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MCP6141 Datasheet(PDF) 11 Page - Microchip Technology |
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MCP6141 Datasheet(HTML) 11 Page - Microchip Technology |
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11 / 32 page ![]() 2002 Microchip Technology Inc. 21668A-page 11 MCP6141/2/3/4 FIGURE 3-2: Noise gain for inverting and non-inverting amplifier configuration. Figure 3-2 shows non-inverting and inverting amplifier circuits. In order for the amplifiers to be stable, the noise gain should meet the specified requirement: EQUATION Note that an inverting signal gain of G = -9 V/V corre- sponds to a noise gain Gn = +10 V/V. Figure 3-3 shows a unity gain buffer and integrator that are unstable when used with the MCP6141/2/3/4 fam- ily. However, they are suitable for the MCP6041/2/3/4 family. FIGURE 3-3: Typical Circuits that are not suitable for the MCP6141/2/3/4 family. Note that the integrator circuit in Figure 3-3 becomes unity gain at high frequencies because of the capaci- tor. Therefore, this circuit is unstable for the MCP6141/2/3/4. 3.6 Capacitive Load and Stability Driving capacitive loads can cause stability problems with voltage feedback op amps. Figure 2-21 shows how increasing the load capacitance will decrease the phase margin. While a phase margin above 60° is ideal, 45° is on the verge of instability. As can be seen, up to CL = 150 pF can be placed on the MCP6141/2/3/4 op amp outputs without any problems, while 250 pF cre- ates a 45° phase margin. When the op amp is required to drive large capacitive loads (CL >150 pF), a small series resistor (RISO in Figure 3-4) at the output of the amplifier improves the phase margin. This resistor makes the output load resistive at higher frequencies, which improves the phase margin. The bandwidth reduction caused by the capacitive load, however, is not changed. To select RISO, start with 1 kΩ, then use the MCP6141 SPICE macro model and bench testing to adjust RISO until there is a minimum frequency response peaking. FIGURE 3-4: Amplifier circuit for heavy capacitive loads. 3.7 The MCP6143 Chip Select (CS) Option The MCP6143 is a single amplifier with a chip select (CS) option. When CS is pulled high, the supply current drops to 20 pA (typ.) and goes through the CS pin to VSS. When this happens, the amplifier is put into a high impedance state. By pulling CS low, the amplifier is enabled. If the CS pin is left floating, the amplifier will not operate properly. Figure 3-5 shows the output voltage and supply current response to a CS pulse. VIN VOUT MCP614X RF RG VIN VOUT MCP614X RF RG Non-inverting noise gain: 1 + RF/RG ≥ +10 V/V Inverting noise gain: 1 + RF/RG ≥ +10 V/V Gn 1 RF RG ------- + 10V/V ≥ = VIN VOUT VIN VOUT MCP604X C R MCP604X Integrator: Unity gain buffer: Unstable for MCP614X Unstable for MCP614X VIN RISO VOUT MCP614X CL R1 R2 |
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