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MCP6V969 Scheda tecnica(PDF) 22 Page - Microchip Technology |
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MCP6V969 Scheda tecnica(HTML) 22 Page - Microchip Technology |
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22 / 52 page ![]() MCP6V96/6U/7/9 DS20006467A-page 22 2020 Microchip Technology Inc. 4.3.3 SOURCE RESISTANCES The input bias currents have two significant components: switching glitches that dominate at room temperature and below, and input ESD diode leakage currents that dominate at +85°C and above. Make the resistances seen by the inputs small and equal. This minimizes the output offset caused by the input bias currents. The inputs should see a resistance on the order of 10Ω to 1 kΩ at high frequencies (i.e., above 1 MHz). This helps minimize the impact of switching glitches, which are very fast, on overall performance. In some cases, it may be necessary to add resistors in series with the inputs to achieve this improvement in performance. Small input resistances may be needed for high gains. Without them, parasitic capacitances might cause positive feedback and instability. 4.3.4 SOURCE CAPACITANCE The capacitances seen by the two inputs should be small. Large input capacitances and source resistances, together with high gain, can lead to positive feedback and instability. 4.3.5 CAPACITIVE LOADS Driving large capacitive loads can cause stability problems for voltage feedback op amps. As the load capacitance increases, the feedback loop’s phase mar- gin decreases and the closed-loop bandwidth is reduced. This produces gain peaking in the frequency response, with overshoot and ringing in the step response. These zero-drift op amps have a different output impedance than most op amps, due to their unique topology. When driving a capacitive load with these op amps, a series resistor at the output (RISO in Figure 4-7) improves the feedback loop’s phase margin (stability) by making the output load resistive at higher frequencies. The bandwidth will be generally lower than the bandwidth with no capacitive load. FIGURE 4-7: Output Resistor, RISO, Stabilizes Capacitive Loads. Figure 4-8 gives recommended RISO values for different capacitive loads and gains. The x-axis is the load capacitance (CL). The y-axis is the resistance (RISO). GN is the circuit’s noise gain. For noninverting gains, GN and the Signal Gain are equal. For inverting gains, GN is 1+|Signal Gain| (e.g., -1 V/V gives GN =+2 V/V). FIGURE 4-8: Recommended RISO Values for Capacitive Loads. After selecting RISO for your circuit, double check the resulting frequency response peaking and step response overshoot. Modify the RISO value until the response is reasonable. Bench evaluation is helpful. 4.3.6 STABILIZING OUTPUT LOADS This family of zero-drift op amps have an output impedance that has a double zero when the gain is low (see Figures 2-28 and 2-29). This can cause a large phase shift in feedback networks that have low- impedance near the part’s bandwidth. This large phase shift can cause stability problems. Figure 4-9 shows that the load on the output is (RL +RISO)||(RF +RG), where RISO is before the load (like Figure 4-7). This load needs to be large enough to maintain stability; it should be at least 10 kΩ. FIGURE 4-9: Output Load. RISO CL VOUT U1 MCP6V9X - + 1 10 100 1000 Normalized Load Capacitance; C L/√ √G N (F) G N: 1 V/V 10 V/V 100 V/V V DD = 5.5 V R L = 10 k 1p 10p 100p 1n 10n 100n 1µ RG RF VOUT U1 MCP6V9X RL CL - + RISO |
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