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  4707 dey road liverpool, n.y. 13088 m.s.kennedy corp. (315) 701-6751 features: 707 ultra-accurate/high slew rate inverting operational amplifier very fast setting time - 10ns to 0.1% typical very fast slew rate - 4500 v/s typical unity gain bandwidth - 220 mhz typical low noise - 0.15uvrms typical (f=0.1hz to 10hz) very accurate (low offset) 75v max. pin compatable with clc207 and kh207 contact msk for mil-prf-38534 qualification status mil-prf-38534 certified description: the msk 707 is an inverting composite operational amplifier that combines extremely high bandwidth and slew rate with excellent d.c. accuracy to produce an amplifier perfectly suited for high performance data aquisition and conversion as well as high speed commmunication and line drive. the performance of the msk 707 is guaranteed over the full military tem- perature range and for more cost sensitive applications is available in an industrial version. the standard package style is a space efficient 12 pin to-8. however, alternate package styles are available upon request. equivalent schematic typical applications typical applications pin-out information high performance data aquisition coaxial line driver data conversion circuits high speed communications ultra high resolution video amplifier positive power supply nc case ground nc inverting input non-inverting input 1 2 3 4 5 6 case ground internal feedback negative power supply negative short circuit output positive short circuit 7 8 9 10 11 12 rev. a 9/06 1 equivalent schematic
static supply voltage range quiescent current thermal resistance input input offset voltage input offset voltage drift input bias current input offset current input impedance power supply rejection ratio input noise voltage input noise voltage density input noise current density output output voltage swing output current settling time 1 full power bandwidth bandwidth (small signal) transfer characteristics slew rate supply voltage peak output current differential input voltage thermal resistance junction to case output devices only storage temperature range -65c to +150c lead temperature range 300c (10 seconds soldering) power dissipation see curve junction temperature 150c case operating temperature range (msk707h/e) -55c to+125c (msk707) -40c to +85c group a subgroup - 1 2,3 - 1 2,3 1 2,3 1 2,3 - - - - - 4 4 - 4 - - 4 v ma ma c/w v v/c na na na na m w v/v vp-p nv ? hz pa ? hz v ma ns mhz mhz v/s vin=0v av=-1v/v output devices junction to case vin=0v av=-100v/v vin=0v vcm=0v either input vcm=0v f=dc differential d vcc=5v f= 0.1hz to 10hz f=1khz f=1khz r l =100 w av=-3v/v f 10mhz t j <150c 0.1% 10v step r l =1k w r l =100 w vo=10v r l =100 w v out =10v r l =1k w av= -1.5v/v 18v 200ma 12v 46c/w v cc i out v in r th parameter t st t ld p d t j t c electrical specifications absolute maximum ratings test conditions notes: av= -1, measured in false summing junction circuit. guaranteed by design but not tested. typical parameters are representative of actual device performance but are for reference o nly. industrial grade and "e" suffix devices shall be tested to subgroups 1 and 4 unless otherwise specified. military grade devices ("h" suffix) shall be 100% tested to subgroups 1,2,3 and 4. subgroups 5 and 6 testing available upon request. subgroup 1,4 subgroup 2 subgroup 3 measurement taken 0.5 seconds after application of power using automatic test equipment. continuous operation at or above absolute maximum ratings may adversely effect the device performance and/or life cycle. t a =t c =+25c t a =t c =+125c t a =t c =-55c msk 707h/e min. 12 - - - - - - - - - - - - - - 10 100 - 20 175 typ. 15 35 36 45 25 0.5 10 15 5 5 5 1 0.15 3.8 0.6 12.5 120 10 22 220 4500 max. 18 37 39 - 75 1.5 40 80 20 40 - 8 - - - - - - - - - typ. 15 37 - 48 50 0.75 20 - 10 - 5 2 0.2 4 0.7 12.5 120 15 20 190 msk 707 min. 12 - - - - - - - - - - - - - - 10 100 - 15 165 2500 max. 18 40 - - 100 2.0 60 - 30 - - 20 - - - - - - - - - units 2 2 open loop voltage gain r l =1k w f=1khz v out =10v 3000 4500 100 110 - 95 105 - db 2 2 2 2 2 7 2 2 vcc=15v unless otherwise specified 1 5 7 8 3 4 2 6 2 2 2 2 2 rev. a 9/06 8
