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ADA4351-2ACPZ-R7 Datasheet(PDF) 32 Page - Analog Devices

No. de pieza ADA4351-2ACPZ-R7
Descripción Electrónicos  Compact, Dual-Channel, Precision, Programmable Gain Transimpedance Amplifier (PGTIA)
PDF  36 Pages
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Fabricante Electrónico  AD [Analog Devices]
Página de inicio  http://www.analog.com
Logo AD - Analog Devices

ADA4351-2ACPZ-R7 Datasheet(HTML) 32 Page - Analog Devices

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Data Sheet
ADA4351-2
APPLICATIONS INFORMATION
analog.com
Rev. 0 | 32 of 36
ERROR BUDGET
The output offset error contributed by the ADA4351-2 in a transi-
mpedance application consists of three major sources: IOFF, IB,
and VOS. In addition, there are error contributions from CMRR and
PSRR, although these errors can be reduced by using accurate
supplies and calibration. The gain error of the transimpedance
amplifier is the tolerance of the feedback resistance.
For a 5 V nominal supply voltage, calculate the full output error by
using the following equation:
Output Error (V)=VOS+ IOFF+IB− RF +
IB+ RIN+ +10−CMRR20VS2−VCM+
10−PSRR20 5−VS1−∆VS100 + ID ∆RF (6)
where:
IB− is the input bias current at the inverting input.
IB+ is the input bias current at the noninverting input.
RIN+ is the source resistance at the noninverting input.
CMRR and PSRR are in dB.
ΔVS is the highest the supply can be in the application minus the
lowest the supply can be in the application.
ΔRF is the percent tolerance × 100 of RF.
If the noninverting resistance is kept at a minimum, the IB− × RIN+
is insignificant. The CMRR term is reduced by operating at VCM
equal to midsupply; however, this may not be suitable for many
applications. An initial calibration can alleviate the error related to
CMRR. The error contributed by PSRR can be reduced by using
accurate supplies or by an initial calibration. The gain error can be
reduced by using more accurate feedback resistors.
It is also useful to look at the input-referred error at different values
of feedback resistance to define a given TIA application. Figure 93
shows the input-referred percent error for transimpedance values of
5 kΩ and 500 kΩ.
Figure 93. DC Input Referred Error vs. Input Current (ID)
At a low ID and a low RF, the offset voltage dominates the input
error. At a low ID and a high RF, the bias and leakage currents
dominate the input error. The input error reduces with an increased
current level until the amplifier clips and error shoots up.
ADC DRIVING
The ADA4351-2 can be used for directly driving a successive
approximation register (SAR) ADC. The slew rate and THD of the
ADA4351-2 contribute to the low distortion even at larger output
levels. The ADA4351-2 also draws low supply current and can thus
be paired with low power, high resolution ADCs.
Selecting the External RC Filter Components
Figure 94 shows a typical single-supply application using the
AD4696, a high accuracy, low power, 16-channel, 16-bit SAR ADC.
The ADA4351-2 is configured as an ADC driver that can switch
between gains. At the output of the ADA4351-2, which is also at the
analog front end of the ADC, is an external low-pass filter formed by
REXT and CEXT. Note that these components reduce the wideband
noise and nonlinear voltage kickback in the analog inputs of the
ADCs.
Figure 94. Typical Single-Supply Application Using the AD4696
The selection for the RC filter is an iterative process, and the best
combination depends on the intended application. For example,
in lower frequency applications, the designer can opt to reduce
the corner frequency by choosing a higher value RC to introduce
less noise, but the designer must also make sure that this RC
combination allows the signal to settle faster than the selected
acquisition phase duration of the ADC.
For detailed information on selecting an RC filter configuration, see
the Analog Devices, Inc., Analog Dialogue article, Front-End Ampli-
fier and RC Filter Design for a Precision SAR Analog-to-Digital
Converter. In addition, refer to the ADC data sheet when selecting
these components as well.



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