Taiwan Semiconductor HS3D
Taiwan Semiconductor HS3D
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Taiwan Semiconductor HS3D

Manufacturer No:

HS3D

Utmel No:

2436-HS3D

Package:

DO-214AB-2

ECAD Model:

Description:

Standard Diode Rectifier Fast Recovery =< 500ns, > 200mA (Io) -55°C ~ 150°C 10 µA @ 200 V MouseReel DO-214AB-2 Surface Mount

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In Stock : 3614

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HS3D information

Specifications
Product Details
Taiwan Semiconductor HS3D technical specifications, attributes, parameters and parts with similar specifications to Taiwan Semiconductor HS3D.
  • Type
    Parameter
  • Lifecycle Status

    Lifecycle Status refers to the current stage of an electronic component in its product life cycle, indicating whether it is active, obsolete, or transitioning between these states. An active status means the component is in production and available for purchase. An obsolete status indicates that the component is no longer being manufactured or supported, and manufacturers typically provide a limited time frame for support. Understanding the lifecycle status is crucial for design engineers to ensure continuity and reliability in their projects.

    Production (Last Updated: 2 years ago)
  • Factory Lead Time
    8 Weeks
  • Package / Case

    refers to the protective housing that encases an electronic component, providing mechanical support, electrical connections, and thermal management.

    DO-214AB-2
  • Mount

    In electronic components, the term "Mount" typically refers to the method or process of physically attaching or fixing a component onto a circuit board or other electronic device. This can involve soldering, adhesive bonding, or other techniques to secure the component in place. The mounting process is crucial for ensuring proper electrical connections and mechanical stability within the electronic system. Different components may have specific mounting requirements based on their size, shape, and function, and manufacturers provide guidelines for proper mounting procedures to ensure optimal performance and reliability of the electronic device.

    Surface Mount
  • Mounting Type

    The "Mounting Type" in electronic components refers to the method used to attach or connect a component to a circuit board or other substrate, such as through-hole, surface-mount, or panel mount.

    Surface Mount
  • Surface Mount

    having leads that are designed to be soldered on the side of a circuit board that the body of the component is mounted on.

    YES
  • Number of Pins
    2
  • Supplier Device Package

    The parameter "Supplier Device Package" in electronic components refers to the physical packaging or housing of the component as provided by the supplier. It specifies the form factor, dimensions, and layout of the component, which are crucial for compatibility and integration into electronic circuits and systems. The supplier device package information typically includes details such as the package type (e.g., DIP, SOP, QFN), number of pins, pitch, and overall size, allowing engineers and designers to select the appropriate component for their specific application requirements. Understanding the supplier device package is essential for proper component selection, placement, and soldering during the manufacturing process to ensure optimal performance and reliability of the electronic system.

    DO-214AB (SMC)
  • Diode Element Material

    The parameter "Diode Element Material" refers to the specific semiconductor material used in the construction of a diode. This material determines the electrical characteristics and performance of the diode, including its forward voltage drop, reverse breakdown voltage, and switching speed. Common diode element materials include silicon, germanium, and gallium arsenide, each offering different advantages for various applications. The choice of material impacts the diode's efficiency, thermal stability, and overall suitability for specific electronic circuits.

    SILICON
  • Number of Terminals
    2
  • Unit Weight
    0.007408 oz
  • Factory Pack QuantityFactory Pack Quantity
    3000
  • Manufacturer
    Taiwan Semiconductor
  • Brand
    Taiwan Semiconductor
  • RoHS
    Details
  • Manufacturer Lifecycle Status
    ACTIVE (Last Updated: 2 years ago)
  • Package
    Tape & Reel (TR)
  • Base Product Number

    "Base Product Number" (BPN) refers to the fundamental identifier assigned to a component by the manufacturer. This number is used to identify a specific product family or series of components that share common features, characteristics, or functionality. The BPN is usually part of a larger part number or order code that includes additional information, such as variations in packaging, tolerance, voltage ratings, and other specifications.

