Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures

Thermochromic hydrogels exhibit a smart capacity for regulating solar spectrum transmission, enabling automatically change their transmissivity in response to the ambient temperature change. This has great importance for energy conservation purposes. Military and civilian emergency thermochromic app...

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Main Authors: Liang, Huaxu, Zhang, Xinping, Wang, Fuqiang, Li, Chunzhe, Yuan, Weizhe, Meng, Weifeng, Cheng, Ziming, Dong, Yan, Shi, Xuhang, Yan, Yuying, Yi, Hongliang, Shuai, Yong, Long, Yi
Other Authors: School of Materials Science and Engineering
Format: Article
Language:English
Published: 2024
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Online Access:https://hdl.handle.net/10356/181329
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1813292024-11-26T00:38:01Z Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures Liang, Huaxu Zhang, Xinping Wang, Fuqiang Li, Chunzhe Yuan, Weizhe Meng, Weifeng Cheng, Ziming Dong, Yan Shi, Xuhang Yan, Yuying Yi, Hongliang Shuai, Yong Long, Yi School of Materials Science and Engineering Engineering Ambient temperature change Micropatterned Thermochromic hydrogels exhibit a smart capacity for regulating solar spectrum transmission, enabling automatically change their transmissivity in response to the ambient temperature change. This has great importance for energy conservation purposes. Military and civilian emergency thermochromic applications require rapid visible-light stealth (VLS); however, concurrent smart solar transmission and rapid VLS is yet to be realized. Inspired by squid-skin, we propose a micropatterned thermochromic hydrogel (MTH) to realize the concurrent control of smart solar transmittance and rapid VLS at all-working temperatures. The MTH possesses two optical regulation mechanisms: optical property regulation and optical scattering, controlled by temperature and pressure, respectively. The introduced surface micropattern strategy can arbitrarily switch between normal and diffuse transmission, and the VLS response time is within 1 s compared with previous ~180 s. The MTH also has a high solar-transmission regulation range of 61%. Further, the MTH preparation method is scalable and cost-effective. This novel regulation mechanism opens a new pathway towards applications with multifunctional optical requirements. Published version National Natural Science Foundation of China (grant 52076064 and 52211530089 to F. W.). The Royal Society under (grant IEC\NSFC\211210 to Y. Y.). Global STEM Professorship Scheme sponsored by the Government of Hong Kong Special Administrative Region, China (to Y. L.). The Fundamental Research Funds for the Central Universities (HIT.DZJJ.2023095 to X. Z.). 2024-11-26T00:38:01Z 2024-11-26T00:38:01Z 2024 Journal Article Liang, H., Zhang, X., Wang, F., Li, C., Yuan, W., Meng, W., Cheng, Z., Dong, Y., Shi, X., Yan, Y., Yi, H., Shuai, Y. & Long, Y. (2024). Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures. Light, Science & Applications, 13(1), 202-. https://dx.doi.org/10.1038/s41377-024-01525-y 2047-7538 https://hdl.handle.net/10356/181329 10.1038/s41377-024-01525-y 39168994 2-s2.0-85201580587 1 13 202 en Light, Science & Applications © 2024 The Author(s). Open Access. This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering
Ambient temperature change
Micropatterned
spellingShingle Engineering
Ambient temperature change
Micropatterned
Liang, Huaxu
Zhang, Xinping
Wang, Fuqiang
Li, Chunzhe
Yuan, Weizhe
Meng, Weifeng
Cheng, Ziming
Dong, Yan
Shi, Xuhang
Yan, Yuying
Yi, Hongliang
Shuai, Yong
Long, Yi
Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures
description Thermochromic hydrogels exhibit a smart capacity for regulating solar spectrum transmission, enabling automatically change their transmissivity in response to the ambient temperature change. This has great importance for energy conservation purposes. Military and civilian emergency thermochromic applications require rapid visible-light stealth (VLS); however, concurrent smart solar transmission and rapid VLS is yet to be realized. Inspired by squid-skin, we propose a micropatterned thermochromic hydrogel (MTH) to realize the concurrent control of smart solar transmittance and rapid VLS at all-working temperatures. The MTH possesses two optical regulation mechanisms: optical property regulation and optical scattering, controlled by temperature and pressure, respectively. The introduced surface micropattern strategy can arbitrarily switch between normal and diffuse transmission, and the VLS response time is within 1 s compared with previous ~180 s. The MTH also has a high solar-transmission regulation range of 61%. Further, the MTH preparation method is scalable and cost-effective. This novel regulation mechanism opens a new pathway towards applications with multifunctional optical requirements.
author2 School of Materials Science and Engineering
author_facet School of Materials Science and Engineering
Liang, Huaxu
Zhang, Xinping
Wang, Fuqiang
Li, Chunzhe
Yuan, Weizhe
Meng, Weifeng
Cheng, Ziming
Dong, Yan
Shi, Xuhang
Yan, Yuying
Yi, Hongliang
Shuai, Yong
Long, Yi
format Article
author Liang, Huaxu
Zhang, Xinping
Wang, Fuqiang
Li, Chunzhe
Yuan, Weizhe
Meng, Weifeng
Cheng, Ziming
Dong, Yan
Shi, Xuhang
Yan, Yuying
Yi, Hongliang
Shuai, Yong
Long, Yi
author_sort Liang, Huaxu
title Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures
title_short Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures
title_full Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures
title_fullStr Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures
title_full_unstemmed Bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures
title_sort bio-inspired micropatterned thermochromic hydrogel for concurrent smart solar transmission and rapid visible-light stealth at all-working temperatures
publishDate 2024
url https://hdl.handle.net/10356/181329
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