MOC216M Allicdata Electronics
Allicdata Part #:

MOC216M-ND

Manufacturer Part#:

MOC216M

Price: $ 0.62
Product Category:

Isolators

Manufacturer: ON Semiconductor
Short Description: OPTOISO 2.5KV TRANS W/BASE 8SOIC
More Detail: Optoisolator Transistor with Base Output 2500Vrms ...
DataSheet: MOC216M datasheetMOC216M Datasheet/PDF
Quantity: 1821
1 +: $ 0.56070
10 +: $ 0.43533
100 +: $ 0.31097
500 +: $ 0.23635
1000 +: $ 0.18659
Stock 1821Can Ship Immediately
$ 0.62
Specifications
Output Type: Transistor with Base
Supplier Device Package: 8-SO Tall
Package / Case: 8-SOIC (0.154", 3.90mm Width)
Mounting Type: Surface Mount
Operating Temperature: -40°C ~ 100°C
Vce Saturation (Max): 400mV
Current - DC Forward (If) (Max): 60mA
Voltage - Forward (Vf) (Typ): 1.07V
Current - Output / Channel: 150mA
Voltage - Output (Max): 30V
Series: --
Input Type: DC
Rise / Fall Time (Typ): 3.2µs, 4.7µs
Turn On / Turn Off Time (Typ): 7.5µs, 5.7µs
Current Transfer Ratio (Max): --
Current Transfer Ratio (Min): 50% @ 1mA
Voltage - Isolation: 2500Vrms
Number of Channels: 1
Part Status: Active
Packaging: Tube 
Description

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The MOC216M is a type of optoisolator, also known as an opto-coupler, opto-isolator or photocoupler. It is designed to transfer an electrical signal between two circuits across an optically isolated boundary, separating them and preventing electrical energy from traveling directly from one circuit to the other. It is a Transistor, Photovoltaic Output optoisolator that uses infrared light to transfer electrical signals from one circuit to the other with minimal noise interference.

The MOC216M consists of two parts: an LED emitter circuit and a photovoltaic detector circuit. The LED emitter emits light when an input voltage is applied. This light is then detected by the photovoltaic detector, which converts the light into an electrical signal. This electrical signal is then sent to the output circuit of the optoisolator, where it can be used to control the functions of the device.

The MOC216M is most commonly used to provide electrical isolation between two systems or devices. This isolation prevents electrical interference, which could potentially damage electronic components, and it allows the two systems to function independently. The optoisolator can also be used as an input/output buffer, providing isolation between input and output signals.

The MOC216M has various applications in industrial systems and home appliances. In industrial systems, the optoisolator can be used to control servo motors, stepper motors and limit switches. It can also be used as a signal converter, converting signals from one form to another. In home appliances, the optoisolator is used to control power switches, adjust LED brightness and regulate motor speeds.

The MOC216M is designed to operate in harsh industrial and home environments, and is capable of withstanding temperatures up to 105 degrees Celsius. It also has an extremely fast response time, with a pulse width of only 10μS. Additionally, it has a high insulation resistance (greater than 5MΩ) and it does not require an external voltage supply.

The working principle of the MOC216M is simple and straightforward. When a voltage is applied to the LED emitter circuit, it emits light which is then detected by the photovoltaic detector. This detector converts the light into an electrical signal, which is then sent to the output circuit. This electrical signal is then used to control various functions, depending on the application.

In conclusion, the MOC216M is an optoisolator that is designed to transfer an electrical signal between two circuits across an optically isolated boundary. This Transistor, Photovoltaic Output optoisolator has a variety of applications in industrial and home environments, and can be used to control servo motors, stepper motors, limit switches, LED brightness and motor speeds. It is capable of withstanding temperatures up to 105 degrees Celsius, has a fast response time of 10μS, and requires no external voltage supply. The working principle of the MOC216M is to convert light into an electrical signal, which is then used to control various functions.

The specific data is subject to PDF, and the above content is for reference

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