The FC22H-TL from ON Semiconductor is a high-performance, integrated capacitive sensing solution designed for a wide range of applications requiring reliable and accurate touch sensing capabilities. This advanced sensor is part of ON Semiconductor's renowned portfolio of touch interface products, which are known for their quality, durability, and versatility.
Key Features
- High Sensitivity: The FC22H-TL provides exceptional sensitivity, making it suitable for detecting light touches and gestures with high precision.
- Low Power Consumption: It is designed for energy efficiency, which is crucial for battery-powered and portable devices, ensuring a longer operational lifespan between charges.
- Wide Operating Voltage Range: The device supports a broad range of operating voltages, accommodating various power supply requirements and enhancing its compatibility with different system designs.
- Robust Noise Immunity: ON Semiconductor's advanced technology ensures that the FC22H-TL is highly resistant to electromagnetic interference, providing reliable performance in noisy environments.
- Flexible Configuration: The capacitive sensor can be easily configured to suit a variety of application needs, allowing for customization and scalability in design.
Applications
The FC22H-TL is ideal for a multitude of applications where touch sensing is required. It is commonly used in:
- Consumer electronics such as smartphones, tablets, and wearables
- Home automation systems, including smart lighting and security panels
- Automotive interfaces, like touch-sensitive buttons and sliders
- Industrial controls and human-machine interfaces (HMIs)
Technical Specifications
| Parameter |
Value |
| Supply Voltage |
2.6V to 5.5V |
| Sensitivity |
High |
| Operating Temperature |
-40°C to +85°C |
| Package |
Compact and surface mountable |
With its robust design and state-of-the-art features, the ON Semiconductor FC22H-TL capacitive sensor stands out as a top choice for designers and engineers looking to integrate touch functionality into their next project.