    HS3D
  • Mfr
    Taiwan Semiconductor Corporation
  • Product Status
    Active
  • Package Description
    R-PDSO-C2
  • Package Style
    SMALL OUTLINE
  • Package Body Material
    PLASTIC/EPOXY
  • Operating Temperature-Min
    -55 °C
  • Operating Temperature-Max
    150 °C
  • Manufacturer Part Number
    HS3D
  • Package Shape
    RECTANGULAR
  • Number of Elements
    1
  • Part Life Cycle Code
    Active
  • Ihs Manufacturer
    SURGE COMPONENTS INC
  • Forward Voltage-Max (VF)
    1 V
  • Risk Rank
    5.58
  • Packaging

    Semiconductor package is a carrier / shell used to contain and cover one or more semiconductor components or integrated circuits. The material of the shell can be metal, plastic, glass or ceramic.

    MouseReel
  • Series

    In electronic components, the "Series" refers to a group of products that share similar characteristics, designs, or functionalities, often produced by the same manufacturer. These components within a series typically have common specifications but may vary in terms of voltage, power, or packaging to meet different application needs. The series name helps identify and differentiate between various product lines within a manufacturer's catalog.

    -
  • Max Operating Temperature

    The Maximum Operating Temperature is the maximum body temperature at which the thermistor is designed to operate for extended periods of time with acceptable stability of its electrical characteristics.

    150 °C
  • Min Operating Temperature

    The "Min Operating Temperature" parameter in electronic components refers to the lowest temperature at which the component is designed to operate effectively and reliably. This parameter is crucial for ensuring the proper functioning and longevity of the component, as operating below this temperature may lead to performance issues or even damage. Manufacturers specify the minimum operating temperature to provide guidance to users on the environmental conditions in which the component can safely operate. It is important to adhere to this parameter to prevent malfunctions and ensure the overall reliability of the electronic system.

    -55 °C
  • Applications

    The parameter "Applications" in electronic components refers to the specific uses or functions for which a component is designed. It encompasses various fields such as consumer electronics, industrial automation, telecommunications, automotive, and medical devices. Understanding the applications helps in selecting the right components for a particular design based on performance, reliability, and compatibility requirements. This parameter also guides manufacturers in targeting their products to relevant markets and customer needs.

    EFFICIENCY
  • Subcategory
    Diodes & Rectifiers
  • Terminal Position

    In electronic components, the term "Terminal Position" refers to the physical location of the connection points on the component where external electrical connections can be made. These connection points, known as terminals, are typically used to attach wires, leads, or other components to the main body of the electronic component. The terminal position is important for ensuring proper connectivity and functionality of the component within a circuit. It is often specified in technical datasheets or component specifications to help designers and engineers understand how to properly integrate the component into their circuit designs.

    DUAL
  • Terminal Form

    Occurring at or forming the end of a series, succession, or the like; closing; concluding.

    C BEND
  • Reach Compliance Code

    Reach Compliance Code refers to a designation indicating that electronic components meet the requirements set by the Registration, Evaluation, Authorization, and Restriction of Chemicals (REACH) regulation in the European Union. It signifies that the manufacturer has assessed and managed the chemical substances within the components to ensure safety and environmental protection. This code is vital for compliance with regulations aimed at minimizing risks associated with hazardous substances in electronic products.

    compliant
  • JESD-30 Code

    JESD-30 Code refers to a standardized descriptive designation system established by JEDEC for semiconductor-device packages. This system provides a systematic method for generating designators that convey essential information about the package's physical characteristics, such as size and shape, which aids in component identification and selection. By using JESD-30 codes, manufacturers and engineers can ensure consistency and clarity in the specification of semiconductor packages across various applications and industries.

    R-PDSO-C2
  • Configuration

    The parameter "Configuration" in electronic components refers to the specific arrangement or setup of the components within a circuit or system. It encompasses how individual elements are interconnected and their physical layout. Configuration can affect the functionality, performance, and efficiency of the electronic system, and may influence factors such as signal flow, impedance, and power distribution. Understanding the configuration is essential for design, troubleshooting, and optimizing electronic devices.

    SINGLE
  • Element Configuration

    The distribution of electrons of an atom or molecule (or other physical structure) in atomic or molecular orbitals.

    Single
  • Speed

    In electronic components, "Speed" typically refers to the rate at which data can be processed or transferred within the component. It is a measure of how quickly the component can perform its functions, such as executing instructions or transmitting signals. Speed is often specified in terms of frequency, such as clock speed in processors or data transfer rate in memory modules. Higher speed components can perform tasks more quickly, leading to improved overall performance in electronic devices. It is an important parameter to consider when designing or selecting electronic components for specific applications.

