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CatalogFeaturesApplicationsDescriptionElectrical RatingsElectrical CharacteristicsTest CircuitsPackage InformationRevision HistorySTLD200N4F6AG DatasheetSTLD200N4F6AG ManufacturerUsing WarningSTLD200N4F6AG FAQ FeaturesOrder codeVDSRDS(on) max.IDSTLD200N4F6AG40 V1.5 mΩ120 ADesigned for automotive applicationsVery low on-resistanceVery low gate chargeHigh avalanche ruggednessLow gate drive power loss ApplicationsSwitching applications DescriptionThis device is an N-channel Power MOSFET developed using the STripFET™ F6 technology with a new trench gate structure. The resulting Power MOSFET exhibits very low RDS(on) in all packages.Figure 1: Internal Schematic Diagram Electrical RatingsAbsolute Maximum RatingsSymbolParameterValueUnitVDSDrain-source voltage40VVGSGate-source voltage± 20VID(1)(2)Drain current (continuous) at TC = 25 °C120AID(1)(2)Drain current (continuous) at TC = 100 °C120AIDM(2)(3)Drain current (pulsed)480APTOT(2)Total dissipation at TC = 25 °C158WTJOperating junction temperature range- 55 to 175°CTstgStorage temperature rangeNotes:(1)Limited by package.(2)The value is rated according to Rthj-case bottom side.(3)Pulse width limited by safe operating area. Thermal DataSymbolParameterValueUnitRthj-c top sideThermal resistance junction-case top side2.8°C/WRthj-c bottom sideThermal resistance junction-case bottom side0.95Rthj-pcb(1)Thermal resistance junction-pcb31.3Notes:(1)When mounted on 1 inch² 2 Oz. Cu board, t ≤ 10 s Avalanche CharacteristicsSymbolParameterValueUnitIAVAvalanche current, repetitive or not repetitive (pulse width limited by maximum junction temperature)90AEASSingle pulse avalanche energy (Tj = 25 °C, IC = IAV, VDD = 16 V)400mJElectrical Characteristics(TC= 25 °C unless otherwise specified)On/Off StatesSymbolParameterTest conditionsMin.Typ.Max.UnitIDSSZero gate voltage Drain currentVGS = 0 V, VDS = 16 V 1µAVGS = 0 V, VDS = 16 V, Tj = 125 °C 10µAIGSSGate-body leakage currentVDS = 0 V, VGS = ± 20 V ±100nAVGS(th)Gate threshold voltageVDS = VGS, ID = 1 mA2 4VRDS(on)Static drain-source on- resistanceVGS = 10 V, ID = 75 A 1.271.5mΩVGS = 6.5 V, ID = 75 A 1.482 Switching TimesSymbolParameterTest conditionsMin.Typ.Max.Unittd(on)Turn-on delay timeVDD = 20 V, ID = 90 A RG = 30 Ω, VGS = 10 V (see Figure 13: "Test circuit for resistive load switching times")-150-nstrRise time-440-nstd(off)Turn-off-delay time-600-nstfFall time-410-ns Source Drain DiodeSymbolParameterTest conditionsMin.Typ.Max.UnitISD(1)Source-drain current - 120AISDM(1)(2)Source-drain current (pulsed) - 480AVSD (3)Forward on voltageVGS = 0 V, ISD = 90 A- 1.2VtrrReverse recovery timeISD = 90 A, di/dt = 100 A/µs, VDD = 20 V (see Figure 15: Test circuit for inductive load switching and diode recovery times) -40 nsQrrReverse recovery charge-53 nCIRRMReverse recovery current-2.5 ANotes:(1)Limited by package.(2)Pulse width is limited by safe operating area(3)Pulse test: pulse duration = 300 µs, duty cycle 1.5% Electrical Characteristics (Curves) Test Circuits Package InformationIn order to meet environmental requirements, ST offers these devices in different grades of ECOPACK® packages, depending on their level of environmental compliance. ECOPACK® specifications, grade definitions and product status are available at: www.st.com. ECOPACK® is an ST trademark. PowerFLAT™ 5x6 dual side cooling package outlinePowerFLAT™ 5x6 Dual Side Cooling Mechanical DataDim.mmMin.Typ.Max.A0.660.710.76A10.6 0.75b0.330.430.53c0.150.2030.3D5.00 BSC D14.064.214.36D22.40 BSCD32.83.33.8E6.00 BSCE13.5253.6753.825E21.051.21.35E33.80 BSCE44.24.75.2e1.27 BSCI 0.15L0.150.250.35L10.9251.051.175L20.450.5750.7ϑ12° BSCϑ17° BSCj0.20 BSC PowerFLAT™ 5x6 dual side cooling recommended footprint (dimensions are in mm) Revision HistoryDateRevisionChanges19-Jan-161First release. STLD200N4F6AG DatasheetYou can download the datasheet from the link given below:STLD200N4F6AG Datasheet STLD200N4F6AG ManufacturerSTMicroelectronics is a French-Italian multinational electronics and semiconductors manufacturer headquartered in Plan-les-Ouates near Geneva, Switzerland. The company resulted from the merger of two government-owned semiconductor companies in 1987: "Thomson Semiconducteurs" of France and "SGS Microelettronica" of Italy. It is commonly called "ST", and it is Europe's largest semiconductor chip maker based on revenue. While STMicroelectronics corporate headquarters and the headquarters for EMEA region are based in the Canton of Geneva, the holding company, STMicroelectronics N.V. is incorporated in the Netherlands. Using WarningNote: Please check their parameters and pin configuration before replacing them in your circuit. STLD200N4F6AG FAQWhat does N channel mean?A N-Channel MOSFET is a type of MOSFET in which the channel of the MOSFET is composed of a majority of electrons as current carriers. When the MOSFET is activated and is on, the majority of the current flowing are electrons moving through the channel. What is N channel and P channel?N Channel MOSFETs turn on when a positive voltage of the appropriate threshold value is applied across the gate-to-source terminals. P Channel MOSFETs turn on by applying a given value of a negative gate-to-source voltage. The gating of MOSFETs determines their application in SMPS converters. What does MOSFET power mean?Metal Oxide Semiconductor Field-Effect TransistorPower MOSFET is a type of metal oxide semiconductor field-effect transistor used to switch large amounts of current. Power MOSFETs are the most commonly used power devices due to their low gate drive power, fast switching speed and superior paralleling capability. Engineering Glossary. What are power MOSFETs used for?Power MOSFETs are widely used in transportation technology, which include a wide range of vehicles. In the automotive industry, power MOSFETs are widely used in automotive electronics. Power MOSFETs (including DMOS, LDMOS and VMOS) are commonly used for a wide range of other applications. What is the difference between MOSFET and power mosfet?Power MOSFET is a type of MOSFET which is specially meant to handle high levels of power. These exhibit high switching speed and can work much better in comparison with other normal MOSFETs in the case of low voltage levels. However its operating principle is similar to that of any other general MOSFET.
kynix On 2022-04-19
Product OverviewThe STM32F030x4/x6/x8/xC microcontrollers incorporate the high-performance Arm® Cortex®-M0 32-bit RISC core operating at a 48 MHz frequency, high-speed embedded memories (up to 256 Kbytes of Flash memory and up to 32 Kbytes of SRAM), and an extensive range of enhanced peripherals and I/Os. All devices offer standard communication interfaces (up to two I2Cs, up to two SPIs and up to six USARTs), one 12-bit ADC, seven general-purpose 16-bit timers and an advanced-control PWM timer. The STM32F030x4/x6/x8/xC microcontrollers operate in the -40 to +85 °C temperature range from a 2.4 to 3.6V power supply. A comprehensive set of power-saving modes allows the design of low-power applications. This blog will introduce STM32F030CCT6 systematically from its features, pinout to its specifications, applications, also including STM32F030CCT6 datasheet and so much more. CatalogProduct OverviewRelated Video IntroductionSTM32F030CCT6 FeaturesSTM32F030CCT6 PinoutSTM32F030CCT6 ApplicationsSTM32F030CCT6 CAD ModelsSTM32F030CCT6 Block DiagramSTM32F030CCT6 Circuit DiagramSTM32F030CCT6 SpecificationSTM32F030CCT6 Datasheet & Reference ManualSTM32F030CCT6 ManufacturerUsing WarningsSTM32F030CCT6 FAQ Related Video IntroductionVideo: Product overview - STM32F030 Value line 32 bits at 32 cents (epresentation) STM32F030CCT6 Video Description: The STM32F030 features an ARM Cortex core with DMA and runs at speeds up to 48 MHz. While achieving the STM32's lowest ever price point, the STM32F030 comes with a full set of performing peripherals, such as fast 12-bit ADC, advanced and flexible timers, calendar RTC and communication peripherals including the I²C, USART and SPI. STM32F030CCT6 FeaturesCore: Arm® 32bit Cortex®-M0 CPU, frequency up to 48MHzCRC calculation unit4 to 32MHz crystal and internal 40KHz RC oscillator, 32KHz oscillator for RTC with calibration,Serial wire debug (SWD)All mappable on external interrupt vectors (up to 55 fast I/Os)5ch DMA controllerCalendar RTC with alarm and periodic wakeup from stop/standbyUp to