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  connection diagrams to-99 (h) package plastic (n ), and cerdip (q) packages rev. b information furnished by analog devices is believed to be accurate and reliable. however, no responsibility is assumed by analog devices for its use, nor for any infringements of patents or other rights of third parties which may result from its use. no license is granted by implication or otherwise under any patent or patent rights of analog devices. a ultralow offset voltage dual op amp AD708 one technology way, p.o. box 9106, norwood, ma 02062-9106, u.s.a. tel: 617/329-4700 fax: 617/326-8703 features very high dc precision 30 m v max offset voltage 0.3 m v/ 8 c max offset voltage drift 0.35 m v p-p max voltage noise (0.1 hz to 10 hz) 5 million v/v min open loop gain 130 db min cmrr 120 db min psrr matching characteristics 30 m v max offset voltage match 0.3 m v/ 8 c max offset voltage drift match 130 db min cmrr match single version: ad707 available in 8-pin plastic mini-dip, hermetic cerdip and to-99 metal can packages, chips and /883b parts available. product description the AD708 is a very high precision, dual monolithic operational amplifier. each amplifier individually offers excellent dc precision with the best available max offset voltage and offset voltage drift of any dual bipolar op amp. in addition, the matching specifica- tions are the best available in any dual op amp. the AD708 sets a new standards for dual precision op amps by providing 5 v/ m v min open loop gain and guaranteed max input voltage noise of 350 nv p-p (0.1 hz to 10 hz). all dc specifica- tions show excellent stability over temperature, with offset voltage drift typically 0.1 m v/ c and input bias current drift of 25 pa/ c max. both cmrr (130 db min) and psrr (120 db min) are an order of magnitude improved over any available single monolithic op amp except the ad707. the AD708 is available in four performance grades. the AD708j is rated over the commercial temperature range of 0 c to +70 c and jis available in a plastic mini-dip package. the AD708a and AD708b are rated over the industrial temperature range of C40 c to +85 c and are available in a cerdip and to- 99 package. the AD708s is rated over the military temperature range of C55 c to +125 c and is available in cerdip and to-99 packages. military versions are available processed to mil- std-883b, rev. c. application highlights 1. the combination of outstanding matching and individual specifications make the AD708 ideal for constructing high gain, precision instrumentation amplifiers. 2. the low offset voltage drift and low noise of the AD708 allows the designer to amplify very small signals without sacrificing overall system performance. 3. the AD708s 10 v/ m v typical open loop gain and 140 db common-mode rejection make it ideal for precision applications. 4. unmounted dice are available for hybrid circuit applications. 5. the AD708 is an improved replacement for the lt1002.
AD708Cspecifications (@ +25 8 c and 6 15 v dc, unless otherwise noted) C2C rev. b AD708j/a AD708b AD708s model conditions min typ max min typ max min typ max units input offset voltage 1 30 100 5 50 5 30 m v t min to t max 50 150 15 65 15 50 m v drift 0.3 1.0 0.1 0.4 0.1 0.3 m v/ c long term stability 0.3 0.3 0.3 m v/month input bias current 1.0 2.5 0.5 1.0 0.5 1 na t min to t max 2.0 4.0 1.0 2.0 1.0 4 na average drift 15 40 10 25 10 30 pa/ c offset current v cm = 0 v 0.5 2.0 0.1 1.0 0.1 1 na t min to t max 2.0 4.0 0.2 1.5 0.2 1.5 na average drift 2 60 1 25 1 25 pa/ c matching characteristics 2 offset voltage 80 50 30 m v t min to t max 150 75 50 m v offset voltage drift 1.0 0.4 0.3 m v/ c input bias current 4.0 1.0 1.0 na t min to t max 5.0 2.0 2.0 na common-mode rejection 120 140 130 140 130 140 db t min to t max 110 130 130 db power supply rejection 110 120 120 db t min to t max 110 120 120 db channel separation 135 140 140 db input voltage noise 0.1 hz to 10 hz 0.23 0.6 0.23 0.6 0.23 0.35 m v p-p f = 10 hz 10.3 18 10.3 12 10.3 12 nv/ ? hz f = 100 hz 10.0 13.0 10.0 11.0 10.0 11 nv/ ? hz f = 1 khz 9.6 11.0 9.6 11.0 9.6 11 nv/ ? hz input current noise 0.1 hz to 10 hz 14 35 14 35 14 35 pa p-p f = 10 hz 0.32 0.9 0.32 0.8 0.32 0.8 pa/ ? hz f = 100 hz 0.14 0.27 0.14 0.23 0.14 0.23 pa/ ? hz f = 1 khz 0.12 0.18 0.12 0.17 0.12 0.17 pa/ ? hz common-mode rejection ratio v cm = 13 v 120 140 130 140 130 140 db t min to t max 120 140 130 140 130 140 db open-loop gain v o = 10 v r load 3 2 k w 3 10 5 10 4 10 v/ m v t min to t max 310 510 4 7v/ m v power supply rejection ratio v s = 3 v to 18 v 110 130 120 130 120 130 db t min to t max 110 130 120 130 120 130 db frequency response closed loop bandwidth 0.5 0.9 0.5 0.9 0.5 0.9 mhz slew rate 0.15 0.3 0.15 0.3 0.15 0.3 v/ m s input resistance differential 60 200 200 m w common mode 200 400 400 g w output voltage r load 3 10 k w 13.5 14 13.5 14.0 13.5 14 v r load 3 2 k w 12.5 13.0 12.5 13.0 12.5 13 v r load 3 1 k w 12.0 12.5 12.0 12.5 12.0 12.5 v r load 3 2 k w t min to t max 12.0 13.0 12.0 13.0 12.0 13 v open-loop output resistance 60 60 60 w
