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MCP6V67-E/MS Scheda tecnica(PDF) 21 Page - Microchip Technology |
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MCP6V67-E/MS Scheda tecnica(HTML) 21 Page - Microchip Technology |
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21 / 46 page ![]() 2019 Microchip Technology Inc. DS20006266A-page 21 MCP6V66/6U/7/9 4.3.7 GAIN PEAKING Figure 4-10 shows an op amp circuit that represents noninverting amplifiers (VM is a DC voltage and VP is the input) or inverting amplifiers (VP is a DC voltage and VM is the input). The CN and CG capacitances represent the total capacitance at the input pins; they include the op amp’s Common Mode Input Capacitance (CCM), board parasitic capacitance and any capacitor placed in parallel. The CFP capacitance represents the parasitic capacitance coupling the output and noninverting input pins. FIGURE 4-10: Amplifier with Parasitic Capacitance. CG acts in parallel with RG (except for a gain of +1 V/V), which causes an increase in gain at high frequencies. CG also reduces the phase margin of the feedback loop, which becomes less stable. This effect can be reduced by either reducing CG or RF||RG. CN and RN form a low-pass filter that affects the signal at VP. This filter has a single real pole at 1/(2πRNCN). The largest value of RF that should be used depends on noise gain (see GN in Section 4.3.5 “Capacitive Loads”), CG and the open-loop gain’s phase shift. An approximate limit for RF is: EQUATION 4-2: Some applications may modify these values to reduce either output loading or gain peaking (step-response overshoot). At high gains, RN needs to be small in order to prevent positive feedback and oscillations. Large CN values can also help. 4.3.8 REDUCING UNDESIRED NOISE AND SIGNALS Reduce undesired noise and signals with: • Low bandwidth signal filters: - Minimize random analog noise - Reduce interfering signals • Good PCB layout techniques: - Minimize crosstalk - Minimize parasitic capacitances and inductances that interact with fast switching edges • Good power supply design: - Isolation from other parts - Filtering of interference on supply line(s) 4.3.9 SUPPLY BYPASSING AND FILTERING With this family of operational amplifiers, the power supply pin (VDD for single supply) should have a local bypass capacitor (i.e., 0.01 µF to 0.1 µF) within 2 mm of the pin for good high-frequency performance. These parts also need a bulk capacitor (i.e., 1 µF or larger) within 100 mm to provide large, slow currents. This bulk capacitor can be shared with other low-noise analog parts. In some cases, high-frequency power supply noise (e.g., switched mode power supplies) may cause undue intermodulation distortion with a DC offset shift; this noise needs to be filtered. Adding a small resistor into the supply connection can be helpful. 4.3.10 PCB DESIGN FOR DC PRECISION In order to achieve DC precision on the order of ±1 µV, many physical errors need to be minimized. The design of the Printed Circuit Board (PCB), the wiring and the thermal environment have a strong impact on the precision achieved. A poor PCB design can easily be more than 100 times worse than the MCP6V66/6U/7/9 op amps’ minimum and maximum specifications. 4.3.10.1 PCB Layout Any time two dissimilar metals are joined together, a temperature-dependent voltage appears across the junction (the Seebeck or thermojunction effect). This effect is used in thermocouples to measure temperature. The following are examples of thermojunctions on a PCB: • Components (resistors, op amps, …) soldered to a copper pad • Wires mechanically attached to the PCB • Jumpers • Solder joints •PCB vias RG RF VOUT U1 MCP6V6X CG RN CN VM VP CFP + - RF 10 k 3.5 pF CG --------------- GN2 |
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