The SFH 7072 is a versatile component that belongs to the category of optoelectronic devices. This product is widely used in various applications due to its unique characteristics and functional features. In this entry, we will provide an overview of the SFH 7072, including its basic information, specifications, pin configuration, functional features, advantages, disadvantages, working principles, application field plans, and alternative models.
The SFH 7072 specifications include: - Wavelength Range: 800nm - 1100nm - Sensitivity: 0.8 A/W - Operating Temperature: -40°C to 85°C - Forward Voltage: 1.2V - Reverse Voltage: 30V - Package Type: TO-46
The SFH 7072 features a standard pin configuration with the following connections: - Pin 1: Cathode - Pin 2: Anode - Pin 3: No Connection - Pin 4: Case
The SFH 7072 offers the following functional features: - High sensitivity to infrared light - Fast response time - Low dark current - Wide operating temperature range
The SFH 7072 operates based on the principle of photodiode detection. When exposed to infrared light within its specified wavelength range, the photodiode generates a photocurrent proportional to the incident light intensity. This photocurrent can be utilized for various sensing and communication purposes.
The SFH 7072 finds extensive use in the following application fields: - Infrared remote control systems - Optical proximity sensors - Data communication systems - Industrial automation - Medical devices
Some alternative models to the SFH 7072 include: - SFH 7070: Similar sensitivity with a slightly different package type - SFH 7075: Enhanced sensitivity and extended wavelength range - SFH 7080: Higher speed and lower dark current for specific applications
In conclusion, the SFH 7072 is a valuable optoelectronic device with a wide range of applications, offering high sensitivity, fast response time, and reliable performance. Its specifications, pin configuration, functional features, advantages, disadvantages, working principles, application field plans, and alternative models make it a crucial component in various optical sensing and communication systems.
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