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ADA4510-2ARZ-R7 Scheda tecnica(PDF) 28 Page - Analog Devices |
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ADA4510-2ARZ-R7 Scheda tecnica(HTML) 28 Page - Analog Devices |
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28 / 32 page ![]() Data Sheet ADA4510-2 APPLICATIONS INFORMATION analog.com Rev. B | 28 of 32 Figure 85 shows the TIA 1/β curve superimposed upon the open loop gain of the amplifier. For the system to be stable, the 1/β curve must have a slope of less than 20 dB/decade when it intersects with the open loop response. In Figure 85 the dotted line shows an uncompensated 1/β response (CF = 0 pF) intersecting with the open loop gain at the frequency (fX) with a slope of 20 dB/decade which indicates an unstable condition. Figure 85. Generalized TIA 1/β and Transfer Function The instability caused by CIN can be compensated by adding CF to introduce a pole at a frequency equal to or lower than fX. The pole frequency is as follows: fP= 12πRFCF (6) Setting the pole at the fX frequency maximizes the signal bandwidth with a 45° phase margin but is marginal for stability, as indicated by the dashed line. Because fX is the geometric mean of fZ and the gain bandwidth product frequency (fGBP) of the amplifier, calculate fX by the following equation: fX= fZfGBP (7) Substituting Equation 5 and Equation 6 into Equation 7, the CF value that produces fX follows: CF= 1+ 1+8πRFCINfGBP 4πRFfGBP (8) If 8π × RF × CIN × fGBP >> 1, Equation 8 simplifies to the following: CF= CIN2πRFfGBP (9) Adding CF also sets the signal bandwidth at fP. Substitute Equation 9 into Equation 6 and rearrange the equation for the signal band- width in terms of fGBP, RF, and CIN as follows: fP= fGBP2πRFCIN (10) Notice the attainable signal bandwidth is a function of the time constant RFCIN and the fGBP of the amplifier. To maximize the signal bandwidth, choose an op amp with high bandwidth and low input capacitance, and operate the photodiode in reverse bias to reduce its junction capacitance. Design Example As a design example, Figure 86 shows one channel of the ADA4510-2 configured as a TIA amplifier in a photodiode preamp application. Assuming the photodiode has a CD of 5 pF, an ID of 2 µA, and the desired full-scale VOUT is 100 mV, RF is 49.9 kΩ according to Equation 1. Figure 86. Single-Supply TIA Circuit Using the ADA4510-2 The ADA4510-2 input capacitance (CCM + CDM) is 22 pF, so the total input capacitance (CIN) is 27 pF. By substituting CIN = 27 pF, RF = 49.9 kΩ, and fGBP = 10 MHz into Equation 8 and Equation 10, the resulting CF value and the −3 dB signal bandwidth (fP) are 3.1 pF and 1.1 MHz, respectively. Figure 87 and Figure 88 show the compensations of the TIA circuit. The system has a bandwidth of 1.1 MHz when it is maximized for a signal bandwidth with CF = 3.1 pF. Increasing CF to 5.5 pF reduces the bandwidth to 579 kHz. However, increasing the CF greatly reduces the overshoot (see Figure 89). In practice, an optimum CF value is determined experimentally by varying it slightly to optimize the output pulse response. Use the Analog Devices Analog Photodiode Wizard to design a transimpedance amplifier circuit to interface with a photodiode. |
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