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 19-2910; Rev 0; 7/03
MAX3841 Evaluation Kit
_______________ General Description
The MAX3841 DC-coupled evaluation kit (EV kit) simplifies evaluation of the MAX3841 12.5Gbps 2 x 2 CML crosspoint switch. The EV kit enables testing of all the MAX3841 functions. SMA connectors with 50 controlled-impedance transmission lines to the MAX3841 are provided for all CML inputs and outputs. The board includes additional transmission lines for calibration purposes.
___________________________ Features

DC-Coupled Evaluation Kit Independent Power-Supply Connections Fully Assembled and Tested SMA Connectors for CML Inputs and Outputs Additional Transmission Lines for Calibration
Evaluates: MAX3841
____________________Component List
DESIGNATION C1, C7, C13, C22, C27, C30 C2, C8, C12, C14, C26, C29 C3, C4, C6, C9, C10, C11, C16, C17, C23, C24, C25, C28 C5, C15, C18-C21 J1-J8, J10, J12, J14, J16 JU1, JU3, JU8, JU9 JU2, JU4-JU7 JU1-JU9 L1-L6 TP5-TP10, J9, J11, J13, J15, J18, J19, J20 U1 None QTY 6 6 DESCRIPTION 33F 10% tantalum capacitors (B case) 2.2F 10% ceramic capacitors (0805) 0.01F 10% ceramic capacitors (0201) 0.1F 10% ceramic capacitors (0402) SMA connectors (edge mount, tab contact) 3-pin headers, 0.1in centers 2-pin headers, 0.1in centers Shunts Digi-Key S9000-ND 56nH inductors Coilcraft 0805CS-560XKBC Test points Digi-Key 5000K-ND MAX3841ETG 24-pin Thin QFN MAX3841 EV kit circuit board, Rev A
______________ Ordering Information
PART MAX3841EVKIT TEMP RANGE -40C to +85C IC PACKAGE 24 Thin QFN
________________________ Quick Start
Caution: The MAX3841 EV kit is a DC-coupled evaluation board. Each CML input and output is terminated with 50 to the respective I/O supplies. DCcoupled operation with positive I/O supplies may cause permanent damage to laboratory test equipment (oscilloscope, BERT). The I/O supplies must be connected to ground and a negative supply connected to VEE when DC-coupling to laboratory test equipment. 1) Connect the I/O supplies to ground and disconnect VEE from ground by placing shunts on JU2, JU4, JU5, JU6, and removing the shunt from JU7. Enable both outputs by placing shunts across pins 1 and 2 of JU8 and JU9. Configure the crosspoint switch to route IN1 to both OUT1 and OUT2 by placing shunts across pins 2 and 3 of JU1 and across pins 1 and 2 of JU3. Connect a +1.5V power supply to J13 (VCC). Connect the power-supply ground to J19 (GND). Connect a -1.8V power supply to J20 (VEE). Apply a 10Gbps differential signal (150mVP-P to 1200mVP-P) to SMA connectors J1 (IN1+) and J2 (IN1-). Connect an oscilloscope with 50 terminations to SMA connectors J5 (OUT1-), J6 (OUT1+), J7 (OUT2+), and J8 (OUT2-).
12
6 12 4 5 9 6 13 1 1
2) 3)
4)
______________ Component Suppliers
SUPPLIER AVX Coilcraft Digi-Key Murata PHONE 843-448-9411 847-639-6400 800-344-4539 770-436-1300 FAX 843-626-3123 847-639-1469 218-681-3380 770-436-3030
5)
6)
Note: Please indicate that you are using the MAX3841 when ordering from these suppliers.
________________________________________________________________ Maxim Integrated Products 1
For pricing, delivery, and ordering information, please contact Maxim/Dallas Direct! at 1-888-629-4642, or visit Maxim's website at www.maxim-ic.com.
MAX3841 Evaluation Kit
Evaluates: MAX3841
_____________ Supply Configurations
DC-Coupling to Lab Equipment
Place shunts on JU2, JU4, JU5, and JU6 to connect the I/O supplies to ground. Remove the shunt from JU7 to disconnect VEE from GND. Connect a +1.5V supply to VCC (J13), supply ground to GND (J19), and a -1.8V supply to VEE (J20). This supply configuration puts 3.3V on the core supply and 1.8V on all the I/O supplies. All the I/O supplies must have the same voltage when DC-coupled to lab equipment. Adjustment to the core and I/O supplies is done in two steps. First, adjust VEE until the desired I/O supply voltage is achieved. Second, adjust VCC until the desired core supply voltage is achieved. Adjustments to VEE change both the I/O and core supplies, but adjustments to VCC only change the core supply. For example, to have a core supply voltage of 3.3V and an I/O supply voltage of 2.5V, adjust VEE to -2.5V and VCC to +0.8V.
___________________ Output Controls
Each of the LVCMOS control inputs (ENO1, ENO2, SEL1, SEL2) can be set high or low using the on-board 3-pin headers (JU1, JU3, JU8, JU9). Placing a shunt across pins 1 and 2 forces a control input low (VEE), and placing a shunt across pins 2 and 3 forces a control input high (VCC). See Table 1 for the setting options.