application notes heat sinking to determine if a heat sink is necessary for your application and if so, what type, refer to the thermal model and governing equation below. governing equation: example : this example demonstrates a worst case analysis for the op-amp output stage. this occurs when the output voltage is 1/2 the power supply voltage. under this condition, maximum power transfer oc- curs and the output is under maximum stress. conditions: v cc =16vdc v o =8vp sine wave, freq.=1khz r l =100 w for a worst case analysis we will treat the +8vp sine wave as an 8vdc output voltage. 1.) find driver power dissapation p d =(vcc-vo) (vo/rl) =(16v-8v) (8v/100 w ) =0.64w 2.) for conservative design, set t j =+125c 3.) for this example, worst case t a =+90c 4.) r q jc =45c/w from msk 707 data sheet 5.) r q cs =0.15c/w for most thermal greases 6.) rearrange governing equation to solve for r q sa r q sa =(( t j - t a )/ p d ) - ( r q jc ) - ( r q cs ) =((125c -90c)/0.64w) - 45c/w - 0.15c/w =54.7 - 46.15 =9.5c/w 3 t j = p d x (r q jc + r q cs + r q jc ) + t a where t j= junction temperature p d= total power dissipation r q jc= junction to case thermal resistance r q cs= case to heat sink thermal resistance r q sa= heat sink to ambient thermal resistance t c= case temperature t a= ambient temperature t s= sink temperature the value of the short circuit current limit resistors (r sc ) can be calculated as follows. +r sc =v cc -0.7/+i sc - r sc =v cc +0.7/-i sc short circuit current limit should be set at least 2x above the highest normal operating output current to keep the value of rsc low enough to ensure that the voltage dropped accross the short circuit current limit resistor doesn't adversely affect normal operation. internal feedback resistor the msk 707 is equipped with an internal 2k w feedback resistor. bandwidth and slew rate can be optimized by connecting the msk 707 as shown in figure 2. placing the feedback resistor inside the hybrid reduces printed circuit board trace length and its' asscociated capacitance which acts as a capacitive load to the op-amp output. reducing the capacitive load allows the output to slew faster and greater bandwidths will be realized. refer to table 1 for recom- mended rin values for various gains. approximate desired gain r in value 1.5k w table 1 whenever the internal resistor is not being used it is good practice to short pin 4 and 5 to avoid inadvertently picking up spurious sig- nals. approximate desired gain ri(+) ri(-) rf(ext) cf 1 -1 249 w 499 w 499 w 2 1 -2 160 w 249 w 499 w 2 1 -5 169 w 200 w 1k w 2 1 -8 100 w 124 w 1k w 2 1 90.9 w 100 w 1k w 2 -20 -10 1 100 w 100 w 2k w 2 table 2 1 the positive input resistor is selected to minimize any bias current induced offset voltage. 2 the feedback capacitor will help compensate for stray input capacitance. the value of -1 -2 -10 750 w 150 w thermal model: output short circuit protection the output section of the msk 707 can be protected from direct shorts to ground by placing current limit resistors between pins 1 and 12 and pins 9 and 10 as shown in figure 1. recommended external component selection guide using external rf this capacitor can be dependent on individual applications. a 0.5 to 5pf capacitor is usually optimum for most applications. 3 effective load is rl in parallel with rf. rev. a 9/06
application notes con't stability and layout considerations as with all wideband devices, proper decoupling of the power lines is extremely important. the power supplies should be by-passed as near to pins 9 and 1 as possible with a parallel grouping of a 0.01f ceramic disc and a 4.7f tantalum capacitor. wideband de- vices are also sensitive to printed cicuit board layout. be sure to keep all runs as short as possible, especially those associated with the summing junction and power lines. circuit traces should be sur- rounded by ground planes whenever possible to reduce unwanted resistance and inductance. the curve below shows the relationship between resonant frequency and capacitor value for 3 trace lengths. feedback capacitance feedback capacitance is commonly used to compensate for the "input capacitance" effects of amplifiers. overshoot and ringing, especially with capacitive loads, can be reduced or eliminated with the proper value of feedback capacitance. all capacitors have a self-resonant frequency. as capacitance in- creases, self-resonant frequency decreases (assuming all other fac- tors remain the same). longer lead lengths and pc traces are other factors that tend to decrease the self-resonant frequency. when a feedback capacitor's self-resonant frequency falls within the fre- quency band for which the amplifier under consideration has gain, oscillation occurs. these influences place a practical upper limit on the value of feedback capacitance that can be used. this value is typically 0.5 to 5pf for the msk 707. optimizing slew rate when measuring the slew rate of the msk 707, many external factors must be taken into consideration to achieve best results. the closed loop gain of the test fixture should be -1.5v/v or less with the external feedback resistor being 499 w. lead length on this resis- tor must be as short as possible and the resistor should be small. no short circuit current limit resistors should be used. (short pin 1 to pin 12 and pin 9 to pin 10). pins 2,3,7 and 4 should all be shorted directly to ground for optimum response. since the internal feedback resistor isn't being used, pin 8 should be shorted to pin 5. sma connectors are recomended for the input and output connectors to keep external capacitances to a minimum. to compensate for input capacitance, a small 0.5 to 5pf high frequency variable capacitor should be connected in parallel with the feedback resistor. this ca- pacitor will be adjusted to trim overshoot to a minimum. a 5500v/ s slew rate limit from -10v to +10v translates to a transition time of 2.9 nanoseconds. in order to obtain a transition time of that mag- nitude at the output of the test fixture, the transition time of the input must be much smaller. a rise time at the input of 500 picosec- onds or less is sufficient. if the transition time of the input is greater than 500 picoseconds, the following formula should be used, since the input transition time is now affecting the measured system tran- sition time. t a = ? t b 2+ t c 2 where: t a =transition time measured at output jack on msk 707 test card. t b =transition time measured at input jack on msk 707 test card. t c =actual output transition time of msk 707(note that this quantity will be calculated, not measured directly with the oscilloscope). the msk 707 is inverting, therefore when measuring ris- ing edge slew rate: t a = rise time measured at output t b = fall time measured at input t c = actual rise time of output when measuring falling edge slew rate: t a =fall time measured at output t b =rise time measured at input t c =actual fall time of output load considerations when determining the load an amplifier will see, the capacitive portion must be taken into consideration. for an amplifier that slews at 1000v/s, each pf will require 1ma of output current. to minimize ringing with highly capacitive loads, reduce the load time constant by adding shunt resistance. i=c(dv/dt) case connection the msk 707 has pin 3 and 7 internally connected to the case. pin 3 and 7 should be tied to a ground plane for sheilding. for special applications, consult factory. 4 rev. a 9/06
typical performance curves 5 rev. a 9/06
the information contained herein is believed to be accurate at the time of printing. msk reserves the right to make changes to its products or specifications without notice, however, and assumes no liability for the use of its products. please visit our website for the most recent revision of this datasheet. contact msk for mil-prf-38534 qualification status. mechanical specifications m.s. kennedy corp. 4707 dey road, liverpool, new york 13088 phone (315) 701-6751 fax (315) 701-6752 www.mskennedy.com note: all dimensions are 0.010 inches unless otherwise labeled. ordering information 6 msk707 h screening blank=industrial; h=mil-prf-38534 class h general part number e=extended reliability rev. a 9/06 weight=3 grams typical


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