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Mfr.Part #
In Stock
Manufacturer
Description
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TSC2007IYZGR TSC2007IYZGR 46128 Texas Instruments IC SCREEN CNTRL 12BIT 12DSBGA 12-UFBGA, DSBGA
ATMXT1664T3-CCUR035 ATMXT1664T3-CCUR035 7827 Microchip Technology MAXTOUCH TOUCHSCREEN CTRL IC 136-UFBGA
ATMXT2952TD-C2U001 ATMXT2952TD-C2U001 34187 Microchip Technology MAXTOUCH TOUCHSCREEN CONTROLLER 162-UFBGA
ADS7846AN ADS7846AN 41506 Burr Brown A/D CONV TOUCH SCREEN CONTROLLER 16-TSSOP (0.173", 4.40mm Width)
AD7879WARUZ-RL7 AD7879WARUZ-RL7 38069 Analog Devices Inc. IC SCREEN CNTRL 12BIT 16TSSOP 16-TSSOP (0.173", 4.40mm Width)
AR1021-I/SO AR1021-I/SO 26467 Microchip Technology IC SCREEN CNTRL 10BIT 20SOIC 20-SOIC (0.295", 7.50mm Width)
AD7843ARQZ AD7843ARQZ 31717 Analog Devices Inc. IC SCREEN CNTRL 12BIT 16QSOP 16-SSOP (0.154", 3.90mm Width)
TSC2003IPWR TSC2003IPWR 16033 Texas Instruments IC SCREEN CNTRL 12BIT 16TSSOP 16-TSSOP (0.173", 4.40mm Width)
AD7877ACPZ-REEL7 AD7877ACPZ-REEL7 37317 Analog Devices Inc. IC SCREEN CNTRL 12BIT 32LFCSP 32-VFQFN Exposed Pad, CSP
TSC2003IPW TSC2003IPW 7263 Texas Instruments IC SCREEN CNTRL 12BIT 16TSSOP 16-TSSOP (0.173", 4.40mm Width)
ATMXT1066TD-NHUR001 ATMXT1066TD-NHUR001 35960 Microchip Technology MAXTOUCH TD CTLR IC 117-UFBGA
MTCH6102-I/MV MTCH6102-I/MV 6125 Microchip Technology IC SCREEN CNTRL 28QFN 28-UFQFN Exposed Pad
AR1100-I/SO AR1100-I/SO 21474 Microchip Technology IC SCREEN CNTRL 12BIT 20SOIC 20-SOIC (0.295", 7.50mm Width)
MTCH6102-I/SS MTCH6102-I/SS 47442 Microchip Technology IC SCREEN CNTRL 28SSOP 28-SSOP (0.209", 5.30mm Width)
AR1100T-I/SO AR1100T-I/SO 12137 Microchip Technology IC SCREEN CNTRL 12BIT 20SOIC 20-SOIC (0.295", 7.50mm Width)
AD7843ARQZ-REEL7 AD7843ARQZ-REEL7 46221 Analog Devices Inc. IC SCREEN CNTRL 12BIT 16QSOP 16-SSOP (0.154", 3.90mm Width)
TSC2007IPWR TSC2007IPWR 27528 Texas Instruments IC SCREEN CNTRL 12BIT 16TSSOP 16-TSSOP (0.173", 4.40mm Width)
TSC2004IRTJT TSC2004IRTJT 10224 Texas Instruments IC SCREEN CNTRL 12BIT 20QFN 20-WFQFN Exposed Pad
AR1100-I/MQ AR1100-I/MQ 43897 Microchip Technology IC SCREEN CNTRL 12BIT 20QFN 20-VQFN Exposed Pad
MTCH6301-I/PT MTCH6301-I/PT 33276 Microchip Technology IC SCREEN CNTRL 44TQFP 44-TQFP

Touch Screen Controllers

Touch Screen Controllers are the core electronic components of touch screen systems. They are responsible for detecting and processing user touch input signals and passing coordinate data to the main control system (such as a PC or embedded microcontroller) to achieve precise human-computer interaction. Such controllers are usually integrated into touchscreen components or used as independent chips and are widely used in consumer electronics, industrial automation, medical equipment, and other fields.

 

1. What are Touch Screen Controllers?‌

A touchscreen controller is a small microcontroller chip located between a touch sensor (such as a capacitive sensing panel) and the main control system. It is responsible for converting physical touch signals into digital coordinate signals and performing tasks such as signal processing, debouncing, and calibration. It ensures the real-time and accuracy of touch response and supports functions such as multi-touch and gesture recognition.

 

In a capacitive touch screen, the controller determines the touch position by detecting the capacitance change between electrodes (such as self-capacitance or interactive capacitance). The sensitivity can be adjusted by external capacitance to adapt to different environmental requirements.

 

2. What are the ‌Working Principles and Technical Characteristics of Touch Screen Controllers?‌

The controller uses self-correction technology to automatically adapt to environmental changes (such as temperature and humidity drift) without manual intervention; the initialization time is about 200 milliseconds, the sampling cycle is short (such as sampling every 2.8 milliseconds), and the response time is fast (the key detection reaction time is about 18 milliseconds), ensuring the smoothness of high-frequency operations.

 

Key technical indicators include: touch point accuracy (linearity error <2%), multi-touch support (such as 10-point touch), output logic (output low level when touched, output high level when not touched), and communication with the main control system through interfaces such as IIC and SPI.

 

To improve anti-interference ability, the controller often integrates de-jitter processing circuits and can configure sensitivity capacitors (range 5-100pF) to cope with touch scenarios of different media (such as glass or plastic coverings).

 

3. What are the ‌Typical Products and Performance Parameters of Touch Screen Controllers?‌

‌General Controller‌: such as SC02F chip, supports 2 independent touch sensing buttons, operating voltage range 2.0V~5.5V, packaged as SOP8, suitable for low-cost consumer electronics. Its features include parallel output, automatic compensation for environmental drift, and high compatibility design.

‌High-performance Controller‌: such as GT9147, equipped with multiple sensing channels (such as 10 sensing + 17 driving channels), manages coordinate data through registers and status registers (such as 0X814E), supports complex gesture recognition, and is often used in industrial touch screens.

 

4. What are the ‌Application Scenarios and Advantages of Touch Screen Controllers?‌

In industrial automation (such as 8.4-inch industrial touch screens), the controller provides dustproof, waterproof, and shockproof features to ensure stable operation in harsh environments; combined with wireless communication modules (such as Wi-Fi), remote monitoring and data analysis are achieved.

 

In consumer electronics (such as mobile phones, and tablets) and embedded systems (such as 51 single-chip microcomputers driving TFT touch screens), controllers simplify human-computer interaction design and improve operating efficiency and user experience.

 

In short, as a key hub for human-computer interaction, touch screen controllers integrate microelectronics technology and signal processing algorithms. Their miniaturization, high reliability, and easy integration characteristics drive smart devices to develop in a more intuitive and efficient direction.