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ADI engineers share their lab work with you in this
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ADI engineers share their lab work with you in this ‘Circuits from the Lab’ Circuit Note. You can combine these product pairings quickly and with confidence. Please review the disclaimer at the bottom of the page for more information.
Copyright 2008, Analog Devices, Inc. All rights reserved. "Circuits from the Lab" from Analog Devices have been designed and built by Analog Devices engineers. Standard engineering practices have been employed in the design and construction of each circuit, and their function and performance have been tested and verified in a lab environment at room temperature. However, you are solely responsible for testing the circuit and determining its suitability and applicability for your use and application. Accordingly, in no event shall Analog Devices be liable for direct, indirect, special, incidental, consequential or punitive damages due to any cause whatsoever connected to the use of any "Circuits from the Lab". Circuit variations described in the Common Variations section of the document have not necessarily also been built and tested.
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| Circuit Types: | Multiplying |
| Optimized For: | High Performance, High Precision |
| Applications: | Instrumentation, Process Control |
This circuit provides precision, bipolar data conversion using the AD5547/AD5557 current output DAC with the ADR01 precision reference and AD8512 operational amplifier (op amp). This circuit provides accurate, low noise, high speed output voltage capability and is well suited for process control, automatic test equipment, and digital calibration applications.
The AD5547/AD5557 are dual-channel, precision 16-/14-bit, multiplying, low power, current output, parallel input digital-to-analog converters. They operate from a single 2.7 V to 5.5 V supply with ±15 V multiplying references for 4-quadrant outputs. Built-in 4-quadrant resistors facilitate the resistance matching and temperature tracking that minimize the number of components needed for multiquadrant applications.
This circuit uses the ADR01, which is a highly accuracy, high stability, 10 V precision voltage reference. As voltage reference temperature coefficient and long-term drift are primary considerations for applications requiring high precision conversion, this device is an ideal candidate.
An op amp is used in the current-to-voltage (I-V) stage of this circuit. An op amp’s bias current and offset voltage are both important selection criteria for use with precision current output DACs. Therefore, this circuit employs the AD8512 op amp, which has ultralow offset voltage (80 μV typical for B-grade device) and bias current (25 pA typical). C9 is a compensation capacitor. The value of C9 for this application is 2.2 pF, which is optimized to compensate for the external output capacitance of the DAC.
The input offset voltage of the op amp is multiplied by the variable noise gain (due to the code-dependent output resistance of the DAC) of the circuit. A change in this noise gain between two adjacent digital codes produces a step change in the output voltage due to the amplifier’s input offset voltage. This output voltage change is superimposed on the desired change in output between the two codes and gives rise to a differential linearity error, which, if large enough, could cause the DAC to be nonmonotonic. In general, the input offset voltage should be a fraction of an LSB to ensure monotonic behavior when stepping through codes. For the ADR01 and the AD5547, the LSB size is

The input bias current of an op amp also generates an offset at the voltage output as a result of the bias current flowing through the feedback resistor, RFB. In the case of the AD8512, the input bias current is only 25 pA typical, which flowing through the RFB resistor (10 kΩ typical) produces an error of only 0.25 μV.
The AD5547/AD5557 DAC architecture uses a current-steering R-2R ladder design that requires an external reference and op-amp to convert to an output voltage. VOUT can be calculated for the AD5547 using the equation

where D = 0 to 65535 for 16-bit DAC (D is the decimal equivalent of the input code). VOUT can be calculated for the AD5557 using the equation

