LM101A-N_13 TI1 | Alldatasheet
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 LM101A/LM201A/LM301AOperationalAmplifiers Check forSamples: LM101A-N ,LM201A-N ,LM301A-N 1FEATURES DESCRIPTION The LM101A seriesare generalpurpose operational• Improved Specificationsinclude: amplifierswhich featureimprovedperformanceover• OffsetVoltage3 mV Maximum Over industrystandards like the LM709. AdvancedTemperature (LM101A/LM201A) processingtechniquesmake possiblean order of
- InputCurrent100 nA Maximum Over magnitudereductionininputcurrents,and a redesign of the biasingcircuitryreducesthe temperaturedriftTemperature (LM101A/LM201A) ofinputcurrent.• OffsetCurrent20 nA Maximum Over Temperature (LM101A/LM201A) This amplifieroffersmany featureswhich make its applicationnearlyfoolproof:Overload protectionon• SpecifiedDriftCharacteristics the inputand output,no latch-upwhen the common• OffsetsSpecifiedOver EntireCommon Mode mode range is exceeded, and freedom fromand Supply VoltageRanges oscillationsand compensationwitha single30 pF
- Slew Rate of10V/μs as a Summing Amplifier Capacitor. It has advantages over internally compensated amplifiersin that the frequency compensation can be tailoredto the particular application.For example,inlow frequencycircuitsit can be overcompensated for increased stability marginorthecompensationcan be optimizedtogive more than a factorof ten improvement in high frequencyperformanceformost applications. In Addition,the deviceprovidesbetteraccuracyand lowernoiseinhighimpedance circuitry.The low input currentsalsomake itparticularlywellsuitedforlong intervalintegratorsortimers,sample and holdcircuits and low frequencywaveform generators.Further, replacingcircuitswhere matched transistorpairs bufferthe inputsof conventionalIC op amps, Itcan giveloweroffsetvoltageand a driftata lowercost. The LM101A isensuredovera temperaturerangeof −55°C to+125°C, theLM201A from−25°C to+85°C, and theLM301A from0°C to+70°C. FastAC-DC Converter Feedforwardcompensationcan be used tomake a fastfullwave rectifierwithouta filter. Pleasebe aware thatan importantnoticeconcerningavailability,standardwarranty,and use incriticalapplicationsof Texas Instrumentssemiconductorproductsand disclaimerstheretoappearsattheend ofthisdatasheet. PRODUCTION DATA informationiscurrentas ofpublicationdate. Copyright© 1999–2013,Texas InstrumentsIncorporatedProductsconform to specificationsper the terms of the Texas Instrumentsstandardwarranty.Productionprocessingdoes not necessarilyincludetestingofallparameters.
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com These deviceshave limitedbuilt-inESD protection.The leadsshouldbe shortedtogetherorthedeviceplacedinconductivefoam duringstorageorhandlingtopreventelectrostaticdamage totheMOS gates. AbsoluteMaximum Ratings(1)(2) LM101A/LM201A LM301A SupplyVoltage ±22V ±18V DifferentialInputVoltage ±30V ±30V InputVoltage(3) ±15V ±15V OutputShortCircuitDuration(4) Continuous Continuous OperatingAmbientTemp. Range −55°C to+125°C (LM101A) 0°C to+70°C −25°C to+85°C (LM201A) TJ Max Power DissipationatTA = 25°C LMC0008C-Package (StillAir) 500 mW 300 mW (400LF/MinAirFlow) 1200 mW 700 mW ThermalResistance(Typical)θjA (400LF/MinAirFlow) 67°C/W 67°C/W (Typical)θjC StorageTemperatureRange −65°C to+150°C −65°C to+150°C Lead Temperature(Soldering,10 sec.) LMC0008C orNAB0008A, J0014A,NAD0010A 300°C 300°C P0008E 260°C 260°C ESD Tolerance(5) 2000V 2000V (1) AbsoluteMaximum Ratingsindicatelimitsbeyond whichdamage tothedevicemay occur.Operatingratingsindicateforwhichthe deviceisfunctional,butdo no ensurespecificperformancelimits.ElectricalCharacteristicsstateDC and AC electricalspecifications underparticulartestconditionswhichensurespecificlimits.Thisassumes thatthedeviceiswithintheOperatingRatings.Specifications arenotensuredforparameterswhere no limitisgiven,however,thetypicalvalueisa good indicationofdeviceperformance. (2) IfMilitary/Aerospacespecifieddevicesarerequired,pleasecontacttheTexas InstrumentsSalesOffice/Distributorsforavailabilityand specifications. (3) Forsupplyvoltageslessthan±15V,theabsolutemaximum inputvoltageisequaltothesupplyvoltage. (4) Continuousshortcircuitisallowedforcase temperaturesto125°C and ambienttemperaturesto75°C forLM101A/LM201A, and 70°C and 55°C respectivelyforLM301A. (5) Human body model,100 pF dischargedthrough1.5kΩ.