    Fast Recovery =< 500ns, > 200mA (Io)
  • Diode Type

    In electronic components, the parameter "Diode Type" refers to the specific type or configuration of a diode, which is a semiconductor device that allows current to flow in one direction only. There are various types of diodes, each designed for specific applications and functions. Common diode types include rectifier diodes, zener diodes, light-emitting diodes (LEDs), and Schottky diodes, among others. The diode type determines the diode's characteristics, such as forward voltage drop, reverse breakdown voltage, and maximum current rating, making it crucial for selecting the right diode for a particular circuit or application. Understanding the diode type is essential for ensuring proper functionality and performance in electronic circuits.

    Standard
  • Current - Reverse Leakage @ Vr

    Current - Reverse Leakage @ Vr is a parameter that describes the amount of current that flows in the reverse direction through a diode or other semiconductor component when a reverse voltage (Vr) is applied across it. This leakage current is typically very small, but it is important to consider in electronic circuits as it can affect the overall performance and reliability of the component. The reverse leakage current is influenced by factors such as the material properties of the semiconductor, temperature, and the magnitude of the reverse voltage applied. Manufacturers provide this parameter in datasheets to help engineers and designers understand the behavior of the component in reverse bias conditions.

    10 µA @ 200 V
  • Power Dissipation

    the process by which an electronic or electrical device produces heat (energy loss or waste) as an undesirable derivative of its primary action.

    400 mW
  • Forward Current

    Current which flows upon application of forward voltage.

    3 A
  • Max Reverse Leakage Current

    Max Reverse Leakage Current refers to the maximum amount of current that can flow through a semiconductor device, such as a diode or transistor, when it is reverse biased. This current is an important parameter as it indicates the level of unintended current that can flow when the device is not conducting in the forward direction. High values of reverse leakage current can lead to power loss, reduced efficiency, and may affect the performance and reliability of electronic circuits. It is particularly critical in applications where precise current control and low power consumption are necessary.

    10 µA
  • Operating Temperature - Junction

    Operating Temperature - Junction refers to the maximum temperature at which the junction of an electronic component can safely operate without causing damage or performance degradation. This parameter is crucial for determining the reliability and longevity of the component, as excessive heat can lead to thermal stress and failure. Manufacturers specify the operating temperature range to ensure that the component functions within safe limits under normal operating conditions. It is important for designers and engineers to consider the operating temperature - junction when selecting and using electronic components to prevent overheating and ensure optimal performance.

    -55°C ~ 150°C
  • Max Surge Current

    Surge current is a peak non repetitive current. Maximum (peak or surge) forward current = IFSM or if(surge), the maximum peak amount of current the diode is able to conduct in forward bias mode.

    150 A
  • Output Current-Max

    Output Current-Max is a parameter in electronic components that specifies the maximum amount of current that can be safely drawn from the output of the component without causing damage. It is an important specification to consider when designing circuits to ensure that the component can handle the required current without overheating or failing. Exceeding the maximum output current can lead to performance issues, component damage, or even complete failure of the circuit. It is crucial to adhere to the specified maximum output current to ensure the reliable operation of the electronic component and the overall circuit.

    3 A
  • Voltage - DC Reverse (Vr) (Max)

    Voltage - DC Reverse (Vr) (Max) is a parameter in electronic components that specifies the maximum reverse voltage that the component can withstand without breaking down. This parameter is crucial for components like diodes and transistors that are often subjected to reverse voltage during operation. Exceeding the maximum reverse voltage can lead to the component failing or getting damaged. Designers need to consider this parameter when selecting components to ensure the reliability and longevity of their circuits.

    200 V
  • Current - Average Rectified (Io)

    The parameter "Current - Average Rectified (Io)" in electronic components refers to the average value of the rectified current flowing through the component. This parameter is important in determining the average power dissipation and thermal considerations of the component. It is typically specified in datasheets for diodes, rectifiers, and other components that handle alternating current (AC) and convert it to direct current (DC). Understanding the average rectified current helps in selecting the appropriate component for a given application to ensure reliable operation and prevent overheating.

    3A
  • Forward Voltage

    the amount of voltage needed to get current to flow across a diode.

