losses, conduction losses, and quiescent current losses. Conduction losses are associated with the RDS(ON) characteristics of the power output switching devices. Switching losses are dominated by the gate charge of the power output switching devices. At full load, assuming continuous conduction mode (CCM), a simplified form of the step-down converter and LDO losses is given by:
IO2 * (RDS(ON)H * VOBUCK + RDS(ON)L * [VINBUCK - VOUTBUCK]) VIN(BUCK)
Equivalent Series Resistance
ESR is a very important characteristic to consider when selecting a capacitor. ESR is the internal series resistance associated with a capacitor that includes lead resistance, internal connections, size and area, material composition, and ambient temperature. Typically, capacitor ESR is measured in milliohms for ceramic capacitors and can range to more than several ohms for tantalum or aluminum electrolytic capacitors.
PTOTAL =
+ (tsw * FS * IOBUCK + IQBUCK) * VINBUCK + (VINLDO - VOUTLDO) * IOLDO
Ceramic Capacitor Materials
Ceramic capacitors less than 0.1F are typically made from NPO or C0G materials. NPO and C0G materials generally have tight tolerance and are very stable over temperature. Larger capacitor values are usually composed of X7R, X5R, Z5U, or Y5V dielectric materials. Large ceramic capacitors (i.e., greater than 2.2F) are often available in low-cost Y5V and Z5U dielectrics. These two material types are not recommended for use with LDO regulators since the capacitor tolerance can vary more than 50% over the operating temperature range of the device. A 2.2F Y5V capacitor could be reduced to 1F over temperature; this could cause problems for circuit operation. X7R and X5R dielectrics are much more desirable. The temperature tolerance of X7R dielectric is better than 15%. Capacitor area is another contributor to ESR. Capacitors that are physically large in size will have a lower ESR when compared to a smaller sized capacitor of an equivalent material and capacitance value. These larger devices can improve circuit transient response when compared to an equal value capacitor in a smaller package size.
IQBUCK and IQLDO are the step-down converter and LDO quiescent currents respectively. The term tSW is used to estimate the full load step-down converter switching losses. For the condition where the step-down converter is in dropout at 100% duty cycle, the total device dissipation reduces to:
PTOTAL = IOBUCK2 * RDS(ON)H + (tSW * FS * IBUCK + IQBUCK) * VINBUCK + (VINLDO - VOUTLDO) * IOLDO
Since RDS(ON), quiescent current, and switching losses all vary with input voltage, the total losses should be investigated over the complete input voltage range. Given the total losses, the maximum junction temperature can be derived from the JA for the TDFN34-16 package, which is 50C/W.
TJ(MAX) = PTOTAL * JA + TAMB
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
PCB Layout
The suggested PCB layout for the AAT2786 is shown in Figures 1 and 2. The following guidelines should be used to help ensure a proper layout. 1. The input and output capacitors (C2, C6, and C7) should connect as closely as possible to the input and output pins. R1 and C3 are optional low pass filter components for the IN supply pin for the BUCK if additional noise decupling is required in a noisy system. The connection of L1 to the LX pin should be as short as possible. The feedback trace or FB pin should be separated from any power trace and connect as closely as possible to the load point. Sensing along a high-current load trace will degrade DC load regulation.
1.5A Step-Down Converter and 150mA LDO
5. The resistance of the trace from the load return to PGND should be kept to a minimum. This will help to minimize any error in DC regulation due to differences in the potential of the internal signal ground and the power ground. 6. Connect unused signal pins to ground to avoid unwanted noise coupling. 7. For low output noise and highest possible power supply ripple rejection performance, it is critical to connect the bypass capacitor (C8) and output capacitor (C7) directly to the LDO regulator ground pin. This method will eliminate any load noise or ripple current feedback through the LDO regulator. 8. For good thermal coupling, PCB vias are required from the pad for the TDFN paddle to the bottom ground plane.
2.
3. 4.
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Printed Circuit Board Layout Recommendations
Figure 1: AAT2786 Evaluation Board Component Side Layout.
