ATMXT336S-CCUR - 336-Node maXTouch Touchscreen IC | Microchip
MPN: ATMXT336S-CCUR β Active| Qty | Unit Price | Extended |
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| 1 | $0 | $0.00 |
| 10 | $0 | $0.00 |
| 100 | $0 | $0.00 |
| 500 | $0 | $0.00 |
| 1,000 | $0 | $0.00 |
ATMXT336S-CCUR Overview
A capacitive touchscreen controller is a mixed-signal IC that drives and senses a grid of mutual-capacitance nodes on a touch sensor, converting finger and stylus position data into digital coordinates for a host processor. Within the system hierarchy, it sits between the physical touch sensor stack (ITO patterned glass or film) and the application processor, forming part of the human-machine interface (HMI) subsystem alongside display drivers and sensor hubs. Microchip's maXTouch family, originally developed by Atmel, is a well-established product line in this category.
The mXT336S uses Microchip's patented capacitive touch technology to deliver the highest touch performance demanded by flagship smart phones. With 336 sensing nodes, the controller can drive large sensor arrays while supporting fine-pitch passive stylus input down to 2.0 mm tip diameter, enabling note-taking and precision drawing use cases. Water rejection and gloved-finger operation are typical maXTouch family capabilities for this class of device.
A defining feature of the newest maXTouch members, including the mXT336S, is integration with maXFusion sensor hub technology. maXFusion fuses inputs from external accelerometers, gyroscopes, and magnetometers, processing location, orientation, direction, and inclination data in real time to enhance gaming, navigation, and virtual reality applications, offloading this workload from the application processor.
The device communicates with the host over an I2C serial interface, the standard bus for touchscreen controllers in mobile designs. Typical applications include premium smart phones, tablets, and other touch-centric mobile devices where high node count, stylus support, and sensor fusion are required.
When designing with the ATMXT336S-CCUR, verify sensor stack compatibility, firmware/configuration image matching, and I2C pull-up sizing against the manufacturer datasheet, since touchscreen performance depends strongly on the sensor pattern and config file pairing.
Note that Microchip's product page lists the ATMXT336U as the recommended alternative touch controller for new designs. This page synthesizes distributor availability, cross-reference data, drop-in alternative guidance, and practical design notes not found in the manufacturer datasheet. Pricing is provided via RFQ as of 2026-09-19.
Drop-in alternatives for ATMXT336S-CCUR β same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
Variants in this series
Same-series models that are drop-in compatible with ATMXT336S-CCUR (same form factor and footprint).
Quick Comparison Tool β Select alternative parts for side-by-side comparison:
ATMXT336U
β Drop-Inπ Reference alternative (not in catalog)
ATMXT336S-CCUR020
β Drop-Inπ Reference alternative (not in catalog)
ATMXT336S-CCUR034
β Drop-Inπ Reference alternative (not in catalog)
ATMXT336S-CCUR Maximum Ratings & Electrical Characteristics
| Manufacturer | Microchip Technology |
| Product Family | maXTouch (mXT336S) |
| Function | Capacitive touchscreen controller |
| Touch Sensing Nodes | 336 |
| Touch Technology | Projected capacitive (mutual capacitance) |
| Stylus Support | 2.0 mm passive stylus |
| Sensor Hub | maXFusion technology (accelerometer, gyroscope, magnetometer fusion) |
| Interface | I2C |
| Package | 64-pin TQFN |
| Mounting Type | Surface Mount |
| Packaging Variant Suffix | CCUR (Tape and Reel) |
| Recommended Alternative | ATMXT336U (per Microchip product page) |
| Applications | Smart phones, tablets, mobile HMI |
ATMXT336S-CCUR 64-pin tqfn Pin Configuration Guide
Pin configuration for ATMXT336S-CCUR (64-pin tqfn package). Pin numbering, functions, and connection diagrams are defined in the manufacturer datasheet. Refer to it for the exact footprint and soldering guidelines.
No detailed pinout data available for ATMXT336S-CCUR.
Refer to the datasheet for full pin configuration.
Typical Applications
ATMXT336S-CCUR is suitable for 6 applications: Premium Smartphones, Tablets and Large-Format Mobile Devices, Sensor Hub Fusion for Gaming and VR, Industrial Human-Machine Interfaces, Navigation and Location-Aware Devices, Point-of-Sale and Signature Capture Terminals.
Premium Smartphones
The ATMXT336S-CCUR is purpose-built for highest-performance smart phones, where its 336-node mutual-capacitance sensing array delivers accurate multi-touch tracking on dense ITO sensor patterns. Its 2.0 mm passive stylus support enables handwriting and annotation features that flagship devices demand, while Microchip's patented capacitive touch technology maintains accuracy in challenging conditions. In the signal chain, the controller sits behind the display's touch sensor stack, scanning electrodes and streaming coordinates to the application processor over I2C. The maXFusion sensor hub integration further reduces BOM cost by fusing accelerometer, gyroscope, and magnetometer data in-chip, consolidating touch and motion processing into one 64-pin TQFN device.
Recommended
Tablets and Large-Format Mobile Devices
Tablet-sized touch sensors require high node counts to preserve linearity and reporting accuracy across large active areas, and the ATMXT336S-CCUR's 336 sensing nodes directly address this requirement. The controller supports fine 2.0 mm passive stylus input, which is increasingly expected on tablets for note-taking and creative workflows. Its I2C host interface integrates cleanly with standard tablet application processors, and the 64-pin TQFN package suits the dense board layouts typical of thin mobile form factors. When combined with maXFusion sensor hub technology, the same device also processes orientation and inclination data for screen rotation and stylus tilt-aware features, reducing external component count and power spent on separate sensor hub ICs.