AD708j/a AD708b AD708s model conditions min typ max min typ max min typ max units power supply quiescent current 4.5 5.5 4.5 5.5 4.5 5.5 ma power consumption v s = 15 v no load 135 165 135 165 135 165 mw v s = 3 v 12 18 12 18 12 18 mw operating range 3 18 3 18 3 18 v notes 1 input offset voltage specifications are guaranteed after 5 minutes of operation at t a = +25 c. 2 matching is defined as the difference between parameters of the two amplifiers. all min and max specifications are guaranteed. specifications in boldface are tested on all production units at final electrical test. results from those tests are used to calculate outgoing quality levels. specifications subject to change without notice. absolute maximum ratings 1 supply voltage . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 22 v internal power dissipation 2 input voltage 3 . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . v s output short circuit duration . . . . . . . . . . . . . . . . indefinite differential input voltage . . . . . . . . . . . . . . . . . . +v s and Cv s storage temperature range (q, h) . . . . . . . C65 c to +150 c storage temperature range (n) . . . . . . . . . C65 c to +125 c lead temperature range (soldering 60 sec) . . . . . . . . +300 c notes 1 stresses above those listed under absolute maximum ratings may cause permanent damage to the device. this is a stress rating only and functional operation of the device at these or any other conditions above those indicated in the operational section of this specification is not implied. exposure to absolute maximum rating conditions for extended periods may affect device reliability. 2 thermal characteristics 8-pin plastic package: q jc = 33 c/watt, q ja = 100 c/watt 8-pin cerdip package: q jc = 30 c/watt, q ja = 110 c/watt 8-pin metal can package: q jc = 65 c/watt, q ja = 150 c/watt. 3 for supply voltages less than 22 v, the absolute maximum input voltage is equal to the supply voltage. metalization photograph dimensions shown in inches and (mm). contact factory for latest dimensions. rev. b C3C AD708 ordering guide temperature package package model range description option* AD708jn 0 c to +70 c 8-pin plastic dip n-8 AD708aq C40 c to +85 c 8-pin cerdip q-8 AD708bq C40 c to +85 c 8-pin cerdip q-8 AD708sq C55 c to +125 c 8-pin cerdip q-8 AD708ah C40 c to +85 c 8-pin header h-08a AD708bh C40 c to +85 c 8-pin header h-08a AD708sh C55 c to +125 c 8-pin header h-08a AD708sh/883b C55 c to +125 c 8-pin header h-08a AD708j grade chips 0 c to +70 c die AD708s grade chips C55 c to +125 c die *n = plastic dip; q = cerdip; h = hermetic metal can.
rev. b C4C (v s = 6 15 v and t a = +25 8 c unless otherwise noted) AD708Ctypical characteristics
AD708 rev. b C5C p
rev. b C6C figure 24. crosstalk with no load figure 26. crosstalk under forced source and sink conditions figure 25. crosstalk with 2 k w load figure 20. typical distribution of input bias current match crosstalk from thermal effects of power dissipation AD708Cmatching characteristics figure 19. typical distribution of offset voltage drift match figure 18. typical distribution of offset voltage match figure 21. typical distribution of input offset current match figure 22. psrr match vs. temperature figure 23. cmrr match vs. temperature
AD708 rev. b C7C crosstalk performance of the AD708 the AD708 exhibits very low crosstalk as shown in figures 24, 25 and 26. figure 24 shows the offset voltage induced in side b of the AD708 when side as output is moving slowly (0.2 hz) from C10 v to +10 v under no load. this is the least stressful situation to the part since the overall power in the chip does not change; only the location of the power in the output devices changes. figure 25 shows side bs input offset voltage change when side a is driving a 2 k w load. here the power is being changed in the chip with the maximum power change occurring at 7.5 v. figure 26 shows crosstalk under the most severe conditions. side a is connected as a follower with 0 v input, and is now forced to sink and source 5 ma of output current (power = (30 v) (5 ma) = 150 mw). even this large change in power causes only an 8 m v (linear) change in side bs input offset voltage. operation with a gain of C100 to show the outstanding dc precision of the AD708 in real application, table i shows an error budget calculation for a gain of C100 configuration shown in figure 27. table i. maximum error contribution a v = 100 (s grade) error sources (full scale: v out = 10 v, v in = 100 mv) v os 30 m v/100 mv = 300 ppm i os (100 k w )(1 na)/10 v = 10 ppm gain (2 k w load) 10 v/(5*10 6 ))/100 mv = 20 ppm noise 0.35 m v/100 mv = 4 ppm