    1 V
  • Product Type

    a group of products which fulfill a similar need for a market segment or market as a whole.

    Rectifiers
  • Number of Phases
    1
  • Reverse Recovery Time

    Reverse Recovery Time is a key parameter in semiconductor devices, particularly diodes and transistors. It refers to the time taken for a diode or transistor to switch from conducting in the forward direction to blocking in the reverse direction when the polarity of the voltage across the device is reversed. This parameter is crucial in applications where fast switching speeds are required, as a shorter reverse recovery time allows for quicker response times and improved efficiency. Reverse Recovery Time is typically specified in datasheets for electronic components and is an important consideration in circuit design to ensure optimal performance and reliability.

    50 ns
  • Peak Reverse Current

    The maximum voltage that a diode can withstand in the reverse direction without breaking down or avalanching.If this voltage is exceeded the diode may be destroyed. Diodes must have a peak inverse voltage rating that is higher than the maximum voltage that will be applied to them in a given application.

    10 µA
  • Max Repetitive Reverse Voltage (Vrrm)

    The Max Repetitive Reverse Voltage (Vrrm) is a crucial parameter in electronic components, particularly in diodes and transistors. It refers to the maximum voltage that can be applied across the component in the reverse direction without causing damage. This parameter is important for ensuring the proper functioning and longevity of the component in circuits where reverse voltage may be present. Exceeding the Vrrm rating can lead to breakdown and failure of the component, so it is essential to carefully consider this specification when designing or selecting components for a circuit.

    200 V
  • Rep Pk Reverse Voltage-Max

    Rep Pk Reverse Voltage-Max refers to the maximum reverse voltage that an electronic component, such as a diode, can withstand during a specified period of time without failing. This parameter is crucial in determining the safe operating limits of components in circuits where reverse voltage conditions may occur. Exceeding this value can lead to breakdown or permanent damage to the component. It is typically expressed in volts and is a key specification in signal and power applications.

    200 V
  • JEDEC-95 Code

    JEDEC-95 Code is a standardized identification system used by the Joint Electron Device Engineering Council to categorize and describe semiconductor devices. This code provides a unique alphanumeric identifier for various memory components, ensuring consistency in documentation and communication across the electronics industry. The format includes information about the type, capacity, and technology of the device, facilitating easier specification and understanding for manufacturers and engineers.

    DO-214AB
  • Capacitance @ Vr, F

    Capacitance @ Vr, F refers to the capacitance value of a capacitor measured at a specified rated voltage (Vr). It indicates how much electrical charge the capacitor can store per volt when subjected to this voltage. This parameter is essential for understanding the behavior of capacitors in circuits, particularly under different voltage conditions, and ensures that the component operates within its safe limits. The unit of measurement is Farads (F), which quantifies the capacitor's ability to hold an electrical charge.

    80pF @ 4V, 1MHz
  • Non-rep Pk Forward Current-Max

    Non-rep Pk Forward Current-Max refers to the maximum forward current that a semiconductor device, such as a diode or LED, can handle in a pulsed or non-repetitive manner without being damaged. This parameter is essential for designers to ensure that the component operates reliably under specific conditions, particularly during transient events like switching or fault conditions. Exceeding this limit can lead to overheating or failure of the device.

    150 A
  • Reverse Voltage

    the voltage drop across the diode if the voltage at the cathode is more positive than the voltage at the anode

    200 V
  • Reverse Current-Max

    Reverse Current-Max is a parameter used to specify the maximum amount of current that can flow in the reverse direction through an electronic component, such as a diode or a transistor. This parameter is important because it indicates the maximum reverse current that the component can handle without being damaged. It is typically measured in amperes (A) and is crucial for ensuring the reliability and longevity of the component in a circuit. Designers need to consider this parameter when selecting components to prevent reverse current from exceeding the specified limit and causing potential failure.

    10 µA
  • Max Forward Surge Current (Ifsm)

    Max Forward Surge Current (Ifsm) is a parameter used to specify the maximum peak current that a diode or other electronic component can withstand for a short duration during a surge event. Surge currents can occur due to sudden changes in voltage or power supply fluctuations, and the Ifsm rating helps determine the component's ability to handle such transient overloads without being damaged. It is important to consider the Ifsm rating when selecting components for applications where surge currents are expected, such as in power supplies, motor drives, and other high-power circuits. Exceeding the Ifsm rating can lead to overheating, degradation, or failure of the component, so it is crucial to ensure that the chosen component can safely handle the expected surge currents in the circuit.

