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M.S.KENNEDY CORP. FEATURES: Extremely Fast - 500v/μS Wide Supply Range ±15V to ±45V VMOS Output, No Secondary Breakdown Large Gain-Bandwidth Product FET Input Electrically Isolated Case 800mA Typical Output Current Available as SMD #5962-90500 1461 HIGH SPEED/VOLTAGE OP AMP The MSK1461 is a state of the art high speed FET input operational amplifier. The distinguishing characteristic of the MSK1461 is its unique VMOS output stage which completely eliminates the safe operating area restrictions associated with secondary breakdown of bipolar transistor output stage op-amps. Freedom from secondary breakdown allows the MSK1461 to handle large output currents at any voltage level limited only by transistor junction temperature. 115 dB of open loop gain gives the MSK1461 high closed loop gain accuracy and the typical ±1.0mV of input offset voltage will fit well in any error budget. A 500 V/μS slew rate and 1200 MHz gain bandwidth product make the MSK1461 an outstanding high-speed op-amp. A single external capacitor is used for compensation and output current limiting is user programmable through the selection of two external resistors. DESCRIPTION: Offset Adjust Offset Adjust Compensation Compensation Positive Power Supply Positive Current Limit Output Inverting Input Non-Inverting Input No Connection No Connection Negative Power Supply Negative Current Limit No Connection PIN-OUT INFORMATIONTYPICAL APPLICATIONS Video Yoke Drivers Video Distribution Amplifiers High Accuracy Audio Amplification High Speed ATE Pin Drivers EQUIVALENT SCHEMATIC MIL-PRF-38534 AND 38535 CERTIFIED FACILITY 8548-137 Rev. E 10/14

±45V 800mA ±25V -65°C to +150°C VIN=0V VCM=0V Quiescent Current Input Bias Current Input Offset Current Output Voltage Swing Junction to Case @ 125°C VIN=0V AV=-10V/V Bal. Pins=N/C RPOT=10KΩ to +VCC VCM=0V Either Input F=DC F=10KHz VCM=±22V RL=50Ω RL=1KΩ RL=33Ω T J<175°C 0.1% 10V step VOUT=±10V R L=1KΩ RL=10KΩ F=100Hz F=100KHz STATIC Supply Voltage Range Thermal Resistance INPUT Input Offset Voltage Input Offset Voltage Drift Input Offset Adjust Input Impedance Common Mode Range Common Mode Rejection Ratio OUTPUT Output Current, Peak Settling Time TRANSFER CHARACTERISTICS Slew Rate Open Loop Voltage Gain Gain Bandwidth Product ABSOLUTE MAXIMUM RATINGS ±VCC IOUT VIN TST TLD TC TJ V mA mA °C/W mV μV/°C V pA nA pA nA Ω V dB V V mA nS V/μS dB MHz Parameter ELECTRICAL SPECIFICATIONS Units Test Conditions Max. ±45 ±28 ±8.0 ±300 800 Typ. ±19 ±1.0 ±10 ±8.0 ±10 ±5.0 3x10 ±24 100 ±31 ±33 ±800 400 500 106 1200 Min. ±15 ±22 ±27 ±30 ±600 200 800 Max. ±45 ±25 ±35 ±5.0 ±50 ±300 ±100 800 Typ. ±19 ±21 ±1.0 ±6.0 ±8.0 ±10 ±10 ±5.0 ±5.0 3x10 ±24 100 ±31 ±33 ±800 400 500 106 1200 Min. ±15 ±22 ±27 ±30 ±600 200 800 MSK1461MSK1461B 2,3 2,3 2,3 Group A Subgroup 1212 2 3 NOTES: RSC=0Ω and ±VCC=36VDC unless otherwise specified. AV=-1, measured in false summing junction circuit. Guaranteed by design but not tested. Typicalparameters are representative of actual device performance but are for reference only. Industrial grade devices shall be tested to subgroups 1 and 4 unless otherwise specified. Military grade devices ("B" suffix) shall be 100% tested to subgroups 1,2,3 and 4. Subgroups 5 and 6 testing available upon request. Subgroup 1,4 Subgroup 2,5 Subgroup 3,6 Continuous operation at or above absolute maximum ratings may adversely effect the device performance and/or life cycle. Internal solder reflow temperature is 180°C, do not exceed. Reference DSCC SMD 5962-90500 for electrical specification for devices purchased as such. TC=+25°C TJ=+125°C TA=-55°C 300°C -55°C to +125°C -40°C to 85°C +175°C Lead Temperature Range (10 Seconds) Case Operating Temperature (MSK1461B) (MSK1461) Junction Temperature Supply Voltage Output Current Differential Input Voltage Storage Temperature Range ○○○ 8548-137 Rev. E 10/14

