參數(shù)資料
型號: ADA4940-1ARZ
廠商: Analog Devices Inc
文件頁數(shù): 21/33頁
文件大?。?/td> 0K
描述: IC DIFF ADC DVR 18BIT LN 8SOIC
標準包裝: 98
放大器類型: 差分
電路數(shù): 1
輸出類型: 差分
轉換速率: 95 V/µs
-3db帶寬: 260MHz
電流 - 輸入偏壓: 1.1µA
電壓 - 輸入偏移: 60µV
電流 - 電源: 1.25mA
電流 - 輸出 / 通道: 46mA
電壓 - 電源,單路/雙路(±): 3 V ~ 6 V
工作溫度: -40°C ~ 125°C
安裝類型: 表面貼裝
封裝/外殼: 8-SOIC(0.154",3.90mm 寬)
供應商設備封裝: 8-SO
包裝: 管件
Data Sheet
ADA4940-1/ADA4940-2
Rev. C | Page 27 of 32
DRIVING A HIGH PRECISION ADC
The ADA4940-1/ADA4940-2 are ideally suited for broadband
dc-coupled applications. The circuit in Figure 73 shows a front-
end connection for an ADA4940-1 driving an AD7982, which is
an 18-bit, 1 MSPS successive approximation, analog-to-digital
converter (ADC) that operates from a single power supply, 3 V
to 5 V. It contains a low power, high speed, 18-bit sampling
ADC and a versatile serial interface port. The reference voltage,
REF, is applied externally and can be set independent of the
supply voltage. As shown in Figure 73, the ADA4940-1 is dc-
coupled on the input and the output, which eliminates the need
for a transformer to drive the ADC. The amplifier performs a
single-ended-to-differential conversion if needed and level
shifts the input signal to match the input common mode of the
ADC. The ADA4940-1 is configured with a dual 7 V supply
(+6 V and 1 V) and a gain that is set by the ratio of the
feedback resistor to the gain resistor. In addition, the circuit
can be used in a single-ended-input-to-differential output or
differential-input-to-differential output configuration. If needed,
a termination resistor in parallel with the source input can be
used. Whether the input is a single-ended input or differential,
the input impedance of the amplifier can be calculated as shown in
the Terminating a Single-Ended Input section. If R1 = R2 = R3 =
R4 = 1 kΩ, the single-ended input impedance is approximately
1.33 kΩ, which, in parallel with a 52.3 Ω termination resistor,
provides a 50 Ω termination for the source. An additional 25.5 Ω
(1025.5 Ω total) at the inverting input balances the parallel
impedance of the 50 Ω source and the termination resistor driving
the noninverting input. However, if a differential source input is
used, the differential input impedance is 2 kΩ. In this case, two
52.3 Ω termination resistors are used to terminate the inputs.
In this example, the signal generator has a 10 V p-p symmetric,
ground-referenced bipolar output. The VOCM input is bypassed for
noise reduction and set externally with 1% resistors to 2.5 V to
maximize the output dynamic range. With an output common-
mode voltage of 2.5 V, each ADA4940-1 output swings between
0 V and 5 V, opposite in phase, providing a gain of 1 and a
10 V p-p differential signal to the ADC input. The differential RC
section between the ADA4940-1 output and the ADC provides
single-pole, low-pass filtering with a corner frequency of 1.79 MHz
and extra buffering for the current spikes that are output from the
ADC input when its sample-and-hold (SHA) capacitors are
discharged.
The total system power in Figure 73 is under 35 mW. A large
portion of that power is the current coming from supplies to the
output, which is set at 2.5 V, going back to the input through the
feedback and gain resistors. To reduce that power to 25 mW,
increase the value of the feedback and gain resistor from 1 kΩ
to 2 kΩ and set the value of the resistors R5 and R6 to 3 kΩ. The
ADR435 is used to regulate the +6 V supply to +5 V, which ends
up powering the ADC and setting the reference voltage for the
VOCM pin.
Figure 72 shows the fft of a 20 kHz differential input tone
sampled at 1 MSPS. The second and third harmonics are down
at 118 dBc and 122 dBc.
0
–160
–140
–120
–100
–80
–60
–40
–20
0
20k
40k
60k
80k
100k
AM
P
L
IT
UDE
(
d
B)
FREQUENCY (Hz)
0
845
2-
0
69
Figure 72. Distortion Measurement of a 20 kHz Input Tone (CN-0237)
0
845
2-
06
6
33
10F
R1
–DIN
+2.5V
+5V
+6V
–1V
R2
R4
+6V
REF
VDD
GND
IN+
IN–
AD7982
2.7nF
–IN
+OUT
–OUT
+IN
R3
+DIN
ADR435
0.1F
R6
R5
SERIAL
INTERFACE
–FB
+FB
ADA4940-1
VOCM
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