where D = 0 to 16383 for 14-bit DAC (D is the decimal equivalent of the input code).
The AD8605 is another excellent op amp candidate for the I-V conversion circuit. It also has a low offset voltage and low bias current. The ADR02 and ADR03 are other low noise references available from the same reference family as the ADR01. Other low noise references that would be suitable are the ADR441 and ADR445 products. The size of the reference input voltage is restricted by the rail-to-rail voltage of the op amp selected.
These circuits can also be used as a variable gain element by utilizing the multiplying bandwidth nature of the R-2R structure of the AD5547/AD5557 DAC. In this configuration, remove the external precision reference and apply the signal to be multiplied to the reference input pins of the DAC.
Contributed June, 2009
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AD5547:
Dual Current Output, Parallel Input, 16-Bit Multiplying DACs with 4-Quadrant ResistorsThe AD5547/AD5557 are dual precision, 16-/14-bit, multiplying, low power, current-output, parallel input, digital- to-analog converters. They are designed to operate from single +5 V supply with ±10 V multiplying references for 4-quadrant outputs with up to 4 MHz bandwidth.
The built-in 4-quadrant resistors facilitate resistance matching and temperature tracking, which minimize the numbers More
Data Sheet Rev A, 09/2009 (pdf 481kB)
Data Sheet Rev A, 09/2009 (pdf 481kB) -
AD5557:
Dual Current Output, Parallel Input, 14-Bit Multiplying DACs with 4-Quadrant ResistorsThe AD5547/AD5557 are dual precision, 16-/14-bit, multiplying, low power, current-output, parallel input, digital- to-analog converters. They are designed to operate from single +5 V supply with ±10 V multiplying references for 4-quadrant outputs with up to 4 MHz bandwidth.
The built-in 4-quadrant resistors facilitate resistance matching and temperature tracking, which minimize the numbers More
Data Sheet Rev A, 09/2009 (pdf 481kB)
Data Sheet Rev A, 09/2009 (pdf 481kB) -
AD8512:
Precision, Very Low Noise, Low Input Bias Current, Wide Bandwidth JFET Operational Amplifier (Dual)The AD8510/AD8512/AD8513 are single-, dual-, and quad-precision JFET amplifiers that feature low offset voltage, input bias current, input voltage noise, and input current noise.
The combination of low offsets, low noise, and very low input bias currents makes these amplifiers especially suitable for high impedance sensor amplification and precise current measurements using shunts. The More
Data Sheet Rev I, 03/2009 (pdf 459kB)
Data Sheet Rev I, 03/2009 (pdf 459kB) -
AD8605:
Precision, Low Noise, CMOS, Rail-to-Rail, Input/Output Operational Amplifier (single)The AD8605, AD8606, and AD8608* are single, dual, and quad rail-to-rail input and output, single-supply amplifiers. They feature very low offset voltage, low input voltage and current noise, and wide signal bandwidth. They use the Analog Devices, Inc. patented DigiTrim® trimming technique, which achieves superior precision without laser trimming.
The combination of low offsets, low More
Data Sheet Rev I, 09/2008 (pdf 722kB)
Data Sheet Rev I, 09/2008 (pdf 722kB) -
ADR01:
Ultracompact, Precision 10.0 V Voltage ReferenceThe ADR01, ADR02, ADR03, and ADR06 are precision 10.0 V, 5.0 V, 2.5 V, and 3.0 V band gap voltage references featuring high accuracy, high stability, and low power consumption. The parts are housed in tiny, 5-lead SC70 and TSOT packages, as well as in 8-lead SOIC versions. The SOIC versions of the ADR01, ADR02, and ADR03 are drop-in replacements1 to the industry-standard REF01, REF02, More
Data Sheet Rev L, 12/2008 (pdf 738kB)
Data Sheet Rev L, 12/2008 (pdf 738kB) -
ADR441:
Ultralow Noise, LDO XFET Voltage Reference with Current Sink and SourceThe ADR44x series is a family of XFET® voltage references featuring ultralow noise, high accuracy, and low temperature drift performance. Using Analog Devices, Inc., patented temperature drift curvature correction and XFET (eXtra implanted junction FET) technology, voltage change vs. temperature nonlinearity in the ADR44x is greatly minimized.
The XFET references offer better noise More
Data Sheet Rev C, 03/2008 (pdf 522kB)
Data Sheet Rev C, 03/2008 (pdf 522kB) -
ADR445:
Ultralow Noise, LDO XFET Voltage Reference with Current Sink and SourceThe ADR44x series is a family of XFET® voltage references featuring ultralow noise, high accuracy, and low temperature drift performance. Using Analog Devices, Inc., patented temperature drift curvature correction and XFET (eXtra implanted junction FET) technology, voltage change vs. temperature nonlinearity in the ADR44x is greatly minimized.
The XFET references offer better More
Data Sheet Rev C, 03/2008 (pdf 522kB)
Data Sheet Rev C, 03/2008 (pdf 522kB)
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