Figure 2: AAT2786 Evaluation Board Solder Side Layout.
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PRODUCT DATASHEET
AAT2786
BUCK OUT
SystemPowerTM
U1 BUCK IN R1 100 C1 opt C2 10F
16 15 12
1.5A Step-Down Converter and 150mA LDO
TDFN34-16 LX LX FB
1
L1 3.3H
2 5
VP VP VIN
R2 Adj R3 59k
C5 opt
C4 22F
C3 1F
13 14
BUCK_EN MODE/SYNC
GND
4
MODE/SYNC
AAT2786IRN
LDO IN C6 EN LDO 1F
11
LDOIN LDO_EN BYP N/C
LDOOUT
6
LDO OUT
9 8
PGND
3
C7 2.2F
C8 10nF
10
LDO_GND
7
Figure 3: AAT2786 Evaluation Board Schematic.
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Step-Down Converter Design Example
Specifications
VOBUCK = 3.3V @ 1.5A, Pulsed Load ILOAD = 1.5A VOLDO = 2.5V @ 150mA VIN = 2.7V to 4.2V (3.6V nominal) FS = 1.2MHz m = 0.75A/s TAMB = 85C in TDFN34-16 Package
3.3V Buck Output Inductor
L= 0.75 * 3.3V 0.75 * VO = 3.3H (see Table 2) = m A 0.75 s
For Sumida inductor CDRH4D28, 3.3H, DCR = 49.2m max.
I =
VOBUCK V 3.3V 3.3V * 1 - OBUCK = * 1L1 * FS VINBUCK 3.3H * 1.2MHz 4.2V I1 = 1.5A + 0.089A = 1.59A 2
= 179mA
IPK = IOBUCK +
PL1 = IOUTBUCK2 * DCR = 1.5A2 * 49.2m = 110mW
3.3V Buck Output Capacitor
VDROOP = 0.2V
COUT =
3 * ILOAD 3 * 1.5A = = 18.8F; use 22F 0.2V * 1.2MHz VDROOP * FS (VOUT) * (VIN(MAX) - VOUT) 1 3.3V * (4.2V - 3.3V) * = 52mArms = 3.3H * 1.2MHz * 4.2V L * FS * VIN(MAX) 2* 3 2* 3 1 *
IRMS(MAX) =
PRMS = ESR * IRMS2 = 5m * (52mA)2 = 13.3W
3.3V Buck Input Capacitor
Input Ripple VPP = 50mV
CIN =
1 VPP IOBUCK
- ESR * 4 * FS
=
1 50mV - 5m * 4 * 1.2MHz 1.5A
= 7.3F; use 10F
IRMS(MAX) =
IOBUCK = 0.75Arms 2
P = ESR * (IRMS2) = 5m * (0.75A)2 = 3mW
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
AAT2786 Losses
1.5A Step-Down Converter and 150mA LDO
Total losses can be estimated by calculating the dropout (VIN = VOBUCK) losses where the power MOSFET RDS(ON) will be at the maximum value. All values assume an 85C ambient temperature and a 120C junction temperature with the TDFN 50C/W package.
PTOTAL = IOBUCK2 * RDS(ON)H + (VINLDO - VOUTLDO) * IOLDO
= 1.5A2 * 0.16 + (4.2 - 2.5) * 150mA = 615mW
TJ(MAX) = TAMB + JA * PLOSS = 85C + (50C/W) * 615mW = 116C
The total losses are also investigated at the nominal lithium-ion battery voltage (3.6V). The simplified version of the RDS(ON) losses assumes that the N-channel and P-channel RDS(ON) are equal.
