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◆ Optics letters2026-09-15

Multi-directional millinewton force sensing for human-computer interaction based on an optoelectronic-integrated flexible tactile device.

Jiawei Shi, Dongyun Gao, Jiaqi Yin, Qihang Zhao, Jiabin Yan, Jiafeng Lu, Hongbo Zhu, Yongjin Wang, Fan Shi

原始摘要(英文原文)· Original abstract
Flexible optical force sensors have shown great potential in human-computer interaction (HCI), health monitoring, and wearable devices. However, conventional optical force-sensing systems typically require separate light sources and photodetectors, leading to bulky system architectures and low integration. This work presents a multi-directional millinewton sensor based on a GaN monolithically integrated optoelectronic chip and a flexible optoelectronic tactile device (FOTD). The chip integrates one micro-scale multi-quantum-well (MQW) transmitter and four-quadrant MQW receivers on the same substrate, enabling compact on-chip integration of light emission and detection. The FOTD uses a polydimethylsiloxane (PDMS) structure as an elastic substrate, with an embedded optical fiber for light routing and force transmission. The device exhibits a system-level sensitivity of 4.5 μA/N over 0-250 mN, a response time of 80 ms, and a force resolution of 3 mN. It can achieve multi-directional force tactile sensing-including normal force (Z), tangential force (X-Y), and oblique forces (45°). Furthermore, real-time four-directional control in a Snake game is demonstrated as a proof of concept. With its integrated design and excellent repeatability, this sensor provides a promising solution for wearable electronics, gesture recognition, and interactive control.
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Multi-directional millinewton force sensing for human-computer interaction based on an optoelectronic-integrated flexible tactile device. — 科研速览 Science Skim