two I2C interfaces and up to two SPIs (18 Mbit/s) with 4 to 16 programmable bit frames STM32F030CCT6 PinoutThe following figure is the diagram of STM32F030CCT6 pinout. STM32F030CCT6 Pinout STM32F030CCT6 ApplicationsThe STM32F030x4/x6/x8/xC microcontrollers suitable for a wide range of applications such as application control and user interfaces, handheld equipment, A/V receivers and digital TV, PC peripherals, gaming and GPS platforms, industrial applications, PLCs, inverters, printers, scanners, alarm systems, video intercoms, and HVACs. STM32F030CCT6 CAD ModelsThe followings are STM32F030CCT6 Symbol, Footprint, and 3D Model. STM32F030CCT6 Symbol STM32F030CCT6 Footprint STM32F030CCT6 3D ModelSTM32F030CCT6 Block DiagramThe following figure shows the block diagram of STM32F030CCT6. STM32F030CCT6 Block Diagram STM32F030CCT6 Circuit DiagramThe following is the typical application with a 32.768 kHz crystal.Note: An external resistor is not required between OSC32_IN and OSC32_OUT and it is forbidden to add one. STM32F030CCT6 Circuit Diagram STM32F030CCT6 SpecificationAttributeValueFamily NameSTM32Package TypeLQFPMounting TypeSurface MountPin Count48Device CoreARM Cortex M0Data Bus Width32bitProgram Memory Size256 kBMaximum Frequency48MHzRAM Size32 kBNumber of SPI Channels2Typical Operating Supply Voltage2.4 → 3.6 VWidth7.2mmNumber of USART Channels6Minimum Operating Temperature-40 °CDimensions7.2 x 7.2 x 1.45mmInstruction Set ArchitectureRISCNumber of ADC Units1Program Memory TypeFlashMaximum Operating Temperature+85 °CLength7.2mmADCs12 x 12 bitNumber of Timers3Number of I2C Channels2Timer Resolution16bitHeight1.45mm STM32F030CCT6 Datasheet & Reference ManualYou can download STM32F030CCT6 datasheet and reference manual from the link given below:STM32F030CCT6 DatasheetSTM32F030CCT6 Reference Manual STM32F030CCT6 ManufacturerSTMicroelectronics is a global independent semiconductor company and a leader in developing and delivering semiconductor solutions across the spectrum of microelectronics applications. An unrivaled combination of silicon and system expertise, manufacturing strength, Intellectual Property (IP) portfolio, and strategic partners positions, STMicroelectronics is at the forefront of System-on-Chip (SoC) technology and its products play a key role in enabling today's convergence trends. Using WarningsNote: Please check their parameters and pin configuration before replacing them in your circuit. STM32F030CCT6 FAQWhat kind of memory does the stm32f030x4 / X6 / XC MCU have?The STM32F030x4/x6/x8/xC microcontrollers incorporate the high-performance Arm ® Cortex ® -M0 32-bit RISC core operating at a 48 MHz frequency, high-speed embedded memories (up to 256 Kbytes of Flash memory and up to 32 Kbytes of SRAM), and an extensive range of enhanced peripherals and I/Os. What's the operating temperature of a STMicroelectronics microcontroller?With the STM32F030CCT6 microcontroller from STMicroelectronics, you can program a circuit to perform tasks that meet your desired specifications. This microcontroller has an operating temperature range of -40 °C to 85 °C. It has a maximum clock speed of 48 MHz. What is microcontroller and how it works?Microcontrollers are embedded inside devices to control the actions and features of a product. Hence, they can also be referred to as embedded controllers. Microcontrollers can take inputs from the device they controlling and retain control by sending the device signals to different parts of the device. What is a microcontroller used for?In the office, microcontrollers are used in computer keyboards, monitors, printers, copiers, fax machines, and telephone systems to name a few. In your home, microcontrollers are used in microwave ovens, washers and dryers, security systems, lawn sprinkler station controllers, and music/video entertainment components. What is difference between microprocessor and microcontroller?Microprocessor consists of only a Central Processing Unit, whereas Micro Controller contains a CPU, Memory, I/O all integrated into one chip. The microprocessor uses an external bus to interface to RAM, ROM, and other peripherals, on the other hand, Microcontroller uses an internal controlling bus.
Kynix On 2021-11-08
Overview of DHT11Video related to DHT11DHT11 PinoutDHT11 Pinout DescriptionDHT11 DimensionsESP32 with DHT11ESP8266 with DHT11DHT11 SpecificationsDHT11 EquivalentsWhat are the Differences: DHT11 vs DHT22DHT11 vs DHT22 SpecificationsConclusion of DHT11 vs DHT22DHT11 and DHT22 ApplicationsDifferences between DHT11 Sensor and ModuleDHT11 Sensor Connection to an ArduinoApplications for DHT11 SensorsHow to use DHT11 SensorDHT11 DatasheetDHT11 FAQ Overview of DHT11A temperature and humidity sensor complex with a calibrated digital signal output is part of the DHT11 Temperature & Humidity Sensor. It guarantees high dependability and outstanding long-term stability by utilizing the unique digital-signal-acquisition technique and temperature & humidity sensing technology. This sensor connects to a high performance 8-bit microcontroller and combines a resistive-type humidity measurement component with an NTC temperature measurement component to provide great quality, quick response, interference resistance, and cost effectiveness.DHT11Each DHT11 component is meticulously calibrated in a humidity calibration lab that is exceptionally accurate. The calibration coefficients are used by the sensor's internal signal detecting process and are stored as programs in the OTP memory. System integration is quick and simple thanks to the single-wire serial interface. It is the finest option for a variety of applications, including those that are the most demanding, because to its small size, low power consumption, and up to 20 meter signal transmission. The component is packaged with a single row of four pins. The ability to connect is simple, and users can request certain packages. Video related to DHT11 DHT11 PinoutDHT11 Pinout DHT11 Pinout DescriptionNo:Pin NameDescriptionFor DHT11 Sensor 1VccPower supply 3.5V to 5.5V2DataOutputs both Temperature and Humidity through serial Data3NCNo Connection and hence not used4GroundConnected to the ground of the circuitFor DHT11 Sensor module 1VccPower supply 3.5V to 5.5V2DataOutputs both Temperature and Humidity through serial Data3GroundConnected to the ground of the circuit DHT11 DimensionsDHT11 Dimensions ESP32 with DHT11ESP32 with DHT11 ESP8266 with DHT11ESP8266 with DHT11 DHT11 SpecificationsOperating Voltage: 3.5V to 5.5VOperating current: 0.3mA (measuring) 60uA (standby)Output: Serial dataTemperature Range: 0°C to 50°CHumidity Range: 20% to 90%Resolution: Temperature and Humidity both are 16-bitAccuracy: ±1°C and ±1% DHT11 EquivalentsDHT22AM2302SHT71 What are the Differences: DHT11 vs DHT22Temperature range: With respect to the temperature range, for DHT11, it falls within -20 – 60℃, while for DHT22, it falls within -40 – 80℃.Temperature accuracy: DHT11 has a temperature accuracy of ±2%, while that of DHT22 is ±0.5℃Humidity Range: the humidity range for DHT11 falls between 5 – 95% RH, while that of DHT22 falls within 0 – 100%RH.Humidity Accuracy: DHT11 has a humidity accuracy of ±5%, in contrast to DHT22, which is ±2%.Cost: The cost of DHT11 is $5.90 compared to that of DHT22, which is $9.90. DHT11 vs DHT22 Specifications DHT11DHT22Operating Voltage3 to 5V3 to 5VMax Operating Current2.5mA max2.5mA maxHumidity Range20-80% / 5%0-100% / 2-5%Temperature Range0-50°C / ± 2°C-40 to 80°C / ± 0.5°CSampling Rate1 Hz (reading every second)0.5 Hz (reading every 2 seconds)Body size15.5mm x 12mm x 5.5mm15.1mm x 25mm x 7.7mmAdvantageUltra low costMore Accurate Conclusion of DHT11 vs DHT22Although the DHT22 is more accurate, precise, and capable of operating in a wider range of temperatures and humidity, the DHT11 outperforms the DHT22 in three key areas. It has a greater sample rate, is less costly, and is smaller in size. The DHT11 has a sampling rate of 1Hz, or one reading every second, whereas the DHT22 has a sampling rate of 0.5Hz, or one reading every two seconds.DHT11 VS DHT22However, the maximum current consumed during conversion (when requesting data) is 2.5mA, whereas the operational voltage of both sensors ranges from 3 to 5 volts. The nice part is that DHT11 and DHT22 sensors can be "swapped"; that is, if you create your project using one, you can simply unplug it and use another. DHT11 and DHT22 ApplicationsMeasure temperature and humidityLocal Weather stationAutomatic climate controlEnvironment monitoring Differences between DHT11 Sensor and ModuleYou can