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 ElectricalCharacteristics(1) TA= TJ LM101A/LM201A LM301A Parameter TestConditions Units Min Typ Max Min Typ Max InputOffsetVoltage TA = 25°C, R S ≤ 50 kΩ 0.7 2.0 2.0 7.5 mV InputOffsetCurrent TA = 25°C 1.5 10 3.0 50 nA InputBiasCurrent TA = 25°C 30 75 70 250 nA InputResistance TA = 25°C 1.5 4.0 0.5 2.0 M Ω SupplyCurrent TA = 25°C VS = ±20V 1.8 3.0 mA VS = ±15V 1.8 3.0 mA LargeSignalVoltageGain TA = 25°C, VS = ±15V 50 160 25 160 V/mV VOUT = ±10V,R L ≥ 2 kΩ InputOffsetVoltage R S ≤ 50 kΩ 3.0 10 mV AverageTemperatureCoefficientof R S ≤ 50 kΩ 3.0 15 6.0 30 μV/°CInputOffsetVoltage InputOffsetCurrent 20 70 nA AverageTemperatureCoefficientof 25°C ≤ TA ≤ TMAX 0.01 0.1 0.01 0.3 nA/°C InputOffsetCurrent TMIN ≤ TA ≤ 25°C 0.02 0.2 0.02 0.6 nA/°C InputBiasCurrent 0.1 0.3 μA SupplyCurrent TA = TMAX ,VS = ±20V 1.2 2.5 mA LargeSignalVoltageGain VS = ±15V,VOUT = ±10V 25 15 V/mV R L ≥ 2k OutputVoltageSwing VS = ±15V R L = 10 kΩ ±12 ±14 ±12 ±14 V R L = 2 kΩ ±10 ±13 ±10 ±13 V InputVoltageRange VS = ±20V ±15 V Common-Mode RejectionRatio R S ≤ 50 kΩ 80 96 70 90 dB SupplyVoltageRejectionRatio R S ≤ 50 kΩ 80 96 70 96 dB (1) Unlessotherwisespecified,thesespecificationsapplyforC1 = 30 pF,±5V ≤ VS ≤ ±20V and −55°C ≤ TA ≤ +125°C (LM101A),±5V ≤ VS ≤ ±20V and −25°C ≤ TA ≤ +85°C (LM201A),±5V ≤ VS ≤ ±15V and 0°C ≤ TA ≤ +70°C (LM301A). Copyright© 1999–2013,Texas InstrumentsIncorporated SubmitDocumentationFeedback 3 ProductFolderLinks:LM101A-N LM201A-N LM301A-N
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com TypicalPerformance Characteristics LM101A/LM201A InputVoltageRange Output Swing Figure1. Figure2. VoltageGain Figure3. Performance Characteristics LM301A InputVoltageRange Output Swing Figure4. Figure5.
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 Performance Characteristics(continued) LM301A VoltageGain Figure6. Copyright© 1999–2013,Texas InstrumentsIncorporated SubmitDocumentationFeedback 5 ProductFolderLinks:LM101A-N LM201A-N LM301A-N
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com TypicalPerformance Characteristics Supply Current VoltageGain Figure7. Figure8. InputCurrent, Maximum Power Dissipation LM101A/LM201A/LM301A Figure9. Figure10. CurrentLimiting InputNoise Voltage Figure11. Figure12.
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 TypicalPerformance Characteristics(continued) InputNoise Current Common Mode Rejection Figure13. Figure14. Closed Loop Output Power Supply Rejection Impedance Figure15. Figure16. Copyright© 1999–2013,Texas InstrumentsIncorporated SubmitDocumentationFeedback 7 ProductFolderLinks:LM101A-N LM201A-N LM301A-N
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com TypicalPerformance CharacteristicsforVariousCompensation Circuits Pinconnectionsshown arefor8-pinpackages. C S= 30 pF C S= 30 pF C2 = 10 C1 Figure17.SinglePole Compensation Figure18.Two Pole Compensation Open Loop Frequency Response fo= 3 MHz Figure19.Feedforward Compensation Figure20. Open Loop Frequency Response Open Loop Frequency Response Figure21. Figure22.
