Fully Reversible and Super-Fast Photo-Induced Morphological Transformation of Nanofilms for High-Performance UV Detection and Light-Driven Actuators
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
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Detail(s)
Original language | English |
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Article number | 2307165 |
Journal / Publication | Advanced Science |
Volume | 11 |
Issue number | 12 |
Online published | 15 Jan 2024 |
Publication status | Published - 27 Mar 2024 |
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DOI | DOI |
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Link to Scopus | https://www.scopus.com/record/display.uri?eid=2-s2.0-85182468833&origin=recordpage |
Permanent Link | https://scholars.cityu.edu.hk/en/publications/publication(2cb1afae-be1c-4f76-9166-79315977617c).html |
Abstract
Flexible and highly ultraviolet (UV) sensitive materials garner considerable attention in wearable devices, adaptive sensors, and light-driven actuators. Herein, a type of nanofilms with unprecedented fully reversible UV responsiveness are successfully constructed. Building upon this discovery, a new system for ultra-fast, sensitive, and reliable UV detection is developed. The system operates by monitoring the displacement of photoinduced macroscopic motions of the nanofilms based composite membranes. The system exhibits exceptional responsiveness to UV light at 375 nm, achieving remarkable response and recovery times of < 0.3 s. Furthermore, it boasts a wide detection range from 2.85 µW cm−2 to 8.30 mW cm−2, along with robust durability. Qualitative UV sensing is accomplished by observing the shape changes of the composite membranes. Moreover, the composite membrane can serve as sunlight-responsive actuators for artificial flowers and smart switches in practical scenarios. The photo-induced motion is ascribed to the cis–trans isomerization of the acylhydrazone bonds, and the rapid and fully reversible shape transformation is supposed to be a synergistic result of the instability of the cis-isomers acylhydrazone bonds and the rebounding property of the networked nanofilms. These findings present a novel strategy for both quantitative and qualitative UV detection. © 2024 The Authors. Advanced Science published by Wiley-VCH GmbH.
Research Area(s)
- cis–trans isomerization, dynamic condensation, nanofilms, photo-induced motion, UV detection
Citation Format(s)
Fully Reversible and Super-Fast Photo-Induced Morphological Transformation of Nanofilms for High-Performance UV Detection and Light-Driven Actuators. / Liu, Xiangquan; Hu, Jiahui; Yang, Jinglun et al.
In: Advanced Science, Vol. 11, No. 12, 2307165, 27.03.2024.
In: Advanced Science, Vol. 11, No. 12, 2307165, 27.03.2024.
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
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