    150 A
  • Recovery Time

    Recovery time in electronic components refers to the time it takes for a device to return to its normal operating state after being subjected to a specific stimulus or disturbance. This parameter is particularly important in devices such as diodes, transistors, and capacitors, where the recovery time can impact the overall performance and reliability of the component. A shorter recovery time indicates that the component can quickly recover from a transient event, ensuring proper functionality and minimizing any potential disruptions in the circuit. Manufacturers typically provide recovery time specifications to help engineers and designers select components that meet the requirements of their specific applications.

    50 ns
  • Max Junction Temperature (Tj)

    Max Junction Temperature (Tj) refers to the maximum allowable temperature at the junction of a semiconductor device, such as a transistor or integrated circuit. It is a critical parameter that influences the performance, reliability, and lifespan of the component. Exceeding this temperature can lead to thermal runaway, breakdown, or permanent damage to the device. Proper thermal management is essential to ensure the junction temperature remains within safe operating limits during device operation.

    150 °C
  • Reverse Recovery Time-Max

    The "Reverse Recovery Time-Max" parameter in electronic components, such as diodes and transistors, refers to the maximum time it takes for the component to switch from the conducting state to the non-conducting state when the polarity of the applied voltage is reversed. This parameter is crucial in applications where fast switching speeds are required, as a longer reverse recovery time can lead to inefficiencies and potential performance issues. Manufacturers provide this specification to help designers and engineers select components that meet the required performance criteria for their specific applications. It is typically measured in nanoseconds or microseconds, with lower values indicating faster switching speeds and better overall performance.

    0.05 µs
  • Reverse Recovery Time (trr)

    Reverse Recovery Time (trr) is the time required for a diode to switch from conducting in the forward direction to blocking in the reverse direction. It is defined as the interval from the moment the forward current through the diode is interrupted until the diode effectively ceases to conduct in the reverse direction. This parameter is critical in applications involving fast switching, as a longer reverse recovery time can lead to increased switching losses and reduced efficiency in power electronics. It influences the performance of circuit components such as rectifiers and can affect overall circuit timing and stability.

    50 ns
  • Product

    In the context of electronic components, the parameter "Product" typically refers to the specific item or device being discussed or analyzed. It can refer to a physical electronic component such as a resistor, capacitor, transistor, or integrated circuit. The product parameter may also encompass more complex electronic devices like sensors, displays, microcontrollers, or communication modules.Understanding the product parameter is crucial in electronics as it helps identify the characteristics, specifications, and functionality of the component or device in question. This information is essential for selecting the right components for a circuit design, troubleshooting issues, or comparing different products for a particular application. Manufacturers often provide detailed product datasheets that outline key specifications, performance characteristics, and application guidelines to assist engineers and designers in utilizing the component effectively.

    Rectifiers
  • Product Category

    a particular group of related products.

    Rectifiers
  • Width
    6.22 mm
  • Height
    2.62 mm
  • Length
    7.11 mm
0 Similar Products Remaining

HS3D Overview

Reverse voltage 200 V is a reasonable value.Reverse leakage current from this device is 10 µA volts at its maximum.Electronic or electrical devices produce heat as unwelcome byproducts of their primary functions.In this case, forward current can reach 3 A.Phase diode rectifier is possible to use a surge current of maximum value 150 A.Whenever the reverse current is allowed to reach its maximum, 10 µA is reached.3 A represents the maximum output current.Based on the data chart, the peak reverse is 10 µA.

HS3D Features

a maximal reverse leakage current of 10 µA volts
A maximum reverse current of 10 µA
3 A is the maximum value
the peak reverse is 10 µA

HS3D Applications

There are a lot of Taiwan Semiconductor
HS3D applications of single-phase diode rectifier.


  • DC motor control and drives
  • Battery chargers
  • Welders
  • Power converters
  • Reverse Polarity Protection
  • Ultra High-Speed Switching
  • Freewheeling
  • Polarity Protection Diode
  • Recirculating Diode
  • Switching Diode
HS3D Relevant information

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