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LT6236 Datasheet(PDF) 7 Page - Linear Technology |
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LT6236 Datasheet(HTML) 7 Page - Linear Technology |
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7 / 50 page ![]() LTC2372-16 7 237216f For more information www.linear.com/LTC2372-16 Note 1: Stresses beyond those listed under Absolute Maximum Ratings may cause permanent damage to the device. Exposure to any Absolute Maximum Rating condition for extended periods may affect device reliability and lifetime. Note 2: All voltage values are with respect to ground. Note 3: When these pin voltages are taken below ground or above VDD or OVDD, they will be clamped by internal diodes. This product can handle input currents up to 100mA below ground or above VDD or OVDD without latchup. Note 4: VDD = 5V, OVDD = 2.5V, fSMPL = 500kHz, REFIN = 2.048V unless otherwise noted. Note 5: Recommended operating conditions. Note 6: Guaranteed by design, not subject to test. Note 7: Integral nonlinearity is defined as the deviation of a code from a straight line passing through the actual endpoints of the transfer curve. The deviation is measured from the center of the quantization band. Note 8: Fully differential zero-scale error is the offset voltage measured from –0.5LSB when the output code flickers between 0111 1111 1111 1111 and 1000 0000 0000 0000 in straight binary format and 0000 0000 0000 0000 and 1111 1111 1111 1111 in two’s complement format. Unipolar zero-scale error is the offset voltage measured from 0.5LSB when the output code flickers between 0000 0000 0000 0000 and 0000 0000 0000 0001. Bipolar zero-scale error is the offset voltage measured from –0.5LSB when the output code flickers between 0000 0000 0000 0000 and 1111 1111 1111 1111. Fully differential full-scale error is the worst-case deviation of the first and last code transitions from ideal and includes the effect of offset error. Unipolar full-scale error is the deviation of the last code transition from the ideal and includes the effect of offset error. Bipolar full-scale error is the worst-case deviation of the first and last code transitions from ideal and includes the effect of offset error. Note 9: When REFBUF is overdriven, the internal reference buffer must be turned off by setting REFIN=0V. Note 10: All specifications in dB are referred to a full-scale ±VREFBUF (fully differential), 0V to VREFBUF (pseudo-differential unipolar), or ±VREFBUF/2 (pseudo-differential bipolar) input. Note 11: Temperature coefficient is calculated by dividing the maximum change in output voltage by the specified temperature range. Note 12: fSMPL = 500kHz, IREFBUF varies proportionally with sample rate. Note 13: Parameter tested and guaranteed at OVDD = 1.71V, OVDD = 2.5V and OVDD = 5.25V. Note 14: tSCK of 10ns maximum allows a shift clock frequency up to 100MHz for rising edge capture. Figure 1. Voltage Levels for Timing Specifications The l denotes the specifications which apply over the full operating temperature range, otherwise specifications are at TA = 25°C. (Note 4) elecTrical characTerisTics 0.8 • OVDD 0.2 • OVDD 50% 50% 237216 F01 0.2 • OVDD 0.8 • OVDD 0.2 • OVDD 0.8 • OVDD tDELAY tWIDTH tDELAY tQUIET SCK, SDI and RDL Quiet Time from CNV↑ (Note 6) l 20 ns tSCK SCK Period (Notes 13, 14) l 10 ns tSCKH SCK High Time l 4 ns tSCKL SCK Low Time l 4 ns tSSDISCK SDI Setup Time From SCK↑ (Note 13) l 4 ns tHSDISCK SDI Hold Time From SCK↑ (Note 13) l 1 ns tDSDO SDO Data Valid Delay from SCK↑ CL = 20pF, OVDD = 5.25V CL = 20pF, OVDD = 2.5V CL = 20pF, OVDD = 1.71V l l l 7.5 8 9.5 ns ns ns tHSDO SDO Data Remains Valid Delay from SCK↑ CL = 20pF (Note 6) l 1 ns tDSDOBUSYL SDO Data Valid Delay from BUSY↓ CL = 20pF (Note 6) l 5 ns tEN Bus Enable Time After RDL↓ (Note 13) l 16 ns tDIS Bus Relinquish Time After RDL↑ (Note 13) l 13 ns tWAKE REFBUF Wake-Up Time CREFBUF = 47μF, CREFIN = 0.1µF 200 ms tCNVMRST CNV↑ to MUX Starts Resetting Delay l 38 ns tMRST1 MUX Reset Time During Conversion l 36 ns tVLDMRST 8th SCK↑ to MUX Starts Resetting Delay After Programming 1st Valid Configuration Word l 40 ns tMRST2 MUX Reset Time During Acquisition After Programming 1st Valid Configuration Word l 42 ns |
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