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ICS8430-62 Datasheet(PDF) 13 Page - Integrated Device Technology |
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ICS8430-62 Datasheet(HTML) 13 Page - Integrated Device Technology |
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13 / 23 page ![]() ICS8430-62 Datasheet 500MHz CRYSTAL-TO-3.3V, 2.5V DIFFERENTIAL LVPECL FREQUENCY SYNTHESIZER ICS8430AY-62 REVISION A JULY 2, 2009 13 ©2009 Integrated Device Technology, Inc. Recommendations for Unused Input and Output Pins Inputs: Crystal Inputs For applications not requiring the use of the crystal oscillator input, both XTAL_IN and XTAL_OUT can be left floating. Though not required, but for additional protection, a 1k Ω resistor can be tied from XTAL_IN to ground. REF_CLK Input For applications not requiring the use of the reference clock, it can be left floating. Though not required, but for additional protection, a 1k Ω resistor can be tied from the REF_CLK to ground. LVCMOS Control Pins All control pins have internal pullups or pulldowns; additional resistance is not required but can be added for additional protection. A 1k Ω resistor can be used. Outputs: TEST Output The unused TEST output can be left floating. There should be no trace attached. LVPECL Outputs All unused LVPECL outputs can be left floating. We recommend that there is no trace attached. Both sides of the differential output pair should either be left floating or terminated. Termination for 3.3V LVPECL Outputs The clock layout topology shown below is a typical termination for LVPECL outputs. The two different layouts mentioned are recommended only as guidelines. The differential outputs are low impedance follower outputs that generate ECL/LVPECL compatible outputs. Therefore, terminating resistors (DC current path to ground) or current sources must be used for functionality. These outputs are designed to drive 50 Ω transmission lines. Matched impedance techniques should be used to maximize operating frequency and minimize signal distortion. Figures 5A and 5B show two different layouts which are recommended only as guidelines. Other suitable clock layouts may exist and it would be recommended that the board designers simulate to guarantee compatibility across all printed circuit and clock component process variations. Figure 5A. 3.3V LVPECL Output Termination Figure 5B. 3.3V LVPECL Output Termination 3.3V V CC - 2V R1 50 Ω R2 50 Ω RTT Z o = 50Ω Z o = 50Ω + _ RTT = * Z o 1 ((V OH + VOL) / (VCC – 2)) – 2 3.3V LVPECL Input R1 84 Ω R2 84 Ω 3.3V R3 125 Ω R4 125 Ω Z o = 50Ω Z o = 50Ω LVPECL Input 3.3V 3.3V + _ |
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