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TLP521-1(GB,F,T)

Toshiba

TLP521-1(GB,F,T) by Toshiba

Toshiba's TLP521-1(GB,F,T) is a single optocoupler with max. forward current of 0.025A, collector-emitter breakdown voltage of 55V, and isolation voltage of 2500V. Ideal for applications requiring high isolation levels and reliable signal transmission in temperature range -25 to 85°C.

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Overview

Enhance your electronic projects with the TLP521-1(GB,F,T) by Toshiba, a high-quality optocoupler transistor output that offers reliable performance and precise control. Manufactured by Toshiba, a trusted name in the industry, this product ensures superior functionality and durability. Ideal for applications requiring efficient signal transmission and noise reduction, this optocoupler provides maximum isolation voltage of 2500V and nominal current transfer ratio of 100%. Trust Toshiba to deliver excellence in every component, and elevate your projects to new levels of success with the TLP521-1(GB,F,T).

Feature Benefit Bullets

Configuration: SINGLE

Single configuration makes it easy to use and install in circuit boards, reducing complexity and saving space.

Maximum Forward Current: 0.025 A

Can handle up to 25mA of current, suitable for low power applications without the risk of overloading the optocoupler.

Optoelectronic Type: TRANSISTOR OUTPUT OPTOCOUPLER

Transistor output optocoupler provides high speed switching and isolation, making it ideal for applications requiring precise control and electrical separation.

Maximum Operating Temperature: 85 °C

Can operate in high temperature environments without any degradation in performance, ensuring reliability in various applications.

Minimum Operating Temperature: -25 °C

Can operate in low temperature environments, making it suitable for a wide range of operating conditions.

Maximum Dark Current: 100 nA

Low dark current ensures minimal leakage current when the optocoupler is off, improving efficiency and accuracy in signal transmission.

Minimum Collector-emitter Breakdown Voltage: 55 V

High breakdown voltage provides protection against voltage spikes and surges, safeguarding the optocoupler and connected components.

Nominal Current Transfer Ratio: 100 %

High current transfer ratio ensures accurate and linear amplification of input signals, improving the overall performance of the optocoupler.

Maximum Isolation Voltage: 2500 V

Provides high level of electrical isolation between input and output circuits, preventing cross-talk and ensuring safe operation in high voltage applications.

Technical Specifications

Optocoupler Transistor Outputs TLP521-1(GB,F,T) attributes and parameters. Explore more Optocoupler Transistor Outputs devices from Toshiba

Specs

Additional Features:

UL RECOGNIZED

Minimum Collector-emitter Breakdown Voltage:

55 V

Configuration:

SINGLE

Nominal Current Transfer Ratio:

100 %

Maximum Dark Current:

100 nA

Maximum Forward Current:

.025 A

Maximum Isolation Voltage:

2500 V

No. of Elements:

1

Maximum Operating Temperature:

85 Cel

Minimum Operating Temperature:

-25 Cel

Optoelectronic Type:

Trade Compliance

TLP521-1(GB,F,T) Optoelectronics trade compliance attributes, and parameters.

HTS

8541.40.80.00

SB

8541.40.80.00

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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