Liu Mengmeng, Guo Hongchen, Tan Yu Jun, Yu Kelu, Guan Qiye, Zamburg Evgeny, Cheng Wen, Wang Xinyu, Zhou Lili, Chen Haiming, Jin Yunxia, Cheng Xu, Liang Fang-Cheng, Tang Baoshan, Ali Hashina Parveen Anwar, Yang Jingyi, He Chaobin, Cai Yongqing, Thean Aaron Voon-Yew, Wang Zhong Lin, Tee Benjamin C K
Department of Materials Science and Engineering (MSE), National University of Singapore, Singapore, Singapore.
Institute for Health Innovation & Technology (iHealthtech), National University of Singapore, Singapore, Singapore.
Nat Commun. 2025 Jul 1;16(1):5524. doi: 10.1038/s41467-025-59973-y.
Developing a sustainable, in-situ responsive sensing method for continuously monitoring water quality is crucial for water use and quality management globally. Conventional water quality monitoring sensors face challenges in achieving ultrafast response time and are non-recyclable. We present a self-assembly approach for a closed-loop recyclable, autonomous self-healing and transparent dielectric material with nanostructured amphiphobic surfaces (termed 'ReSURF'). Our approach uses tribo-negative small molecules that spontaneously secrete onto the surface of the fluorine dielectric matrix via biomimetic microphase separation within minutes. ReSURF devices achieve millisecond water quality sensing response time (6 ms), high signal-to-noise ratio (30.7 dB) and can withstand large mechanical deformations (>760%, maximum of 1000% strain). We show ReSURF can be readily closed-loop recycled for reuse, underscoring its versatility. We further demonstrated its use in a soft stretchable fish-like robot for real-time water contamination (including perfluorooctanoic acid, a member of per- and polyfluoroalkyl substances (PFAS) and oily pollutants) assessments.
开发一种可持续的原位响应传感方法以持续监测水质,对于全球水资源利用和质量管理至关重要。传统水质监测传感器在实现超快响应时间方面面临挑战,且不可回收。我们提出了一种自组装方法,用于制备具有纳米结构两性疏水表面的闭环可回收、自主自修复且透明的介电材料(称为“ReSURF”)。我们的方法使用摩擦带负电的小分子,这些小分子通过仿生微相分离在几分钟内自发分泌到氟介电基质表面。ReSURF设备实现了毫秒级水质传感响应时间(约6毫秒)、高信噪比(约30.7分贝),并且能够承受较大的机械变形(>760%,最大应变1000%)。我们表明ReSURF可以很容易地进行闭环回收再利用,凸显了其多功能性。我们进一步展示了它在软可拉伸鱼形机器人中用于实时水污染(包括全氟辛酸,一种全氟和多氟烷基物质(PFAS)成员以及油性污染物)评估的应用。