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ADC3908CSSS 数据表(PDF) 116 Page - Texas Instruments

部件名 ADC3908CSSS
功能描述  ADC3910Dx and ADC3910Sx 10-bit, 25 to 125MSPS Low Latency, Low Power, Small, Single and Dual Channel ADC with Integrated Input Buffers
PDF  131 Pages
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制造商  TI1 [Texas Instruments]
网页  http://www.ti.com
标志 TI1 - Texas Instruments

ADC3908CSSS 数据表(HTML) 116 Page - Texas Instruments

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SFDR performance is a key care about as well. A higher ADC sampling rate is desirable to relax the external
anti-aliasing filter. An internal decimation filter can be used to reduce the digital output rate afterwards.
Table 7-1. Design key care abouts
FEATURE
DESCRIPTION
Signal Bandwidth
DC to 30MHz
Input Driver
Single ended to differential signal conversion and DC coupling
Clock Source
External clock with low jitter
When designing the amplifier/filter driving circuit, the ADC input full-scale voltage needs to be taken into
consideration. For example, the ADC3910D125 input full-scale is 1.9 VPP. When factoring in approximately
1dB for insertion loss of the filter, then the amplifier needs to deliver close to 2.1 VPP. The amplifier distortion
performance degrades with a larger output swing and considering the ADC common mode input voltage the
amplifier may not be able to deliver the full swing. The ADC3910D125 provides an output common mode voltage
of 1.25V and the THS4541 for example can only swing within 250mV of its negative supply. A unipolar 3.3V
amplifier power supply limits the maximum voltage swing to approximately 2.8 VPP. Hence, if a larger output
swing is required (factoring in filter insertion loss) then a negative supply for the amplifier is needed in order to
eliminate that limitation. Additionally, input voltage protection diodes may be needed to protect the ADC from
over-voltage events.
Table 7-2. Output voltage swing of THS4541 vs power supply
DEVICE
MIN OUTPUT VOLTAGE
MAX SWING WITH 3.3V/ 0V SUPPLY
THS4541
VS- + 250mV
2.8 VPP
7.2.2 Detailed Design Procedure
7.2.2.1 Input Signal Path
The THS4541 provides a good low power option to drive the ADC inputs. Table 7-3 provides an overview of the
THS4541 with power consumption and usable frequency.
Table 7-3. Fully Differential Amplifier Options
DEVICE
CURRENT (IQ) PER CHANNEL
USABLE FREQUENCY RANGE
THS4541
10mA
< 70MHz
The low pass filter design (topology, filter order) is driven by the application. However, when designing the low
pass filter, the optimum load impedance for the amplifier must also be taken into consideration.
7.2.2.2 Sampling Clock
Applications operating with low input frequencies (such as DC to 20MHz) typically are less sensitive to
performance degradation due to clock jitter. The internal ADC aperture jitter improves with faster rise and fall
times (that is, square wave vs sine wave).
Termination of the clock input needs to be considered for long clock traces.
7.2.2.3 Voltage Reference
The ADC3910D125 provides two different options for supplying the voltage reference to the ADC. An external
1.2V reference can be directly connected to the VREF input or the internal 1.2V reference can be enabled to
generate a reference voltage. For best performance, the reference noise needs to be filtered by connecting a
10µF and a 0.1µF ceramic bypass capacitor to the VREF pin when using an external reference and can be
connected to ground when the internal reference is used.
Note
The voltage reference mode can be selected using SPI writes.
ADC3910D025, ADC3910D065, ADC3910D125
ADC3910S025, ADC3910S065, ADC3910S125
SBASAD1A – DECEMBER 2023 – REVISED MAY 2024
www.ti.com
116
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Copyright © 2024 Texas Instruments Incorporated
Product Folder Links: ADC3910D025 ADC3910D065 ADC3910D125 ADC3910S025 ADC3910S065 ADC3910S125



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