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 TypicalPerformance CharacteristicsforVariousCompensation Circuits(continued) Large SignalFrequency Response Large SignalFrequency Response Figure23. Figure24. Large SignalFrequency Response VoltageFollowerPulse Response Figure25. Figure26. VoltageFollowerPulse Response InverterPulse Response Figure27. Figure28. Copyright© 1999–2013,Texas InstrumentsIncorporated SubmitDocumentationFeedback 9 ProductFolderLinks:LM101A-N LM201A-N LM301A-N
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com TYPICAL APPLICATIONS Pinconnectionsshown arefor8-pinpackages L ≃ R1 R2 C1 R S = R2 R P = R1 Figure29.VariableCapacitanceMultiplier Figure30.SimulatedInductor Figure31. FastInvertingAmplifierwithHigh InputImpedance fo = 10 kHz Figure33. Sine Wave Oscillator †May be zeroorequaltoparallel combinationofR1 and R2 forminimum offset. *Adjustforzerointegratordrift.CurrentdriftFigure32. InvertingAmplifierwithBalancing typically0.1nA/°C over−55°C to+125°CCircuit temperaturerange. Figure34. IntegratorwithBias Current Compensation
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 ApplicationHints Pinconnectionsshown arefor8-pinpackages. *Protectsinput †Protectsoutput ‡Protectsoutput— notneeded when R4 isused. Figure35. ProtectingAgainstGross FaultConditions Figure36. Compensating forStrayInputCapacitancesor Large Feedback Resistor Figure37. IsolatingLarge CapacitiveLoads Copyright© 1999–2013,Texas InstrumentsIncorporated SubmitDocumentationFeedback 11 ProductFolderLinks:LM101A-N LM201A-N LM301A-N
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com AlthoughtheLM101A isdesignedfortroublefreeoperation,experiencehas indicatedthatitiswise toobserve certainprecautionsgivenbelow toprotectthedevicesfrom abnormaloperatingconditions.Itmightbe pointed outthattheadvicegivenhere isapplicabletopracticallyany IC op amp, althoughtheexactreasonwhy may differwithdifferentdevices. When drivingeitherinputfrom a low-impedancesource,a limitingresistorshouldbe placedinserieswiththe inputleadtolimitthepeak instantaneousoutputcurrentofthesourcetosomethinglessthan100 mA. Thisis especiallyimportantwhen the inputsgo outsidea piece of equipment where they could accidentallybe connectedtohighvoltagesources.Large capacitorson theinput(greaterthan0.1μF) shouldbe treatedas a low sourceimpedance and isolatedwitha resistor.Low impedance sourcesdo notcause a problemunlesstheir outputvoltageexceeds thesupplyvoltage.However, thesuppliesgo tozerowhen theyare turnedoff,so the isolationisusuallyneeded. The outputcircuitryisprotectedagainstdamage from shortstoground.However, when theamplifieroutputis connectedtoa testpoint,itshouldbe isolatedby a limitingresistor,as testpointsfrequentlygetshortedtobad places.Further,when theampliferdrivesa loadexternaltotheequipment,itisalsoadvisabletouse some sort oflimitingresistancetoprecludemishaps. Precautionsshould be taken to insurethatthe power suppliesfor the integratedcircuitnever become reversed— even undertransientconditions.Withreversevoltagesgreaterthan1V, theIC willconductexcessive current,fusinginternalaluminum interconnects.Ifthereisa possibilityof thishappening,clamp diodeswitha highpeak currentratingshouldbe installedon thesupplylines.Reversalofthevoltagebetween V+ and V− will alwayscause a problem,althoughreversalswithrespecttogroundmay alsogivedifficultiesinmany circuits. The minimum valuesgivenforthefrequencycompensationcapacitorarestableonlyforsourceresistancesless than10 kΩ,straycapacitanceson thesumming junctionlessthan5 pF and capacitiveloadssmallerthan100 pF. Ifany oftheseconditionsare notmet,itbecomes necessarytoovercompensatetheamplifierwitha larger compensationcapacitor.Alternately,leadcapacitorscan be used inthefeedbacknetworktonegatetheeffectof straycapacitanceand largefeedbackresistorsoran RC networkcan be added toisolatecapacitiveloads. AlthoughtheLM101A isrelativelyunaffectedby supplybypassing,thiscannotbe ignoredaltogether.Generallyit isnecessarytobypass thesuppliestogroundatleastonce on everycircuitcard,and more bypass pointsmay be requiredifmore thanfiveamplifiersare used.When feed-forwardcompensationisemployed,however,itis advisableto bypass the supplyleadsof each amplifierwithlow inductancecapacitorsbecause of the higher frequenciesinvolved.