buy the DHT11 sensor as a sensor or as a module. In either case, the sensor's performance is unchanged. The module will have three pins as shown above, whereas the sensor will come in a 4-pin package of which only three pins will be used.The main distinction between the sensor and module is that the module will come with an internal pull-up resistor and filtering capacitor, whereas the sensor requires you to utilize them externally if necessary. DHT11 Sensor Connection to an ArduinoIt is simple to connect DHT sensors to Arduino. They may be simply connected into any breadboard because to their relatively lengthy 0.1′′-pitch pins. Connect the GND pin to the ground and the VCC pin to the Arduino's 5V supply. The Data pin should then be connected to digital pin #8.Wiring DHT11 to Arduino UNOYou must additionally add a 10K pull-up resistor between the Data line and VCC to ensure effective connection between the sensor and MCU (to keep the signal HIGH). There is already a pull-up resistor on the breakout board for the sensor, so you do not need to add another one. Applications for DHT11 SensorsA typical temperature and humidity sensor is the DHT11. The sensor includes a dedicated NTC for temperature measurement and an 8-bit microprocessor for serial data output of temperature and humidity information. Additionally factory calibrated, the sensor makes it simple to integrate with other microcontrollers.The sensor has an accuracy of 1°C and 1% and can measure temperature from 0°C to 50°C and humidity from 20% to 90%. Therefore, if you want to measure in this range, this sensor might be the best option. How to use DHT11 SensorThe DHT11 Sensor produces serial data and is fully calibrated, making setup incredibly simple. Below is a diagram of how this sensor is connected.DHT11 Connection DiagramAs you can see the data pin is connected to an I/O pin of the MCU and a 5K pull-up resistor is used. This data pin outputs the value of both temperature and humidity as serial data. If you are trying to interface DHT11 with Arduino then there are ready-made libraries for it which will give you a quick start.As you can see, a 5K pull-up resistor is being utilized to connect the data pin to an MCU I/O pin. Temperature and humidity values are output as serial data on this data pin. There are pre-made libraries for it that will give you a head start if you're trying to interface DHT11 with Arduino.The datasheet provided below will be useful if you're trying to interface it with another MCU. The data pin's output will be in the following order: 8 bits of humidity integer data, 8 bits of humidity decimal data, 8 bits of temperature integer data, 8 bits of temperature fractional data, and 8 bits of parity bit. The I/O pin must be briefly brought low and then held high as illustrated in the timing diagram below to instruct the DHT11 module to communicate these data:Timing Diagram DHT11 DatasheetDHT11 Datasheet DHT11 FAQAre DHT11 and DHT22 interchangeable?The DHT11 is a little bit more compact and less expensive than the DHT22. These sensors have the advantage of being interchangeable, so you can simply swap a DHT11 for a DHT22 or vice versa. Where is DHT11 sensor used?This sensor is employed in a number of applications, including the measurement of temperature and humidity levels in HVAC systems. These sensors are also used by weather stations to forecast the weather. In houses where residents are susceptible to the effects of humidity, the humidity sensor is employed as a preventative measure. How accurate is the DHT11?Additionally, the DHT11 humidity range is from 20 to 80% with 5% accuracy, but the DHT22 sensor's humidity measuring range is from 0 to 100% with 2-5% accuracy. How does a DHT sensor work?Digital temperature and humidity sensors known as DHTs are inexpensive. There is no need for analog input pins because they measure the surrounding air using a capacitive humidity sensor and a thermistor and communicate a digital signal to the host on the data pin. DHT11, DHT21, and DHT22 sensors are supported by RepRapFirmware as of version 1. 20. Is DHT11 better than DHT22?In every way, including temperature range, temperature accuracy, humidity range, and humidity accuracy, the DHT22 is superior to the DHT11. The DHT22's only drawback is, of course, its slightly greater price, but you are getting better specs for your money.