PTOTAL = IOBUCK2 * RDS(ON)H + (tsw * FS * IBUCK + IQBUCK) * VINBUCK + (VINLDO - VOUTLDO) - IOLDO = 1.5A2 * 152m + (5ns * 1.2MHz * 1.5A + 50A) * 3.6V + (4.2V - 2.5V) * 150mA = 630mW TJ(MAX) = TAMB + JA * PLOSS = 85C + (50C/W) * 6300mW = 117C
VOUT (V)
3.3 2.5 1.8 1.5 1.2 1.0 0.8 0.6
Inductance (H)
3.3 2.2 1.8 1.8 1.2 1.0 1.0 1.0
Part Number
CDRH4D28 CDRH4D28 CDRH4D28 CDRH4D28 CDRH4D28 SD3114-1.0 SD3114-1.0 SD3114-1.0
Manufacturer
Sumida Sumida Sumida Sumida Sumida Cooper Cooper Cooper
Size (mm)
5x5x3 5x5x3 5x5x3 5x5x3 5x5x3 3.1x3.1x1.45 3.1x3.1x1.45 3.1x3.1x1.45
Rated Current (A)
1.57 2.04 2.2 2.2 2.56
IRMS (A)
ISAT (A)
DCR ()
36.4 23.2 20.4 20.4 17.5 0.042 0.042 0.042
1.67 1.67 1.67
2.07 2.07 2.07
Table 2: Surface Mount Inductors. Manufacturer
Murata Murata
Part Number
GRM21BR60J106KE19 GRM21BR60J226ME39
Value
10F 22F
Voltage
6.3V 6.3V
Temp. Co.
X5R X5R
Case
0805 0805
Table 3: Surface Mount Capacitors.
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PRODUCT DATASHEET
AAT2786
SystemPowerTM
Ordering Information
Package
TDFN34-16
1.5A Step-Down Converter and 150mA LDO
Part Marking1
3KXYY
LDO Output Voltage
E = 1.2V
Part Number (Tape and Reel)2
AAT2786IRN-AE-T1
All AnalogicTech products are offered in Pb-free packaging. The term "Pb-free" means semiconductor products that are in compliance with current RoHS standards, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. For more information, please visit our website at http://www.analogictech.com/about/quality.aspx.
Package Information3
TDFN34-16
3.000 0.050 1.600 0.050 Detail "A"
Index Area
4.000 0.050
3.300 0.050
0.350 0.100
Top View
Bottom View
C0.3 0.230 0.050
(4x) 0.850 MAX
0.050 0.050
0.229 0.051
Side View Detail "A"
All dimensions in millimeters.
1. XYY = assembly and date code. 2. Sample stock is generally held on part numbers listed in BOLD. 3. The leadless package family, which includes QFN, TQFN, DFN, TDFN and STDFN, has exposed copper (unplated) at the end of the lead terminals due to the manufacturing process. A solder fillet at the exposed copper edge cannot be guaranteed and is not required to ensure a proper bottom solder connection.
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0.450 0.050
Pin 1 Indicator (optional)
2786.2008.04.1.0
PRODUCT DATASHEET
AAT2786
SystemPowerTM
1.5A Step-Down Converter and 150mA LDO
Advanced Analogic Technologies, Inc. 3230 Scott Boulevard, Santa Clara, CA 95054 Phone (408) 737-4600 Fax (408) 737-4611
(c) Advanced Analogic Technologies, Inc. AnalogicTech cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in an AnalogicTech product. No circuit patent licenses, copyrights, mask work rights, or other intellectual property rights are implied. AnalogicTech reserves the right to make changes to their products or specifications or to discontinue any product or service without notice. Except as provided in AnalogicTech's terms and conditions of sale, AnalogicTech assumes no liability whatsoever, and AnalogicTech disclaims any express or implied warranty relating to the sale and/or use of AnalogicTech products including liability or warranties relating to fitness for a particular purpose, merchantability, or infringement of any patent, copyright or other intellectual property right. In order to minimize risks associated with the customer's applications, adequate design and operating safeguards must be provided by the customer to minimize inherent or procedural hazards. Testing and other quality control techniques are utilized to the extent AnalogicTech deems necessary to support this warranty. Specific testing of all parameters of each device is not necessarily performed. AnalogicTech and the AnalogicTech logo are trademarks of Advanced Analogic Technologies Incorporated. All other brand and product names appearing in this document are registered trademarks or trademarks of their respective holders.
2786.2008.04.1.0
www.analogictech.com
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