1.) Find Driver Power Dissipation PD = [(quiescent current) x (+VS - (-VS))] + [(+VS-VO) x IOUT] = 4W + 1.0W = 5Watts 2.) For conservative design, set T J=+125°C. 3.) For this example, TA=+25°C 4.) RθJC = 16°C/W from MSK 1461B Data Sheet 5.) RθCS = 0.15°C/W for most thermal greases 6.) Rearrange governing equation to solve for RθSA RθSA = ((TJ - TA)/PD) - (RθJC) - (RθCS) ≅ 3.85°C/W The heat sink in this example must have a thermal resis- tance of no more than 3.85°C/W to maintain a junction tem- perature of no more than +125°C APPLICATION NOTES HEAT SINKING To select the correct heat sink for your application, refer to the thermal model and governing equation below. Thermal Model: Governing Equation: CURRENT LIMIT The output current of the MSK1461 is internally limited to approximately ±750mA by two 0.8Ω internal current limit resistors. Additional current limit can be achieved through the use of two external current limit resistors. One resistor (+R SC) limits the positive output current and the other (- RSC) limits the negative output current. The value of the cur- rent limit resistors can be determined as follows: Since the 0.65V term is obtained from the base to emit- ter voltage drop of a bipolar transistor, the equation only holds true for +25°C operation. As case temperature in- creases, the 0.65V term will decrease making the actual current limit set point decrease slightly. SC = [(0.65V/±ILIM) - 0.8Ω] TJ=PD x (RθJC + RθCS + RθSA) + TA Where TJ = Junction Temperature PD = Total Power Dissipation RθJC = Junction to Case Thermal Resistance RθCS = Case to Heat Sink Thermal Resistance RθSA = Heat Sink to Ambient Thermal Resistance TC = Case Temperature TA = Ambient Temperature TS = Sink Temperature Example: In our example the amplifier application requires the out- put to drive a 20 volt peak sine wave across a 400Ω load for 50mA of peak output current. For a worst case analysis we will treat the 50mA peak output current as a D.C. output current. The power supplies shall be set to ±40VDC. The following schematic illustrates how to connect each current limit resistor: IN Any designer who has worked with power operational amplifiers is familiar with Safe Operating Area (S.O.A.) curves. S.O.A. curves are a graphical representation of the following three power limiting factors of any bipolar transis- tor output op-amp. 1. Wire Bond Current Carrying Capability 2. Transistor Junction Temperature 3. Secondary Breakdown Limitations Since the MSK1461 utilizes a MOSFET output, there are no secondary breakdown limitations and therefore no need for S.O.A. curves. The only limitation on output power is the junction temperature of the output drive transistors. Whenever possible, junction temperature should be kept below 150°C to ensure high reliability. See "Heat Sinking" for more information involving junction temperature calcula- tions. SAFE OPERATING AREA Both the negative and the positive power supplies must be effectively decoupled with a high and low frequency by- pass circuit to avoid power supply induced oscillation. An effective decoupling scheme consists of a 0.1μF ceramic capacitor in parallel with a 4.7μF tantalum capacitor from each power supply pin to ground. POWER SUPPLY BYPASSING INPUT OFFSET ADJUST CONNECTION 3 8548-137 Rev. E 10/14

TYPICAL PERFORMANCE CURVES 4 8548-137 Rev. E 10/14

ORDERING INFORMATION

ESD TRIANGLE INDICATES PIN 1 WEIGHT=7.2 GRAMS TYPICAL ALL DIMENSIONS ARE SPECIFIED IN INCHES NOTE: See DSCC SMD 5962-90500 for DSCC part number options. 8548-137 Rev. E 10/14

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. M.S. Kennedy Corp. Phone (315) 701-6751 FAX (315) 701-6752 www.mskennedy.com

REVISION HISTORY

8548-137 Rev. E 10/146