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ADS5463IPFPR Datasheet(PDF) 32 Page - Texas Instruments |
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ADS5463IPFPR Datasheet(HTML) 32 Page - Texas Instruments |
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32 / 48 page ![]() Clock Amplitude − VP−P 71 72 73 74 75 76 77 78 79 80 0 1 2 3 4 5 fS = 500 MSPS fIN = 100 MHz fIN = 300 MHz G022 Clock Amplitude − VP−P 62.5 63.0 63.5 64.0 64.5 65.0 65.5 66.0 0 1 2 3 4 5 fIN = 100 MHz fIN = 300 MHz fS = 500 MSPS G023 CLK ADS5463 CLK 0.1 F m Clock Source S0194-02 ADS5463 ADS54RF63 SLAS515E – NOVEMBER 2006 – REVISED JULY 2009 ................................................................................................................................................... www.ti.com Figure 59. ADS5463 SFDR versus Differential Clock Figure 60. ADS5463 SNR versus Differential Clock Level Level The characterization of the ADS5463/ADS54RF63 is typically performed with a 3-VPP differential clock, but the ADC performs well with a differential clock amplitude down to ~0.5 VPP (250-mV swing on both CLK and CLK), as shown in Figure 59 and Figure 60. For jitter-sensitive applications, the use of a differential clock has some advantages at the system level. The differential clock allows for common-mode noise rejection at the printed circuit board (PCB) level. With a differential clock, the signal-to-noise ratio of the ADC is better for jitter-sensitive, high-frequency applications because the board level clock jitter is superior. Larger clock amplitude levels are recommended for high analog input frequencies or slow clock frequencies. At high analog input frequencies, the sampling process is sensitive to jitter. At slow clock frequencies, a small amplitude sinusoidal clock has a lower slew rate and can create jitter-related SNR degradation due to the uncertainty in the sampling point associated with a slow slew rate. Figure 61 demonstrates a recommended method for converting a single-ended clock source into a differential clock; it is similar to the configuration found on the evaluation board and was used for much of the characterization. See also Clocking High Speed Data Converters (SLYT075) for more details. Figure 61. Differential Clock The common-mode voltage of the clock inputs is set internally to 2.4 V using internal 1-k Ω resistors (see Figure 57). It is recommended to use ac coupling, but if this scheme is not possible, the ADS5463 features good tolerance to clock common-mode variation, as shown in Figure 62 and Figure 63 (the ADS54RF63 behaves similarly). The internal ADC core uses both edges of the clock for the conversion process. Ideally, a 50% duty-cycle clock signal should be provided, though even 40/60 is good enough for many applications. Performance degradation as a result of duty cycle can be seen in Figure 64. 32 Submit Documentation Feedback Copyright © 2006–2009, Texas Instruments Incorporated Product Folder Link(s): ADS5463 ADS54RF63 |
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