材料科学
丝带
灵敏度(控制系统)
振动
二硫化钼
可穿戴计算机
纳米技术
可穿戴技术
光电子学
弹性体
计算机科学
嵌入
结构健康监测
神经形态工程学
热的
微电子机械系统
弯曲
声学
调制(音乐)
电阻式触摸屏
路径(计算)
物联网
压阻效应
动态范围
作者
Chengyi Xu,Xufan Li,Lukas Michalek,Jaeho Park,Eunyoung Kim,Zhiyu Zhang,Raymond R. Unocic,Eric T. Zhao,Wei‐Chun Hsu,Baiyu Shi,Shuang Wu,Yang Yang,Avetik R. Harutyunyan,Zhenan Bao
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-03-20
卷期号:12 (12): eaeb6733-eaeb6733
标识
DOI:10.1126/sciadv.aeb6733
摘要
The rapid progress of artificial intelligence (AI) and the internet of things (IoT) has driven growing demand for high-performance, skin-compatible vibration sensors capable of capturing subtle physiological and environmental signals. Low-dimensional materials offer unique advantages in sensitivity and flexibility, yet challenges remain in achieving high strain responsiveness, mechanical robustness, and large-area uniformity. Here, we report an ultrasensitive, low-profile, and stretchable vibration sensor based on large-area single-layer molybdenum disulfide (MoS 2 ) ribbon networks (SLRNs) grown via a vapor-liquid-solid mechanism. Embedding SLRNs within a thermoplastic elastomer [styrene-ethylene-butylene-styrene (SEBS)] yields record-high sensitivity among MoS 2 -based sensors, with gauge factors up to 5300 at <1.6% strain. This response arises from nanocrack-mediated electron transport induced by the thermal expansion mismatch between MoS 2 and SEBS. The ~6-micrometer-thick sensors detect vibrations and acoustic signals over a wide frequency range (>500 hertz), enabling deconvolution of complex stimuli. This work establishes a path toward ultrathin, ultrasensitive wearable sensors for health care and robotic applications.
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