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ADA4528-2ARMZ-R7 数据表(PDF) 22 Page - Analog Devices |
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ADA4528-2ARMZ-R7 数据表(HTML) 22 Page - Analog Devices |
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22 / 29 page ![]() Data Sheet ADA4528-1/ADA4528-2 Rev. D | Page 21 of 28 Source Resistance With 5.6 nV/√Hz of broadband noise at 1 kHz (VSY = 2.5 V and AV = +100), the ADA4528-1/ADA4528-2 are among the lowest noise zero-drift amplifiers currently available in the industry. Therefore, it is important to carefully select the input source resistance to maintain a total low noise. The total input referred broadband noise (en total) from any amplifier is primarily a function of three types of noise: input voltage noise, input current noise, and thermal (Johnson) noise from the external resistors. These uncorrelated noise sources can be summed up in a root sum squared (rss) manner using the following equation: en total = [en2 + 4 kTRS + (in × RS)2]1/2 where: en is the input voltage noise of the amplifier (V/√Hz). k is the Boltzmann’s constant (1.38 × 10−23 J/K). T is the temperature in Kelvin (K). RS is the total input source resistance (Ω). in is the input current noise of the amplifier (A/√Hz). The total equivalent rms noise over a specific bandwidth is expressed as en,rms = en total × √BW where BW is the bandwidth in hertz. This analysis is valid for broadband noise calculation. If the bandwidth of concern includes the chopping frequency, more complicated calculations must be made to include the effect of the noise energy spectrum at the chopping frequency (see the Residual Voltage Ripple section). With a low source resistance of RS < 1 kΩ, the voltage noise of the amplifier dominates. As source resistance increases, the thermal noise of RS dominates. As the source resistance increases further, where RS > 100 kΩ, the current noise becomes the main contributor to the total input noise. A good selection table for low noise op amps can be found in the AN-940 Application Note, Low Noise Amplifier Selection Guide for Optimal Noise Performance. Voltage Noise Density with Different Gain Configurations Figure 65 shows the voltage noise density vs. closed-loop gain of a zero-drift amplifier from a leading competitor. The voltage noise density of the amplifier increases from 11 nV/√Hz to 21 nV/√Hz as the closed-loop gain decreases from 1000 to 1. 24 20 16 12 8 4 0 1 10 100 1000 CLOSED-LOOP GAIN (V/V) VSY = 5V f = 100Hz COMPETITOR A Figure 65. Competitor A: Voltage Noise Density vs. Closed-Loop Gain Figure 66 shows the voltage noise density vs. frequency of the ADA4528-1/ADA4528-2 for three different gain configurations. The ADA4528-1/ADA4528-2 offer a constant input voltage noise density of 6 nV/√Hz to 7 nV/√Hz, regardless of the gain configuration. 1 10 100 1 10 100 1k 10k FREQUENCY (Hz) AV = 10 AV = 100 AV = 1 VSY = 5V VCM = VSY/2 Figure 66. Voltage Noise Density vs. Frequency with Different Gain Configurations |
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