| Electronic Components Datasheet Search |
|
AD811 Datasheet(PDF) 13 Page - Analog Devices |
|
|
|||||||||||||||||||||||||||||
AD811 Datasheet(HTML) 13 Page - Analog Devices |
|
13 / 20 page ![]() Data Sheet AD811 Driving Capacitive Loads The feedback and gain resistor values in Table 3 result in very flat closed-loop responses in applications where the load capacitances are below 10 pF. Capacitances greater than this result in increased peaking and overshoot, although not necessarily in a sustained oscillation. There are at least two very effective ways to compensate for this effect. One way is to increase the magnitude of the feedback resistor, which lowers the 3 dB frequency. The other method is to include a small resistor in series with the output of the ampli- fier to isolate it from the load capacitance. The results of these two techniques are illustrated in Figure 38. Using a 1.5 kΩ feedback resistor, the output ripple is less than 0.5 dB when driving 100 pF. The main disadvantage of this method is that it sacrifices a little bit of gain flatness for increased capacitive load drive capability. With the second method, using a series resistor, the loss of flatness does not occur. Figure 37. Recommended Connection for Driving a Large Capacitive Load Figure 38. Performance Comparison of Two Methods for Driving a Capacitive Load Figure 39. Recommended Value of Series Resistor vs. the Amount of Capacitive Load Figure 39 shows recommended resistor values for different load capacitances. Refer again to Figure 38 for an example of the results of this method. Note that it may be necessary to adjust the gain setting resistor, RG, to correct for the attenuation which results due to the divider formed by the series resistor, RS, and the load resistance. Applications that require driving a large load capacitance at a high slew rate are often limited by the output current available from the driving amplifier. For example, an amplifier limited to 25 mA output current cannot drive a 500 pF load at a slew rate greater than 50 V/µs. However, because of the 100 mA output current of the AD811, a slew rate of 200 V/µs is achievable when driving the same 500 pF capacitor, as shown in Figure 40. Figure 40. Output Waveform of an AD811 Driving a 500 pF Load. Gain = +2, RFB = 649 Ω, RS = 15 Ω, RS = 10 kΩ AD811 + – 7 6 4 2 3 RS (OPTIONAL) CL RL VOUT –VS +VS RFB RG RT VIN 0.1 µF 0.1 µF –6 –3 0 3 6 9 12 FREQUENCY (MHz) 1 10 100 VS = ±15V CL = 100pF RL = 10kΩ GAIN = +2 RFB = 1.5kΩ RS = 0 RFB = 649Ω RS = 30Ω 0 10 20 30 40 50 60 70 80 90 100 LOAD CAPACITANCE (pF) 10 100 1000 GAIN = +2 VS = ±15V RS VALUE SPECIFIED IS FOR FLATTEST FREQUENCY RESPONSE 10 90 100 0% 5V 2V 100ns VIN VOUT Rev. G | Page 13 of 20 |
|
|
Link URL |
| Does ALLDATASHEET help your business so far? [ DONATE ] |
About Alldatasheet | Advertisement | Contact us | Privacy Policy | Link to Datasheet | Link Exchange | Manufacturer List All Rights Reserved©Alldatasheet.com |
| Russian : Alldatasheetru.com | Korean : Alldatasheet.co.kr | Spanish : Alldatasheet.es | French : Alldatasheet.fr | Italian : Alldatasheetit.com Portuguese : Alldatasheetpt.com | Polish : Alldatasheet.pl | Vietnamese : Alldatasheet.vn Indian : Alldatasheet.in | Mexican : Alldatasheet.com.mx | British : Alldatasheet.co.uk | New Zealand : Alldatasheet.co.nz |
|
Family Site : ic2ic.com |
icmetro.com |