kynix On 2023-02-06
Product Overview2N7002ET1G by ON Semiconductor has a low Design Risk score of 0.24. To find more datasheet downloads similar to this blog.CatalogProduct OverviewCAD ModelsPackage DimensionsSoldering FootprintGeneric Marking Diagram2N7002ET1G Product Attributes2N7002ET1G ApplicationsAlternate PartsUsing Warnings2N7002ET1G vs 2N7002LT3CAD Models2N7002ET1G Symbol 2N7002ET1G Footprint 2N7002ET1G 3D ModelPackage DimensionsPackage DimensionsSoldering FootprintSoldering FootprintGeneric Marking DiagramGeneric Marking Diagram2N7002ET1G Product AttributesEU RoHS:CompliantECCN (US):EAR99Part Status:ActiveHTS:8541.29.00.95Product Category:Small SignalConfiguration:SingleProcess Technology:TMOSChannel Mode:EnhancementChannel Type:NNumber of Elements per Chip:1Maximum Drain Source Voltage (V):60Maximum Gate Source Voltage (V):±20Maximum Gate Threshold Voltage (V):2.5Operating Junction Temperature (°C):-55 to 150Maximum Continuous Drain Current (A):0.26Maximum Gate Source Leakage Current (nA):100Maximum IDSS (uA):1Maximum Drain Source Resistance (MOhm):2500@10VTypical Gate Charge @ Vgs (nC):0.81@5VTypical Input Capacitance @ Vds (pF):26.7@25VMaximum Power Dissipation (mW):420Typical Fall Time (ns):3.6Typical Rise Time (ns):1.2Typical Turn-Off Delay Time (ns):4.8Typical Turn-On Delay Time (ns):1.7Minimum Operating Temperature (°C):-55Maximum Operating Temperature (°C):150Packaging:Tape and ReelMaximum Positive Gate Source Voltage (V):20Maximum Diode Forward Voltage (V):1.2Pin Count:3Standard Package Name:SOTSupplier Package:SOT-23Mounting:Surface MountPackage Height:0.94Package Length:2.9Package Width:1.3PCB changed:3Lead Shape:Gull-wingHalogen Free:Halogen FreeLead Free:Lead FreeRadiation Hardening:NoREACH SVHC:No SVHC2N7002ET1G ApplicationsIndustrial, Consumer ElectronicsAlternate Parts2N7002E, 2N7002E,215, 2N7002LT3, 2N7002T, 2N7002TC, 2N7002TT1T2, 2N7002E-7, 2N7002-T, 2N7002KQ-13, 2N7002FN3_R1_10001Using WarningsMarket demand for this product has caused an extension in leadtimes. Delivery dates may fluctuate. Product exempt from discounts.2N7002ET1G vs 2N7002LT3Specifications2N7002ET1G2N7002LT3Pbfree Code Yes*Part Life Cycle CodeActiveTransferredIhs ManufacturerON SEMICONDUCTORMOTOROLA INCPart Package CodeSOT-23*Package DescriptionHALOGEN FREE AND ROHS COMPLIANT, CASE 318-08, 3 PINSMALL OUTLINE, R-PDSO-G3Pin Count3*Manufacturer Package Code318-08*Reach Compliance CodecompliantunknownECCN CodeEAR99EAR99Factory Lead Time11 Weeks, 4 Days*Samacsys DescriptionMOSFET N-Channel 60V 0.26A SOT23 ON Semiconductor 2N7002ET1G N-channel MOSFET Transistor, 0.26 A, 60 V, 3-Pin SOT-23*Samacsys ManufacturerON Semiconductor*ConfigurationSINGLE WITH BUILT-IN DIODESINGLE WITH BUILT-IN DIODEDS Breakdown Voltage-Min60 V60 VDrain Current-Max (Abs) (ID)0.26 A*Drain Current-Max (ID)0.26 A0.115 ADrain-source On Resistance-Max2.5 Ω7.5 ΩFET TechnologyMETAL-OXIDE SEMICONDUCTORMETAL-OXIDE SEMICONDUCTORJEDEC-95 CodeTO-236TO-236ABJESD-30 CodeR-PDSO-G3R-PDSO-G3JESD-609 Codee3e0Moisture Sensitivity Level1*Number of Elements11Number of Terminals33Operating ModeENHANCEMENT MODEENHANCEMENT MODEOperating Temperature-Max150 °C150 °COperating Temperature-Min-55 °C*Package Body MaterialPLASTIC/EPOXYPLASTIC/EPOXYPackage ShapeRECTANGULARRECTANGULARPackage StyleSMALL OUTLINESMALL OUTLINEPeak Reflow Temperature (Cel)260*Polarity/Channel TypeN-CHANNELN-CHANNELPower Dissipation-Max (Abs)0.3 W*Qualification StatusNot QualifiedNot QualifiedSurface MountYESYESTerminal FinishTin (Sn)Tin/Lead (Sn/Pb)Terminal FormGULL WINGGULL WINGTerminal PositionDUALDUALTime@Peak Reflow Temperature-Max (s)40*Transistor ApplicationSWITCHING*Transistor Element MaterialSILICONSILICONBase Number Matches21HTS Code*8541.21.00.95Feedback Cap-Max (Crss)*5 pFPower Dissipation Ambient-Max*0.2 W
kynix On 2022-01-21
