机械容积
弹性体
聚二甲基硅氧烷
材料科学
紫外线
光电子学
光子学
荧光粉
光学材料
光子
能量转移
复合材料
光发射
聚合物
纳米技术
复合数
光强度
光学
紫外线
发光
强度(物理)
紫外线
化学发光
发射强度
弹性聚硅酮类
作者
Xulong Lv,Tianyi Duan,Shaofan Fang,Zhaofeng Wang,Dongxun Chen,Lipeng Huang,Huanyu Liu,Zheming Liu,Chao Liu,Xiao-Jun Wang,Yanjie Liang
标识
DOI:10.1038/s41377-025-02131-2
摘要
Abstract Flexible mechanoluminescence (ML) elastomers show significant potential for next-generation wearable electronics, artificial skin, advanced sensing, and human-machine interaction. However, their broader application has been hindered by challenges such as restricted emission wavelengths, inadequate repeatability, insufficient cyclic stability, and poor self-recovery. Here, we report an innovative and high-performance solar-blind ultraviolet ML elastomer by combining commercial polydimethylsiloxane (PDMS) and newly fabricated Sr 3 (BO 3 ) 2 :Pr 3+ phosphors, capable of generating intense ultraviolet-C (UVC) ML peaked at 272 nm under mechanical stimulation. The composite elastomer exhibits exceptional repeatability and cyclic stability, maintaining detectable UVC emission over 10,000 continuous stretching cycles (power intensity at the 1st cycle is ~6.2 mW m −2 ). It also demonstrates rapid and efficient self-recovery behavior, restoring 43.2% of its initial intensity within 1 s and 90.2% after 24 h. Combined experimental and theoretical analyses reveal that interfacial triboelectrification, involving electron transfer from the phosphor to the PDMS matrix, leads to the observed UVC ML emission. Leveraging the solar-blind nature and high photon energy of UVC light, we further demonstrate the feasibility of self-powered photonics applications. This work not only offers novel insights into the design of advanced UVC ML systems but also provides “power-free” solutions for important applications where UVC photons are essential, such as outdoor optical tagging and microbial sterilization.
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