材料科学
信号(编程语言)
光电子学
可穿戴计算机
光子学
导电体
灵敏度(控制系统)
光电效应
可穿戴技术
弯曲
异质结
动态范围
电子皮肤
信号处理
拉伤
光电二极管
光电探测器
光子晶体
计算机科学
响应时间
纳米技术
压阻效应
电接点
声学
电容感应
频率响应
压力传感器
作者
Yangyang Yan,Zhongkui Zhang,Shaojie Yang,Zhuojun He,Ping Wang
标识
DOI:10.1021/acsami.5c18776
摘要
At present, wearable electronic devices mainly respond to a single electrical signal and lack direct visual feedback, which restricts their diverse applications in interactive human-machine interfaces. Here, we propose a bioinspired photonic-electronic synergistic sensing platform via heterostructure integration, which achieves a synergistic response of photoelectric dual signals. Sensors control the changes in electrical and optical signals by constructing a conductive network and modulating the photonic lattice spacing. Sensors can sense stress in different directions. For lateral tension, electrical and optical signals always maintain synchronous output within the strain range of 0–60%. At this time, the sensitivity of the optical signal is 1.43 nm%–1, and the sensitivity coefficient of the electrical signal is 14.16. For normal stress, sensors also exhibit good photoelectric synergy under bending strain and visualize the pressure field through the structural color gradient distribution under compressive strain. In addition, after 2000 fatigue tests, the signal still outputs stably. Based on these merits, sensors are considered simple visual interactive wearable devices for real-time monitoring of human motion. The stable dual signal response output provides a universal platform for the visual interaction of electronic devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI