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2SK2013

Toshiba

2SK2013 by Toshiba

Toshiba's 2SK2013 is a N-CHANNEL FET with 180V DS Breakdown Voltage, ideal for AMPLIFIER applications. It features a max Drain Current of 1A and Power Dissipation of 25W in a RECTANGULAR package. The transistor operates in ENHANCEMENT MODE and has a max temperature rating of 150°C.

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Overview

Unleash the power of innovation with the Toshiba 2SK2013 Power Field Effect Transistor. Manufactured by industry leader Toshiba, this N-CHANNEL transistor offers exceptional quality and reliability for amplifier applications. With a minimum DS Breakdown Voltage of 180V and maximum Drain Current of 1A, this transistor delivers superior performance in enhancing your electronic projects. Experience the value and benefits of using the 2SK2013 for your next design, where quality meets excellence.

Feature Benefit Bullets

Package Body Material: PLASTIC/EPOXY

The plastic/epoxy material used for the package body provides durability and protection for the internal components of the transistor, making it a reliable choice for various applications.

Polarity or Channel Type: N-CHANNEL

N-channel transistors generally have better performance characteristics compared to P-channel transistors, making this product a good choice for applications requiring high efficiency and low power consumption.

Minimum DS Breakdown Voltage: 180 V

With a minimum breakdown voltage of 180V, this transistor is suitable for applications requiring high voltage operation, ensuring reliable performance under challenging conditions.

Transistor Application: AMPLIFIER

Designed for amplifier applications, this transistor can deliver high power output with low distortion, making it an ideal choice for audio and RF amplification purposes.

Maximum Power Dissipation (Abs): 25 W

With a maximum power dissipation of 25W, this transistor can handle high power levels without overheating, ensuring stable operation and long-term reliability.

Technical Specifications

Power Field Effect Transistors (FET) 2SK2013 attributes and parameters. Explore more Power Field Effect Transistors (FET) devices from Toshiba

Specs

Case Connection:

ISOLATED

Configuration:

Minimum DS Breakdown Voltage:

180 V

Maximum Drain Current (Abs) (ID):

1 A

Maximum Drain Current (ID):

1 A

Field Effect Transistor Technology:

METAL-OXIDE SEMICONDUCTOR

JEDEC-95 Code:

TO-220AB

JESD-30 Code:

R-PSFM-T3

No. of Elements:

1

No. of Terminals:

3

Operating Mode:

ENHANCEMENT MODE

Maximum Operating Temperature:

150 Cel

Package Body Material:

PLASTIC/EPOXY

Package Shape:

RECTANGULAR

Package Style (Meter):

FLANGE MOUNT

Peak Reflow Temperature (C):

NOT SPECIFIED

Polarity or Channel Type:

Maximum Power Dissipation Ambient:

25 W

Maximum Power Dissipation (Abs):

Qualification:

Not Qualified

Sub-Category:

FET General Purpose Power

Surface Mount:

NO

Terminal Form:

THROUGH-HOLE

Terminal Position:

SINGLE

Maximum Time At Peak Reflow Temperature (s):

NOT SPECIFIED

Transistor Application:

AMPLIFIER

Transistor Element Material:

SILICON

Trade Compliance

2SK2013 Transistors trade compliance attributes, and parameters.

ECCN

EAR99

ECCN Governance

EAR

HTS

8541.29.00.95

SB

8541.29.00.80

Manufacturer Highlights

Toshiba

TOSHIBA, is a Japanese multinational conglomerate corporation headquartered in Minato, Tokyo, Japan. Its diversified products and services include power, industrial and social infrastructure systems, elevators and escalators, electronic components, semiconductors, hard disk drives (HDD), printers, batteries, lighting, as well as IT solutions such as quantum cryptography which has been in development at Cambridge Research Laboratory, Toshiba Europe, located in the United Kingdom, now being commercialised.It was one of the biggest manufacturers of personal computers, consumer electronics, home appliances, and medical equipment. As a semiconductor company and the inventor of flash memory, Toshiba had been one of the top 10 in the chip industry until its flash memory unit was spun off as Toshiba Memory, later Kioxia, in the late 2010s.

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