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OPA607 数据表(PDF) 30 Page - Texas Instruments |
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OPA607 数据表(HTML) 30 Page - Texas Instruments |
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30 / 50 page ![]() 3 / (2 ) dB F D f GBWP R C Hz S 1 2 4 F F F D GBWP R C R C S S VBIAS + CD 20 pF CPCB 0.3 pF OPA810 +5 V -5 V CF + CPCB 1.03 pF Oscillosco pe with 50- Inputs RF 100 k Sup ply Decouplin g n ot shown - 30 OPA810 SBOS799A – AUGUST 2019 – REVISED DECEMBER 2019 www.ti.com Product Folder Links: OPA810 Submit Documentation Feedback Copyright © 2019, Texas Instruments Incorporated 9.2 Typical Applications 9.2.1 Transimpedance Amplifier The high GBWP and low input voltage and current noise for the OPA810 make the device an ideal wideband transimpedance amplifier for moderate to high transimpedance gains. Figure 73. Wideband, High-Sensitivity, Transimpedance Amplifier 9.2.1.1 Design Requirements Table 2 lists the design requirements for a high-bandwidth, high-gain transimpedance amplifier circuit. Table 2. Design Requirements PARAMETER DESIGN REQUIREMENT Target bandwidth > 2 MHz Transimpedance gain 100 kΩ Photodiode capacitance 20 pF 9.2.1.2 Detailed Design Procedure Designs that require high bandwidth from a large area detector with relatively high transimpedance gain benefit from the low input voltage noise of the OPA810. This input voltage noise is peaked up over frequency by the diode source capacitance, and can (in many cases) become the limiting factor to input sensitivity. The key elements to the design are the expected diode capacitance (CD) with the reverse bias voltage (VBIAS) applied, the desired transimpedance gain, RF, and the GBWP for the OPA810 (70 MHz). Figure 73 shows a transimpedance circuit with the parameters as described in Table 2. With these three variables set (and including the parasitic input capacitance for the OPA810 and the printed circuit board (PCB) added to CD), the feedback capacitor value (CF) can be set to control the frequency response. The Transimpedance Considerations for High-Speed Amplifiers application report discusses using high-speed amplifiers for transimpedance applications. Set the feedback pole according to Equation 9 in order to achieve a maximally-flat second-order Butterworth frequency response: (9) The input capacitance of the amplifier is the sum of the common-mode and differential capacitance (2.0 + 0.5) pF. The parasitic capacitance from the photodiode package and the PCB is approximately 0.3 pF. Using Equation 5 gives a total input capacitance of CD = 22.8 pF. From Equation 9, set the feedback pole at 1.55 MHz. Setting the pole at 1.55 MHz requires a total feedback capacitance of 1.03 pF. Equation 10 shows the approximate –3-dB bandwidth of the transimpedance amplifier circuit: (10) |
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