Recommended
Sensor Hub Fusion for Gaming and VR
The newest maXTouch members, including the mXT336S, integrate maXFusion sensor hub technology, which fuses inputs from accelerometers, gyroscopes, and magnetometers in real time. For gaming, augmented reality, and virtual reality headsets, low-latency fusion of touch input with head or controller motion data (location, orientation, direction, inclination) directly improves user experience and reduces motion-to-photon error contributions from the host processor. The ATMXT336S-CCUR performs this fusion on-chip and reports results over I2C, offloading the application processor. In a VR HMI chain, it functions simultaneously as a 336-node touch controller for panel or touchpad input and as the motion sensor hub, consolidating two subsystems into one 64-pin TQFN package.
Recommended
Industrial Human-Machine Interfaces
Industrial HMI panels benefit from projected-capacitive touch controllers that provide reliable multi-touch and stylus-grade precision. While the mXT336S targets smartphones primarily, its 336-node architecture and I2C interface map naturally onto mid-size industrial touch panels where fine-pitch passive stylus entry (2.0 mm tip) supports data entry on schematics or forms. The maXFusion sensor hub can fuse orientation data for panel mount compensation in mobile industrial equipment. Designers must verify the operating temperature range and supply specifications against the manufacturer datasheet before using the part in harsh environments, as industrial qualification differs from consumer mobile qualification. Configuration files must be matched to the chosen sensor stack for accurate edge and palm rejection behavior.
Recommended
Navigation and Location-Aware Devices
maXFusion technology in the ATMXT336S-CCUR processes location, orientation, direction, and inclination data from fused accelerometer, gyroscope, and magnetometer inputs, making it a strong fit for navigation-centric products such as portable navigators, handheld terminals, and automotive-grade aftermarket navigation units. By performing sensor fusion on the touch controller die, the design saves a separate sensor hub IC and reduces I2C bus contention with the main CPU. The 336-node touch engine simultaneously supports responsive map gestures and 2.0 mm passive stylus route annotation. Integration effort centers on firmware configuration matching to the sensor stack and correct interrupt wiring on the I2C host interface, as detailed in the manufacturer datasheet and reference designs.
Recommended
Point-of-Sale and Signature Capture Terminals
Point-of-sale terminals and signature-capture displays require accurate fine-line stylus capture for electronic signatures, and the ATMXT336S-CCUR's support for a 2.0 mm passive stylus meets the resolution expectations of signature-quality capture without needing an active stylus. The 336-node sensor grid delivers uniform accuracy across the signing area, while multi-touch capability supports modern gesture-driven checkout interfaces. The I2C host interface connects easily to POS main controllers, and the compact 64-pin TQFN package fits within slim terminal housings. Because these terminals often run continuously, designers should follow the datasheet's configuration guidance for scan intervals and idle modes to balance touch latency against system power draw.
Recommended
Recommended Products Summary
Engineering reference data for ATMXT336S-CCUR β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | ATMXT336U | ATMXT336S-CCUR020 | ATMXT336S-CCUR034 |
|---|---|---|---|---|
| Brand | Microchip Technology | Microchip Technology | Microchip Technology | Microchip Technology |
| Touch Sensing Nodes | 336 | 336 | 336 | 336 |
| Host Interface | I2C | I2C | I2C | I2C |
| Configuration Image | Standard (CCUR) | U-series configuration | 020 configuration | 034 configuration |
| Recommended By Microchip | Base part of this page | Yes - recommended alternative | Variant, not listed as alternative | Variant, not listed as alternative |
Key Differentiators
- Microchip-recommended alternative relationship (vs ATMXT336U)
- Integrated maXFusion sensor hub (vs ATMXT336S-CCUR020 / CCUR034 variants)
- 2.0 mm passive stylus support (vs Lower-node maXTouch controllers)
Design Notes
Route the I2C bus (SDA/SCL) short and direct, with pull-up resistors sized per the manufacturer datasheet for the intended bus speed and bus capacitance. Keep touch sensor electrode traces away from switching regulator nodes and display flex harnesses; capacitive touch front ends are sensitive to coupled switching noise, which appears as jitter or false touches. Use a solid ground plane under the touch traces and follow the sensor stack stack-up recommended in the mXT336S documentation to preserve SNR for the 2.0 mm passive stylus feature.
maXTouch controllers require a configuration file matched to the specific touch sensor stack (electrode pattern, pitch, and stack-up). Using a generic or mismatched configuration is the most common cause of poor edge accuracy, failed stylus detection, or palm-rejection problems. If substituting the ATMXT336U for the ATMXT336S, do not assume config compatibility - verify pinout, package drawing, and firmware configuration against both datasheets before releasing the PCB. Also confirm supply rail sequencing requirements with the display and touch power tree.
Place the 64-pin TQFN with its exposed pad soldered to a well-via-ed ground area to achieve reliable thermal and electrical grounding. Decouple the supply pins with ceramic capacitors placed within a few millimeters of the pins, following the value recommendations in the manufacturer datasheet. Keep crystal or clock traces (if used) short and guarded. Because the device also acts as a maXFusion sensor hub connecting external accelerometer, gyroscope, and magnetometer devices, plan the sensor placement and its I2C stub lengths during early floorplanning rather than as an afterthought.
Compliance Information
Compliance status not stated in the provided verified web data; consult the official Microchip product page or datasheet for RoHS/REACH declarations.