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LMV641MF/NOPB Datasheet(PDF) 15 Page - Texas Instruments |
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LMV641MF/NOPB Datasheet(HTML) 15 Page - Texas Instruments |
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15 / 40 page ![]() ROUT - + VIN RF CF RIN RL CL RS 0 UNSTABLE ROC = 40 dB/decade STABLE ROC ± 20 dB/decade FREQUENCY (Hz) 15 LMV641 www.ti.com SNOSAW3D – SEPTEMBER 2007 – REVISED AUGUST 2016 Product Folder Links: LMV641 Submit Documentation Feedback Copyright © 2007–2016, Texas Instruments Incorporated 7.4 Device Functional Modes 7.4.1 Stability of Op Amp Circuits If the phase margin of the LMV641 is plotted with respect to the capacitive load (CL) at its output, and if CL is increased beyond 100 pF then the phase margin reduces significantly. This is because the op amp is designed to provide the maximum bandwidth possible for a low supply current. Stabilizing the LMV641 for higher capacitive loads would have required either a drastic increase in supply current, or a large internal compensation capacitance, which would have reduced the bandwidth. Hence, if this device is to be used for driving higher capacitive loads, it will have to be externally compensated. Figure 36. Gain vs Frequency for an Op Amp An op amp, ideally, has a dominant pole close to DC which causes its gain to decay at the rate of 20 dB/decade with respect to frequency. If this rate of decay, also known as the rate of closure (ROC), remains the same until the op amp's unity gain bandwidth, then the op amp is stable. If, however, a large capacitance is added to the output of the op amp, it combines with the output impedance of the op amp to create another pole in its frequency response before its unity gain frequency (Figure 36). This increases the ROC to 40 dB/decade and causes instability. In such a case, a number of techniques can be used to restore stability to the circuit. The idea behind all these schemes is to modify the frequency response such that it can be restored to an ROC of 20 dB/decade, which ensures stability. 7.4.1.1 In The Loop Compensation Figure 37 illustrates a compensation technique, known as in the loop compensation, that employs an RC feedback circuit within the feedback loop to stabilize a non-inverting amplifier configuration. A small series resistance, RS, is used to isolate the amplifier output from the load capacitance, CL, and a small capacitance, CF, is inserted across the feedback resistor to bypass CL at higher frequencies. Figure 37. In the Loop Compensation |
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