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 TypicalApplications Pinconnectionsshown arefor8-pinpackages. Figure38. Standard Compensation and OffsetBalancingCircuit Power Bandwidth:15 kHz Slew Rate:1V/μs Figure39. FastVoltageFollower Power Bandwidth:250 kHz SmallSignalBandwiidth:3.5MHz Slew Rate:10V/μs Figure40. FastSumming Amplifier Copyright© 1999–2013,Texas InstrumentsIncorporated SubmitDocumentationFeedback 13 ProductFolderLinks:LM101A-N LM201A-N LM301A-N
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com R3 = R4 + R5 R1 = R2 Figure41. BilateralCurrentSource Figure42. FastAC/DC Converter(1) R1 = R4; R2 = R3 *,† MatchingdeterminesCMRR. Figure43. InstrumentationAmplifier (1) Feedforwardcompensationcan be used tomake a fastfullwave rectifierwithouta filter
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 *Adjustforzerointegratordrift.Currentdrifttypically0.1nA/°C over0°C to+70°C temperaturerange. Figure44. IntegratorwithBias CurrentCompensation Figure45. VoltageComparator forDrivingRTL Logic or High CurrentDriver Figure46. Low Frequency Square Wave Generator *Polycarbonate-dielectriccapacitor Figure47. Low DriftSample and Hold Copyright© 1999–2013,Texas InstrumentsIncorporated SubmitDocumentationFeedback 15 ProductFolderLinks:LM101A-N LM201A-N LM301A-N
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com Figure48. VoltageComparator forDrivingDTL or TTL IntegratedCircuits Schematic Pinconnectionsshown arefor8-pinpackages.
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LM101A-N,LM201A-N,LM301A-N www.ti.com SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 Connection Diagrams Top View Top View Figure49. CDIP and PDIP Packages Top View Figure51. TO-99 Package See Package Number LMC0008C Top View Figure50. CLGA Package Figure52. CDIP Package See Package Number J0014A, Copyright© 1999–2013,Texas InstrumentsIncorporated SubmitDocumentationFeedback 17 ProductFolderLinks:LM101A-N LM201A-N LM301A-N
LM101A-N,LM201A-N,LM301A-N SNOSBS0D –SEPTEMBER 1999–REVISED MARCH 2013 www.ti.com
REVISION HISTORY
Changes from RevisionC (March 2013)toRevisionD Page
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www.ti.com 19-Mar-2015 Addendum-Page 1 PACKAGING INFORMATION Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead/Ball Finish (6) MSL Peak Temp (3) Op Temp (°C) Device Marking (4/5) Samples LM101AH ACTIVE TO-99 LMC 8 500 TBD Call TI Call TI -55 to 125 ( LM101AH ~ LM101AH) LM101AH/NOPB ACTIVE TO-99 LMC 8 500 Green (RoHS & no Sb/Br) Call TI Level-1-NA-UNLIM -55 to 125 ( LM101AH ~ LM101AH) LM101AJ ACTIVE CDIP NAB 8 40 TBD Call TI Call TI -55 to 125 LM101AJ LM201AH ACTIVE TO-99 LMC 8 500 TBD Call TI Call TI -40 to 85 ( LM201AH ~ LM201AH) LM201AH/NOPB ACTIVE TO-99 LMC 8 500 Green (RoHS & no Sb/Br) Call TI Level-1-NA-UNLIM -40 to 85 ( LM201AH ~ LM201AH) LM301AH ACTIVE TO-99 LMC 8 500 TBD Call TI Call TI 0 to 70 ( LM301AH ~ LM301AH) LM301AH/NOPB ACTIVE TO-99 LMC 8 500 Green (RoHS & no Sb/Br) Call TI Level-1-NA-UNLIM 0 to 70 ( LM301AH ~ LM301AH) LM301AN/NOPB ACTIVE PDIP P 8 40 Green (RoHS & no Sb/Br) CU SN Level-1-NA-UNLIM 0 to 70 LM 301AN (1) The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2) Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontent for the latest availability information and additional product content details. TBD: The Pb-Free/Green conversion plan has not been defined. Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes. Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above. Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material) (3) MSL, Peak Temp. - The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature.
www.ti.com 19-Mar-2015 Addendum-Page 2 (4) There may be additional marking, which relates to the logo, the lot trace code information, or the environmental category on the device. (5) Multiple Device Markings will be inside parentheses. Only one Device Marking contained in parentheses and separated by a "~" will appear on a device. If a line is indented then it is a continuation of the previous line and the two combined represent the entire Device Marking for that device. (6) Lead/Ball Finish - Orderable Devices may have multiple material finish options. Finish options are separated by a vertical ruled line. Lead/Ball Finish values may wrap to two lines if the finish value exceeds the maximum column width. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis.
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