v os drift (0.3 m v/ c)/100 mv = 3 ppm/ c = 334 ppm +3 ppm/ c total unadjusted error @ 25 c = 334 ppm > 11 bits C55 c to +125 c = 634 ppm > 10 bits with offset calibrated out @ 25 c = 34 ppm > 14 bits C55 c to +125 c = 334 ppm > 11 bits figure 27. gain of C100 configuration this error budget assumes no error in the resistor ratio and no error from power supply variation (the 120 db minimum psrr of the AD708s makes this a good assumption). the external resistors can cause gain error from mismatch and drift over temperature. high precision programmable gain amplifier the three op amp programmable gain amplifier shown in figure 28 takes advantage of the outstanding matching characteristics of the AD708 to achieve high dc precision. the gains of the circuit figure 28. precision pga are controlled by the select lines, a0 and a1 of the ad7502 multiplexer, and are 1, 10, 100 and 1000 in this design. the input stage attains very high dc precision due to the 30 m v maximum offset voltage match of the AD708s and the 1 na maximum input bias current match. the accuracy is maintained over temperature because of the ultralow drift performance of the AD708. the output stage uses an ad707j and well matched resistors configured as a precision subtracter. to achieve 0.1% gain accuracy, along with high common-mode rejection, the circuit should be trimmed as follows: to maximize common-mode rejection: 1. set the select lines for gain = 1 and ground v inb . 2. apply a precision dc voltage to v ina and trim r a until v o = Cv ina to the required precision. 3. next connect v inb to v ina and apply an input voltage equal to the full-scale common-mode expected. 4. trim r b until v o = 0 v. to minimize gain errors: 1. select gain = 10 with the control lines and apply a differential input voltage. 2. adjust the 100 w potentiometer such that v o = 10 v in (adjust v in magnitude as necessary). 3. repeat for gain = 100 and gain = 1000, adjusting 1 k w and 10 k w potentiometers, respectively. the design shown should allow for 0.1% gain accuracy and 0.1 m v/v common-mode rejection when 1% resistors and 5% potentiometers are used. bridge signal conditioner the AD708 can be used in the circuit in figure 29 to produce an accurate and inexpensive dynamic bridge conditioner. the low offset voltage match and low offset voltage drift match of the AD708 combine to achieve circuit performance better than all but the best instrumentation amplifiers. the AD708s out- standing specs: open loop gain, input offset currents and low input bias currents, do not limit circuit accuracy.
AD708 rev. b C8C c1252aC10C2/91 printed in u.s.a. as configured, the circuit only requires a gain resistor, r g , of suitable accuracy and a stable, accurate voltage reference. the transfer function is: v o = v ref [ d r/(r+ d r)][r g /r] and the only significant errors due to the AD708s are: v os out = (v os match)(2r g /r) = 30 mv v os out(t) = (v os drift)(2r g /r) = 0.3 mv/ c to achieve high accuracy, the resistor r g should be 0.1% or better and have a low drift coefficient. figure 29. bridge signal conditioning circuit figure 30. precision absolute value circuit precision absolute value circuit the AD708 is ideally suited to the precision absolute value circuit shown in figure 30. the low offset voltage match of the AD708 enables this circuit to accurately resolve the input signal. in addition, the tight offset voltage drift match maintains the resolution of the circuit over the full military temperature range. the AD708s high dc open loop gain and exceptional gain linearity allows the circuit to perform well at both large and small signal levels. in this circuit, the only significant dc errors are due to the offset voltage of the two ampliliers, the input offset current match of the amplifiers, and the mismatch of the resistors. errors associ- ated with the AD708s contribute less than 0.001% error over C55 c to +125 c. maximum error at 25 c 30 m v + 10 k w () 1 na () 10 v = 40 m v /10 v = 4 ppm maximum error at +125 c or C55 c 50 m v + 2 na () 10 k w () 10 v = 7 ppm @ + 125 c figure 31 shows v out vs. v in for this circuit with a 3mv input signal at 0.05 hz. note that the circuit exhibits very low offset at the zero crossing. this circuit can also produce v out = C|v in | by reversing the polarity of the two diodes. figure 31. absolute value circuit performance (input signal = 0.05 hz) selection of passive components to takc full advantagc of thc high precision and low drift characteristics of the AD708, high quality passive components must be used. discrete resistors and resistor networks with temperature coefficients of less than 10 ppm/ c are available from vishay, caddock, prp and others. outline dimensions dimensions shown in inches and (mm). to-99 (h) package cerdip (q) package mini-dip (n) package


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