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19-1866; Rev 0; 12/00 MAX3950 Evaluation Kit General Description The MAX3950 evaluation kit (EV kit) is an assembled surface-mount demonstration board that provides easy evaluation of the MAX3950 10Gbps, 1:16 deserializer with low-voltage differential signal (LVDS) outputs. All components necessary to interface with 3.3V CML inputs and LVDS outputs are included on the EV kit. o +3.3V Single Supply o 9.95Gbps/10.7Gbps Evaluation o Fully Assembled and Tested Surface-Mount Board Features Evaluates: MAX3950 Component List DESIGNATION C1, C10-C13 C2, C6-C9, C14-C17 C3 C4 QTY 5 DESCRIPTION 1000pF 10% ceramic capacitors (0402) Murata GRM36X7R102K050A 0.01F 10% ceramic capacitors (0402) Murata GRM36X7R103K016A 33F 10%, 10V min tantalum capacitor, AVX TAJC336K035 2.2F 10%, 16V min tantalum capacitor, AVX TAJC225K016 0.1F 10% ceramic capacitor (0603) Murata GRM39X7R104K016A SMB connectors (PC mount) SMA connectors (edge mount) Test points Not installed 2 x10 header (0.1in center) 56nH inductor Coilcraft 0805HS-560TKBC Not installed MAX3950EGK 68-pin QFN MAX3950 EV kit circuit board MAX3950 data sheet MAX3950 EV kit data sheet SUPPLIER AVX Murata PART MAX3950EVKIT Ordering Information TEMP. RANGE -40C to +85C IC-PACKAGE 68 QFN 9 1 1 C5 J1, J2, J7-J38 J3-J6 J39, J40 J41-J46 J47 L1 R1-R17 U1 None None None 1 34 4 2 6 1 1 17 1 1 1 1 Component Suppliers PHONE 843-448-9411 770-684-7821 FAX 843-626-3123 -- Note: Please indicate that you are using the MAX3950 when contacting the suppliers. ________________________________________________________________ Maxim Integrated Products 1 For price, delivery, and to place orders, please contact Maxim Distribution at 1-888-629-4642, or visit Maxim's website at www.maxim-ic.com. MAX3950 Evaluation Kit Evaluates: MAX3950 Detailed Description The MAX3950 EV kit simplifies evaluation of the MAX3950 1:16 deserializer. The EV kit operates from a single +3.3V supply and includes all the external components necessary to interface with 3.3V CML inputs and LVDS outputs. Transmission line test structures are included on the evaluation board to allow for measurement of signal loss and dispersion of clock and data signals at 10GHz. Shunt Configuration of J47 The 2 10 header on J47 should be shunted as shown in Figure 1. Other jumper arrangements will cause the IC to operate erroneously. Applications information Connecting LVDS Outputs to 50 Oscilloscope Inputs To monitor LVDS signals with 50 oscilloscope inputs, set the inputs of the oscilloscope to "AC coupling" or place a DC block in series with each output. If you are observing only one output with a 50 probe, balance the complementary output with a DC block and a 50 terminator to ground. Figure 1. Shunt Arrangement for J47 J47 Connecting LVDS Outputs to HighImpedance Oscilloscope Inputs To monitor LVDS signals with high-impedance oscilloscope inputs, install 100 0402 resistors on locations R1 through R17. Note that this does not provide as good a termination scheme as using the 50 inputs on an oscilloscope and the resulting output will be degraded. Layout Consideration The MAX3950's performance can be greatly affected by circuit-board layout and design. Use good high-frequency design techniques, including minimizing ground inductances and using fixed-impedance transmission lines on the data and clock signals. Exposed Pad Package The 68-pin QFN package with exposed pad incorporates features that provide a very low thermal-resistance path for heat removal from the IC--either to a PC board or to an external heatsink. The MAX3950's exposed pad must be soldered directly to a ground plane with good thermal conductance. 2 _______________________________________________________________________________________ J38 J37 J36 J35 J34 J33 J32 J31 J30 J29 VCC VCC J27 Vcc Vcc GND Vcc GND GND PD11- PD14- PD13- PD12- PD11+ PD14+ PD13+ PD12+ PD10+ PD10- GND PD0+ GND PD0- PD1- PD1+ PD2- PD2+ Vcc GND PD3 PD3+ PD4- PD4+ Vcc Vcc GND 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 VCC VCC J9 J10 J11 J12 J13 J14 J15 J16 J17 GND Figure 2. MAX3950 EV Kit Schematic 68 56 J28 67 66 65 64 63 62 61 60 59 58 57 55 54 53 52 1 GND GND PD15PD9+ PD9PD8+ PD8PD7+ 45 44 43 VCC J21 J22 42 GND PD6+ PD6PD5+ PD5Vcc GND GND 40 39 38 37 36 35 VCC J19 J20 41 46 J24 47 48 J23 PD15+ GND Vcc SD+ SDPD7Vcc Vcc 49 Vcc VCC J26 50 GND 2 3 4 5 VCC 7 8 C16 0.01F VCC 10 C15 0.01F 11 SCLKVcc GND PCLKPCLK+ GND GND VCC 13 14 15 16 17 12 C14 0.01F SCLK+ 9 C17 J4 0.01F 6 51 J25 J1 J2 J3 U1 MAX3950 J5 J6 J7 J8 J18 C10 1000pF J40 VCCIN C3 33F C4 2.2F L1 C1 C5 56nH 0.1F 1000pF C11 1000pF C12 1000pF C13 1000pF VCC GNDIN J39 C2 0.01F C6 0.01F C7 0.01F C80 0.01F C9 0.01F Evaluates: MAX3950 _______________________________________________________________________________________ MAX3950 Evaluation Kit 3 MAX3950 Evaluation Kit Evaluates: MAX3950 1.0" Figure 3. MAX3950 EV Kit PC Board Layout--Solder Side 1.0" Figure 4. MAX3950 EV Kit PC Board Layout--Power Plane 4 _______________________________________________________________________________________ MAX3950 Evaluation Kit Evaluates: MAX3950 1.0" Figure 5. MAX3950 EV Kit PC Board Layout--Ground Plane 1.0" Figure 6. MAX3950 EV Kit PC Board Layout--Component Side _______________________________________________________________________________________ 5 MAX3950 Evaluation Kit Evaluates: MAX3950 1.0" Figure 7. MAX3950 EV Kit Component Placement Guide--Component Side Maxim cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in a Maxim product. No circuit patent licenses are implied. Maxim reserves the right to change the circuitry and specifications without notice at any time. 6 ______________________Maxim Integrated Products, 120 San Gabriel Drive, Sunnyvale, CA 94086 408-737-7600 (c) 2000 Maxim Integrated Products Printed USA is a registered trademark of Maxim Integrated Products. |
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