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LTC2668 Datasheet(PDF) 22 Page - Linear Technology |
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LTC2668 Datasheet(HTML) 22 Page - Linear Technology |
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22 / 40 page ![]() LTC2348-16 22 234816fa For more information www.linear.com/LTC2348-16 to minimize SNR degradation over this bandwidth. An additional filter network may be placed between the buf- fer output and ADC input to further minimize the noise contribution of the buffer and reduce disturbances to the buffer from ADC acquisition transients. A simple one-pole lowpass RC filter is sufficient for many applications. It is important that the RC time constant of this filter be small enough to allow the analog inputs to completely settle to 16-bit resolution within the ADC acquisition time (tACQ), as insufficient settling can limit INL and THD performance. Also note that the minimum acquisition time varies with sampling frequency (fSMPL) and the number of enabled channels. High quality capacitors and resistors should be used in the RC filters since these components can add distortion. NPO/COG and silver mica type dielectric capacitors have excellent linearity. Carbon surface mount resistors can generate distortion from self-heating and from damage that may occur during soldering. Metal film surface mount resistors are much less susceptible to both problems. applicaTions inForMaTion Buffering Arbitrary and Fully Differential Analog Input Signals The wide common mode input range and high CMRR of the LTC2348-16 allow each channel’s IN+ and IN– pins to swing with an arbitrary relationship to each other, provided each pin remains between (VCC – 4V) and VEE. This unique feature of the LTC2348-16 enables it to accept a wide variety of signal swings, simplifying signal chain design. In many applications, connecting a channel’s IN+ and IN– pins directly to the existing signal chain circuitry will not allow the channel’s sampling network to settle to 16-bit resolution within the ADC acquisition time (tACQ). In these cases, it is recommended that two unity-gain buffers be inserted between the signal source and the ADC input pins, as shown in Figure 6a. Table 2 lists several amplifier and lowpass filter combinations recommended for use in this circuit. The LT1469 combines fast settling, high linearity, and low offset with 5nV/√Hz input-referred noise density, enabling it to achieve the full ADC data sheet SNR and THD specifications, as shown in the FFT plots in Figures 6b to 6e. In applications where slightly degraded LTC2348-16 234816 F05 ONLY CHANNEL 0 SHOWN FOR CLARITY 0V TRUE BIPOLAR INPUT SIGNAL IN0+ IN0– BUFFER AMPLIFIER LOWPASS SIGNAL FILTER 10nF 160 BW = 100kHz Figure 5. True Bipolar Signal Chain with Input Filtering Table 2. Recommended Amplifier and Filter Combinations for the Buffer Circuits in Figures 6a and 9. AC Performance Measured Using Circuit in Figure 6a, ±10.24V Range AMPLIFIER RFILT (Ω) CFILT (pF) INPUT SIGNAL DRIVE SNR (dB) THD (dB) SINAD (dB) SFDR (dB) ½ LT1469 49.9 1000 FULLY DIFFERENTIAL 94.4 –119 94.4 121 ½ LT1355 100 270 FULLY DIFFERENTIAL 94.3 –119 94.3 120 ½ LT1469 49.9 1000 TRUE BIPOLAR 94.4 –109 94.3 110 ½ LT1355 100 270 TRUE BIPOLAR 94.3 –107 94.1 108 ½ LT1469 0 0 TRUE BIPOLAR 93.9 –109 93.8 110 ½ LT1355 0 0 TRUE BIPOLAR 94.0 –107 93.8 108 ½ LT1358 100 270 TRUE BIPOLAR 94.4 –109 94.3 110 |
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