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Thin and soft optical tactile sensor for highly sensitive object perception
Optics Express
|August 14, 2026
Summary
This study introduces a novel optical tactile sensor using speckle patterns in silicone for robotics. The compact, alignment-free sensor achieves high resolution and multimodal sensing, enabling accurate surface pattern classification.
Area of Science:
- Robotics and Mechanical Engineering
- Optical Sensing Technologies
- Materials Science
Background:
- Tactile sensing is crucial for safe human-robot and human-wearable interaction.
- Existing optical tactile sensors often rely on complex, bulky optical assemblies.
- There is a need for compact, compliant, and alignment-free tactile sensing solutions.
Purpose of the Study:
- To develop a thin, compact, and compliant optical tactile sensor with an alignment-free architecture.
- To demonstrate the sensor's capability for high-resolution tactile information acquisition.
- To validate the sensor's multimodal sensing and robustness to environmental factors.
Main Methods:
- Utilizing deformation-induced speckle pattern variations within a soft silicone medium.
- Employing a data-driven model for inferring tactile information from speckle patterns.
- Integrating the sensor into a robotic gripper for practical application testing.
Main Results:
- Achieved a spatial resolution better than 20 µm and force measurement precision below 40 mN.
- Demonstrated simultaneous estimation of contact position, applied force, and temperature.
- Successfully classified nine engraved surface patterns with 93.33% accuracy using a robotic gripper.
Conclusions:
- The proposed speckle-based optical tactile sensor offers a compact, manufacturable, and compliant solution.
- This technology is a promising advancement for next-generation soft robotics and wearable haptic systems.
- The alignment-free design and multimodal sensing capabilities address key limitations of current optical tactile sensors.
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