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Crystalline Hydrate Dehydration Sensing Based on Integrated Terahertz Whispering Gallery Mode Resonators

Water molecules play a very important role in the hydration and dehydration process of hydrates, which may lead to distinct physical and chemical properties, affecting their availability in practical applications. However, miniaturized, integrated sensors capable of the rapid, sensitive sensing of w...

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Autores principales: Hou, Zhibo, Yuan, Shixing, Deng, Wentao, Cai, Jiahua, Qiu, Yaqin, Zhao, Yunong, Wang, Ziwei, Chen, Liao, Liu, Huan, Wu, Xiaojun, Zhang, Xinliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736564/
https://www.ncbi.nlm.nih.gov/pubmed/36501818
http://dx.doi.org/10.3390/s22239116
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author Hou, Zhibo
Yuan, Shixing
Deng, Wentao
Cai, Jiahua
Qiu, Yaqin
Zhao, Yunong
Wang, Ziwei
Chen, Liao
Liu, Huan
Wu, Xiaojun
Zhang, Xinliang
author_facet Hou, Zhibo
Yuan, Shixing
Deng, Wentao
Cai, Jiahua
Qiu, Yaqin
Zhao, Yunong
Wang, Ziwei
Chen, Liao
Liu, Huan
Wu, Xiaojun
Zhang, Xinliang
author_sort Hou, Zhibo
collection PubMed
description Water molecules play a very important role in the hydration and dehydration process of hydrates, which may lead to distinct physical and chemical properties, affecting their availability in practical applications. However, miniaturized, integrated sensors capable of the rapid, sensitive sensing of water molecules in the hydrate are still lacking, limiting their proliferation. Here, we realize the high-sensitivity sensing of water molecules in copper sulfate pentahydrate (CuSO(4)·5H(2)O), based on an on-chip terahertz whispering gallery mode resonator (THz-WGMR) fabricated on silicon material via CMOS-compatible technologies. An integrated THz-WGMR with a high-Q factor of 3305 and a resonance frequency of 410.497 GHz was proposed and fabricated. Then, the sensor was employed to distinguish the CuSO(4)·xH(2)O (x = 5, 3, 1). The static characterization from the CuSO(4)·5H(2)O to the copper sulfate trihydrate (CuSO(4)·3H(2)O) experienced blueshifts of 0.55 GHz/μmol, whereas the dehydration process of CuSO(4)·3H(2)O to copper sulfate monohydrate (CuSO(4)·H(2)O) exhibited blueshifts of 0.21 GHz/μmol. Finally, the dynamic dehydration processes of CuSO(4)·5H(2)O to CuSO(4)·3H(2)O at different temperatures were monitored. We believe that our proposed THz-WGMR sensors with highly sensitive substance identification capabilities can provide a versatile and integrated platform for studying the transformation between substances, contributing to hydrated/crystal water-assisted biochemical applications.
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spelling pubmed-97365642022-12-11 Crystalline Hydrate Dehydration Sensing Based on Integrated Terahertz Whispering Gallery Mode Resonators Hou, Zhibo Yuan, Shixing Deng, Wentao Cai, Jiahua Qiu, Yaqin Zhao, Yunong Wang, Ziwei Chen, Liao Liu, Huan Wu, Xiaojun Zhang, Xinliang Sensors (Basel) Article Water molecules play a very important role in the hydration and dehydration process of hydrates, which may lead to distinct physical and chemical properties, affecting their availability in practical applications. However, miniaturized, integrated sensors capable of the rapid, sensitive sensing of water molecules in the hydrate are still lacking, limiting their proliferation. Here, we realize the high-sensitivity sensing of water molecules in copper sulfate pentahydrate (CuSO(4)·5H(2)O), based on an on-chip terahertz whispering gallery mode resonator (THz-WGMR) fabricated on silicon material via CMOS-compatible technologies. An integrated THz-WGMR with a high-Q factor of 3305 and a resonance frequency of 410.497 GHz was proposed and fabricated. Then, the sensor was employed to distinguish the CuSO(4)·xH(2)O (x = 5, 3, 1). The static characterization from the CuSO(4)·5H(2)O to the copper sulfate trihydrate (CuSO(4)·3H(2)O) experienced blueshifts of 0.55 GHz/μmol, whereas the dehydration process of CuSO(4)·3H(2)O to copper sulfate monohydrate (CuSO(4)·H(2)O) exhibited blueshifts of 0.21 GHz/μmol. Finally, the dynamic dehydration processes of CuSO(4)·5H(2)O to CuSO(4)·3H(2)O at different temperatures were monitored. We believe that our proposed THz-WGMR sensors with highly sensitive substance identification capabilities can provide a versatile and integrated platform for studying the transformation between substances, contributing to hydrated/crystal water-assisted biochemical applications. MDPI 2022-11-24 /pmc/articles/PMC9736564/ /pubmed/36501818 http://dx.doi.org/10.3390/s22239116 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hou, Zhibo
Yuan, Shixing
Deng, Wentao
Cai, Jiahua
Qiu, Yaqin
Zhao, Yunong
Wang, Ziwei
Chen, Liao
Liu, Huan
Wu, Xiaojun
Zhang, Xinliang
Crystalline Hydrate Dehydration Sensing Based on Integrated Terahertz Whispering Gallery Mode Resonators
title Crystalline Hydrate Dehydration Sensing Based on Integrated Terahertz Whispering Gallery Mode Resonators
title_full Crystalline Hydrate Dehydration Sensing Based on Integrated Terahertz Whispering Gallery Mode Resonators
title_fullStr Crystalline Hydrate Dehydration Sensing Based on Integrated Terahertz Whispering Gallery Mode Resonators
title_full_unstemmed Crystalline Hydrate Dehydration Sensing Based on Integrated Terahertz Whispering Gallery Mode Resonators
title_short Crystalline Hydrate Dehydration Sensing Based on Integrated Terahertz Whispering Gallery Mode Resonators
title_sort crystalline hydrate dehydration sensing based on integrated terahertz whispering gallery mode resonators
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736564/
https://www.ncbi.nlm.nih.gov/pubmed/36501818
http://dx.doi.org/10.3390/s22239116
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