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Fiber Optic Transceivers

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OSI50603C1E
OptoSupply
IR transmitter; 940nm; transparent; 120°; SMD; Dim: 1.6x0.8x0.6mm
Quantity: 2499
Ship Date: 12-18 working days
500+ $0.0542
2000+ $0.039
- +
x $0.0542
Ext. Price: $50.02
MOQ: 923
Mult: 1
OSRB38C9AA
OptoSupply
Integrated IR receiver; 37.9kHz; 90°
Quantity: 896
Ship Date: 12-18 working days
50+ $0.3437
250+ $0.258
1000+ $0.24
- +
x $0.3437
Ext. Price: $50.18
MOQ: 146
Mult: 1
OSRB38C9BA
OptoSupply
Integrated IR receiver; 37.9kHz; 90°
Quantity: 1271
Ship Date: 12-18 working days
50+ $0.3161
250+ $0.2448
1000+ $0.2328
- +
x $0.3161
Ext. Price: $50.25
MOQ: 159
Mult: 1
OSI5LAS1C1A
OptoSupply
IR transmitter; 3528,PLCC2; transparent; 20mW; 120°; λp max: 940nm
Quantity: 1480
Ship Date: 12-18 working days
250+ $0.1363
- +
x $0.1363
Ext. Price: $50.02
MOQ: 367
Mult: 1

Fiber Optic Transceivers

Fiber optic transceivers are devices that convert electrical signals to optical signals and vice versa, facilitating high-speed data transmission over fiber optic cables. They play a crucial role in modern communication systems, ensuring efficient and reliable data transfer.

Definition:
A fiber optic transceiver is an interface device that enables the transmission of data through fiber optic cables. It consists of two main components: a transmitter and a receiver. The transmitter converts electrical signals into light signals, which are then sent through the fiber optic cable. The receiver at the other end of the cable converts the light signals back into electrical signals.

Function:
1. Signal Conversion: The primary function is to convert electrical signals to optical signals for transmission and vice versa for reception.
2. Data Transmission: They facilitate the transmission of data over long distances with minimal signal degradation.
3. Compatibility: They ensure compatibility between different types of networking equipment and fiber optic cables.

Applications:
1. Telecommunications: Used in telephone networks for long-distance voice and data transmission.
2. Data Centers: Essential for high-speed data transfer within and between data centers.
3. Internet Service Providers (ISPs): For connecting users to the internet with high bandwidth and low latency.
4. Industrial Automation: In control systems where reliable and fast data transfer is required.

Selection Criteria:
1. Speed: Choose a transceiver that supports the required data transfer speed (e.g., 1Gbps, 10Gbps, 40Gbps, etc.).
2. Distance: Select a transceiver that can support the distance between the transmitter and receiver.
3. Wavelength: Ensure the transceiver operates at the correct wavelength for the fiber optic cable being used.
4. Form Factor: Consider the physical size and compatibility with the equipment it will be installed in.
5. Compatibility: Verify that the transceiver is compatible with the existing network infrastructure.
6. Budget: Balance performance with cost, considering the budget for the project.
7. Vendor Support: Choose a reputable vendor that offers good support and warranty.

In summary, fiber optic transceivers are indispensable for modern communication systems, offering high-speed, reliable, and long-distance data transmission. When selecting a transceiver, it's important to consider factors such as speed, distance, compatibility, and budget to ensure optimal performance.
Please refer to the product rule book for details.