Table 1. Output Controls
ENO1 0 0 0 0 0 0 1 1 1 ENO2 0 0 0 0 1 1 0 0 1 SEL1 0 0 1 1 0 1 X X X SEL2 0 1 0 1 X X 0 1 X OUT1 IN2 IN2 IN1 IN1 IN2 IN1 Disabled Disabled Disabled OUT2 IN1 IN2 IN1 IN2 Disabled Disabled IN1 IN2 Disabled
AC-Coupling
Connect external AC-coupling capacitors to IN1 (J1, J2), IN2 (J3, J4), OUT1 (J5, J6), and OUT2 (J7, J8). Remove the shunts from JU2, JU4, JU5, and JU6 to disconnect the I/O supplies from one another and ground. Place a shunt on JU7 to connect VEE to ground. Connect a +3.3V supply to VCC (J13) and supply ground to GND (J19). Connect any voltage between +1.71V and VCC to VCC1IN (J9), VCC2IN (J18), VCC1OUT (J11), and VCC2OUT (J15). When the inputs and outputs are AC-coupled, each of the I/O supplies (VCC1IN, VCC2IN, VCC1OUT, VCC2OUT) are independent and do not need to be connected to the same voltage. The core supply is independent of the I/O supplies, but it must have a voltage between 3.0V and 3.6V for proper operation.
0 = Pins 1 and 2 shunted. 1 = Pins 2 and 3 shunted. X = Don't care.
DC-Coupling Chip-to-Chip
Remove the shunts from JU2, JU4, JU5, and JU6 to disconnect the I/O supplies from one another and ground. Place a shunt on JU7 to connect VEE to ground. Connect a +3.3V supply to VCC (J13) and supply ground to GND (J19). Connect the input supplies (VCC1IN, VCC2IN) to the output termination voltages of the previous chip(s) (transmitters). Connect the output supplies (VCC1OUT, VCC2OUT) to the input termination voltages of the following chip(s) (receivers). Verify all the supplies have a common ground. Each of the I/O supplies can be at different voltages between +1.71V and VCC.
2 _________________________________________________________________________________________
MAX3841 Evaluation Kit
Evaluates: MAX3841
VEE J20 C30 33 F C29 2.2 F JU7 C15 0.1 F C23 0.01 F L6 56nH TP10 VEE C28 0.01 F J13 C13 33 F C14 2.2 F C18 0.1 F C16 0.01 F C17 0.01 F VEE VCC2OUT J15 C27 33 F C26 2.2 F C21 0.1 F C24 0.01 F C25 0.01 F VEE VCC1IN J9 C1 33 F C2 2.2 F C19 0.1 F C3 0.01 F C4 0.01 F VEE J7 OUT2+ J8 OUT2VCC JU9 JU6 L1 56nH TP7 VCC1IN J18 C22 33 F C12 2.2 F C5 0.1 F C6 0.01 F C11 0.01 F VEE JU4 L4 56nH TP6 VCC2OUT J11 C7 33 F C8 2.2 F C20 0.1 F C9 0.01 F C10 0.01 F VEE VCC2IN L5 56nH TP8 VCC2IN VCC1OUT L2 56nH TP5 VCC1OUT VCC L3 56nH TP9 VCC
GND J19
JU5
JU2
VCC2OUT 24 23 22 21 VEE VCC 1 VCC1IN J1 IN1+ 2 3 J2 IN1VCC1IN 4 5 6 VCC JU1 VCC VCC1IN IN1+ IN1VCC1IN VCC2IN U1
VCC2OUT VCC 20 19
VEE JU8
OUT2+
OUT2-
VCC2OUT
VCC2OUT
ENO2
GND
ENO1 VCC1OUT OUT1+ OUT1VCC1OUT
18 17 16 15 14 13
VEE VCC1OUT J6 OUT1+
MAX3841
VCC1OUT
J5 OUT1-
VCC2IN
SEL1 SEL2
GND VCC
IN2+
IN2-
VEE VCC
J10
J14
7
8
9
10
11
VEE VCC2IN VCC JU3 J3 IN2+ J4 IN2VCC2IN J12 J16
VEE
Figure 1. MAX3841 EV Kit Schematic Diagram
_________________________________________________________________________________________ 3
12
MAX3841 Evaluation Kit
Evaluates: MAX3841
Figure 2. MAX3841 EV Kit Component Placement Guide-- Component Side
Figure 3. MAX3841 EV Kit PC Board Layout--Component Side
4 _________________________________________________________________________________________
MAX3841 Evaluation Kit
Evaluates: MAX3841
Figure 4. MAX3841 EV Kit PC Board Layout--Ground Plane
Figure 5. MAX3841 EV Kit PC Board Layout--Power Plane
_________________________________________________________________________________________ 5
MAX3841 Evaluation Kit
Evaluates: MAX3841
Figure 6. MAX3841 EV Kit PC Board Layout--Solder 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 2003 Maxim Integrated Products Printed USA is a registered trademark of Maxim Integrated Products


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