CatalogFeaturesApplicationDescriptionsElectrical Ratings Electrical characteristicsElectrical characteristics (curves)Test circuitsPackage informationOrdering informationRevision historyTIP127 Datasheet TIP127 FAQ FeaturesLow collector-emitter saturation voltageComplementary NPN - PNP transistors ApplicationGeneral purpose linear and switchingu DescriptionsThe devices are manufactured in planar technology with "base island" layout andmonolithic Darlington configuration. The resulting transistors show exceptional highgain performance coupled with very |ow saturation voltage. Electrical RatingsTable 1. Absolute maximum ratingsSymbolParameterValueUnit NPNTIP120TIP121TIP122PNPTIP125 TIP127VCBOCollector-base voltage (IE = 0 A)6080100VVCEOCollector-emitter voltage (IB = 0 A)6080100VVEBOCollector-base voltage (IC = 0 A)5VICCollector current5AICMCollector peak current8AIBBase current0.12A Total power dissipation at TC ≤ 25°C65 PTOTTotal power dissipation at TA ≤ 25°C2WTstgStorage temperature range-65 to 150°CTJMaximum operating junction temperature150°CNote: For PNP types voltage and current values are negative. Table 2. Thermal dataSymbolParameterValueUnitRthJCThermal resistance, junction-to-case1.92°C/WRthJAThermal resistance, junction-to-ambient62.5°C/W Electrical characteristicsTC = 25°C unless otherwise specified Table 3. Electrical characteristicsSymbolParameterTest conditionsMin.Typ.Max.Unit ICEO Collector cut-off currentIB = 0 A, VCE = 30 V for TIP120/125 -0.5 mAIB = 0 A, VCE = 40 V for TIP121 -0.5IB = 0 A, VCE = 50 V for TIP122/127 -0.5 ICBO Collector cut-off currentIB = 0 A, VCE = 60 V for TIP120/125 -0.2 mAIB = 0 A, VCE = 80 V for TIP121 -0.2IB = 0 A, VCE = 100 V for TIP122/127 -0.2IEBOEmitter cut-off currentIC = 0 A, VEB = 5 V -2mA VCEO(sus) Collector-emitter sustaining voltageIB = 0 A, IC = 30 mA for TIP120/12560- VIB = 0 A, IC = 30 mA for TIP12180- IB = 0 A, IC = 30 mA for TIP122/127100- VCE(sat) Collector-emitter saturation voltageIC = 3 A, IB = 12 mA -2 VIC = 5 A IB = 20 mA -4VBE(on)Base-emitter on voltageIC = 3 A, VCE = 3 V -2.5V hFE DC current gainIC = 0.5 A, VCE = 3 V1000- IC = 3 A, VCE = 3 V1000- 1. Pulsed: Pulse duration ≤ 300 μs, duty cycle ≤ 2%.Note: For PNP types voltage and current values are negative. Electrical characteristics (curves) Test circuits Figure 17. Resistive load switching for NPN type Note: (1) Fast electronic switch. Note: (2) Non-inductive resistor. Figure 18. Resistive load switching for PNP typeNote: (1) Fast electronic switch. Note: (2) Non-inductive resistor. Package informationIn order to meet environmental requirements, ST offers these devices in different grades of ECOPACK packages, depending on their level of environmental compliance. ECOPACK specifications, grade definitions and product status are available at: www.st.com. ECOPACK is an ST trademark. TO-220 type H package information Table 4. TO-220 type H package mechanical dataDim.mmMin.Typ.Max.A4.404.454.50A11.22 1.32A22.492.592.69A31.171.271.37b0.78 0.87b21.25 1.34b41.20 1.29b6 1.50b7 1.45c0.49 0.56D15.4015.5015.60D19.059.159.25E10.0810.1810.28e2.442.542.64e14.985.085.18H16.256.356.45L13.2013.4013.60L13.503.703.90L216.3016.4016.50L328.7028.9029.10∅P3.753.803.85Q2.702.802.90Slug flatness 0.030.10 Ordering informationTable 5. Order codesOrder codesMarkingPolarityPackagePackingTIP120TIP120 NPN TO-220 TubeTIP121TIP121TIP122TIP122TIP125TIP125 PNPTIP127TIP127 Revision historyTable 6. Document revision historyDateVersionChanges21-Jun-20043Document migration, no content change.25-Nov-20084Inserted new Section 2.1: Electrical characteristics (curves). 11-May-2021 5The part number TIP126 have been removed and the document has been updated accordingly.Updated title and added STPOWER LOGO in cover page. Updated Section 4 Package information.Minor text changes. TIP127 DatasheetYou can download the datasheet of TIP127 from the link given below.TIP127-Datasheet TIP127 FAQWhat is a Darlington power transistor? In electronics, a multi-transistor configuration called the Darlington configuration (commonly called a Darlington pair) is a circuit consisting of two bipolar transistors with the emitter of one transistor connected to the base of the other. What are Darlington transistors used for?Darlington transistors are mainly used in switching and amplification applications for delivering a very high DC current gain. Some of the key applications are high and low side switches, sensor amplifiers and audio amplifiers. Is a Darlington transistor a Mosfet?I read that MOSFETS can handle more current safely at lower temps and with fewer areas of weakness. I understand that MOSFETs are essentially a pair of darlington transistors with resistors and diodes built into a package.
