CMLT5087EM TR Allicdata Electronics
Allicdata Part #:

CMLT5087EMTR-ND

Manufacturer Part#:

CMLT5087EM TR

Price: $ 0.20
Product Category:

Discrete Semiconductor Products

Manufacturer: Central Semiconductor Corp
Short Description: TRANS 2PNP 50V 0.1A SOT-563
More Detail: Bipolar (BJT) Transistor Array 2 PNP (Dual) 50V 10...
DataSheet: CMLT5087EM TR datasheetCMLT5087EM TR Datasheet/PDF
Quantity: 1000
3000 +: $ 0.18225
Stock 1000Can Ship Immediately
$ 0.2
Specifications
Series: --
Packaging: Tape & Reel (TR) 
Part Status: Active
Transistor Type: 2 PNP (Dual)
Current - Collector (Ic) (Max): 100mA
Voltage - Collector Emitter Breakdown (Max): 50V
Vce Saturation (Max) @ Ib, Ic: 400mV @ 10mA, 100mA
Current - Collector Cutoff (Max): 50nA (ICBO)
DC Current Gain (hFE) (Min) @ Ic, Vce: 300 @ 100µA, 5V
Power - Max: 350mW
Frequency - Transition: 100MHz
Operating Temperature: -65°C ~ 150°C (TJ)
Mounting Type: Surface Mount
Package / Case: SOT-563, SOT-666
Supplier Device Package: SOT-563
Description

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The CMLT5087EM TR is a type of transistor array. It is an 8 pin Integrated Circuit (IC) package with a dual-in-line pin-out. The CMLT5087EM TR is often used for a multitude of applications in field, such as audio amplifiers, logic circuits, or digital-to-analog converters. It is especially useful for low voltage applications that require a high current capacity and a low amount of switching power.

The CMLT5087EM TR is a bipolar transistor array, meaning that it consists of a collection of transistors with each transistor operating independently to provide the desired effect. It contains two NPN transistors and two PNP transistors in an integrated circuit package, so it can control more than one signal line. This allows the CMLT5087EM TR to be used to create complex logic functions. The transistors are usually configured as common collectors or common emitters.

The two NPN transistors are connected in a direct coupling arrangement. This allows for rapid switching of the input signal from one transistor to the other, providing fast response times. The configuration further allows for the co-operation of the two transistors so that they either operate together to amplify an input signal or operate independently to control two signals simultaneously.

The two PNP transistors are typically configured in a common base arrangement, which is often referred to as a Darlington pair. The arrangement allows for increased current gain and more efficient device power consumption. Furthermore, the two transistors can be arranged in such a way that the output of one transistor is the input of the other, allowing for a high level of control. This is especially useful for designing logic gates.

The working principle of the CMLT5087EM TR is fairly straightforward. When an input signal is provided to the transistor array, the transistors will either amplify or switch the input signal, depending on how they are configured. The outputs of the transistors can then be used to control a load. This allows for the CMLT5087EM TR to be used to control a variety of different devices, such as relays, motors, and displays.

The CMLT5087EM TR is an incredibly versatile device and can be used in a wide range of applications. It is an ideal choice for low voltage applications that require a high degree of control. It is also highly efficient, allowing for the use of smaller transistors in circuits that require more power. Additionally, the transistors can be configured to provide different gain and response times, allowing for flexibility in designing circuits that require precision control.

In conclusion, the CMLT5087EM TR is a highly versatile and efficient transistor array, perfect for applications in the field which require a high degree of control and efficiency. Its dual NPN and PNP transistors allow for increased current gain, efficient power consumption, and precise control. It is an ideal choice for any low voltage application that requires precision operation and a high level of control.

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

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