kynix On 2022-02-21
CatalogDescriptionCAD ModelsPin ConfigurationBlock DiagramFeaturesApplicationsDatasheetProduct AttributesManufacturerUsing WarningDescriptionThe LTC2644 is a family of dual 12-, 10-, and 8-bit PWM-to-voltage output DACs with an integrated high accuracy, low drift, 10ppm/℃ reference in a 12-lead MSOP package. It has rail-to-rail output buffers and is guaranteed monotonic. The LTC2644 measures the period and pulse width of the PWM input signals and updates the voltage output DACs after each corresponding PWM input rising edge. The DAC outputs update and settle to 12-bit accuracy within 8µs typically and are capable of sourcing and sinking up to 5mA (3V) or 10mA (5V), eliminating voltage ripple and replacing slow analog filters and buffer amplifiers. The LTC2644 has a full-scale output of 2.5V using the 10ppm/℃ internal reference. It can operate with an external reference, which sets the full-scale output equal to the external reference voltage. Each DAC enters a pin-selectable idle state when the PWM input is held unchanged for more than 60ms. The part operates from a single 2.7V to 5.5V supply and supports PWM input voltages from 1.71V to 5.5V. CAD Models Figure: PCB Symbol Figure: Footprint Figure: 3D Model Pin Configuration Figure: Pin Configuration Block Diagram Figure: Block Diagram FeaturesNo Latency PWM-to-Voltage ConversionVoltage Output Updates and Settles within 8µs100kHz to 30Hz PWM Input Frequency±2.5LSB Max INL; ±1LSB Max DNL (LTC2644-12)Guaranteed MonotonicPin-Selectable Internal or External Reference2.7V to 5.5V Supply Range1.71V to 5.5V Input Voltage RangeLow Power: 2.7mA at 3V, <1µA Power-DownGuaranteed Operation from –40°C to 125°C12-Lead MSOP Package ApplicationsDigital CalibrationTrimming and AdjustmentLevel SettingProcess Control and Industrial AutomationInstrumentationAutomotive DatasheetYou can download the datasheet from the link given below:LTC2644-Datasheet Product AttributesManufacturer:Analog Devices Inc.Product Category:Digital to Analog Converters - DACSeries:LTC2644Resolution:12 bitSampling Rate:-Number of Channels:2 ChannelSettling Time:7.8 usOutput Type:VoltageInterface Type:PWMAnalog Supply Voltage:2.7 V to 5.5 VDigital Supply Voltage:2.7 V to 5.5 VMinimum Operating Temperature:- 40 ℃Maximum Operating Temperature:+ 85 ℃Mounting Style:SMD/SMTPackage / Case:MSOP-12Packaging:TubeNumber of Converters:2 ConverterProduct:DAC - Voltage Output DACsType:Special FunctionBrand:Analog DevicesReference Type:External, InternalDNL - Differential Nonlinearity:+/- 1 LSBGain Error:0.2 %FSRINL - Integral Nonlinearity:+/- 1 LSBOperating Supply Current:4.6 mAPd - Power Dissipation:8.1 mWProduct Type:DACs - Digital to Analog ConvertersReference Voltage:2.5 VFactory Pack Quantity:37Subcategory:Data Converter ICsSupply Voltage - Max:5.5 VSupply Voltage - Min:2.7 VUnit Weight:0.012558 oz ManufacturerAnalog Devices, Inc. (ADI), also known simply as Analog, is an American multinational semiconductor company specializing in data conversion, signal processing and power management technology, headquartered in Wilmington, Massachusetts. In 2012, Analog Devices led the worldwide data converter market with a 48.5% share, according to analyst firm Databeans. Using WarningNote: Please check their parameters and pin configuration before replacing them in your circuit.
kynix On 2022-04-13
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