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Three-Dimensional Cobalt Hydroxide Hollow Cube/Vertical Nanosheets with High Desalination Capacity and Long-Term Performance Stability in Capacitive Deionization

Faradaic electrode materials have significantly improved the performance of membrane capacitive deionization, which offers an opportunity to produce freshwater from seawater or brackish water in an energy-efficient way. However, Faradaic materials hold the drawbacks of slow desalination rate due to...

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Autores principales: Xiong, Yuecheng, Yu, Fei, Arnold, Stefanie, Wang, Lei, Presser, Volker, Ren, Yifan, Ma, Jie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8566195/
https://www.ncbi.nlm.nih.gov/pubmed/34806019
http://dx.doi.org/10.34133/2021/9754145
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author Xiong, Yuecheng
Yu, Fei
Arnold, Stefanie
Wang, Lei
Presser, Volker
Ren, Yifan
Ma, Jie
author_facet Xiong, Yuecheng
Yu, Fei
Arnold, Stefanie
Wang, Lei
Presser, Volker
Ren, Yifan
Ma, Jie
author_sort Xiong, Yuecheng
collection PubMed
description Faradaic electrode materials have significantly improved the performance of membrane capacitive deionization, which offers an opportunity to produce freshwater from seawater or brackish water in an energy-efficient way. However, Faradaic materials hold the drawbacks of slow desalination rate due to the intrinsic low ion diffusion kinetics and inferior stability arising from the volume expansion during ion intercalation, impeding the engineering application of capacitive deionization. Herein, a pseudocapacitive material with hollow architecture was prepared via template-etching method, namely, cuboid cobalt hydroxide, with fast desalination rate (3.3 mg (NaCl)·g(−1) (h-Co(OH)(2))·min(−1) at 100 mA·g(−1)) and outstanding stability (90% capacity retention after 100 cycles). The hollow structure enables swift ion transport inside the material and keeps the electrode intact by alleviating the stress induced from volume expansion during the ion capture process, which is corroborated well by in situ electrochemical dilatometry and finite element simulation. Additionally, benefiting from the elimination of unreacted bulk material and vertical cobalt hydroxide nanosheets on the exterior surface, the synthesized material provides a high desalination capacity (117 ± 6 mg (NaCl)·g(−1) (h-Co(OH)(2)) at 30 mA·g(−1)). This work provides a new strategy, constructing microscale hollow faradic configuration, to further boost the desalination performance of Faradaic materials.
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spelling pubmed-85661952021-11-18 Three-Dimensional Cobalt Hydroxide Hollow Cube/Vertical Nanosheets with High Desalination Capacity and Long-Term Performance Stability in Capacitive Deionization Xiong, Yuecheng Yu, Fei Arnold, Stefanie Wang, Lei Presser, Volker Ren, Yifan Ma, Jie Research (Wash D C) Research Article Faradaic electrode materials have significantly improved the performance of membrane capacitive deionization, which offers an opportunity to produce freshwater from seawater or brackish water in an energy-efficient way. However, Faradaic materials hold the drawbacks of slow desalination rate due to the intrinsic low ion diffusion kinetics and inferior stability arising from the volume expansion during ion intercalation, impeding the engineering application of capacitive deionization. Herein, a pseudocapacitive material with hollow architecture was prepared via template-etching method, namely, cuboid cobalt hydroxide, with fast desalination rate (3.3 mg (NaCl)·g(−1) (h-Co(OH)(2))·min(−1) at 100 mA·g(−1)) and outstanding stability (90% capacity retention after 100 cycles). The hollow structure enables swift ion transport inside the material and keeps the electrode intact by alleviating the stress induced from volume expansion during the ion capture process, which is corroborated well by in situ electrochemical dilatometry and finite element simulation. Additionally, benefiting from the elimination of unreacted bulk material and vertical cobalt hydroxide nanosheets on the exterior surface, the synthesized material provides a high desalination capacity (117 ± 6 mg (NaCl)·g(−1) (h-Co(OH)(2)) at 30 mA·g(−1)). This work provides a new strategy, constructing microscale hollow faradic configuration, to further boost the desalination performance of Faradaic materials. AAAS 2021-10-26 /pmc/articles/PMC8566195/ /pubmed/34806019 http://dx.doi.org/10.34133/2021/9754145 Text en Copyright © 2021 Yuecheng Xiong et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Xiong, Yuecheng
Yu, Fei
Arnold, Stefanie
Wang, Lei
Presser, Volker
Ren, Yifan
Ma, Jie
Three-Dimensional Cobalt Hydroxide Hollow Cube/Vertical Nanosheets with High Desalination Capacity and Long-Term Performance Stability in Capacitive Deionization
title Three-Dimensional Cobalt Hydroxide Hollow Cube/Vertical Nanosheets with High Desalination Capacity and Long-Term Performance Stability in Capacitive Deionization
title_full Three-Dimensional Cobalt Hydroxide Hollow Cube/Vertical Nanosheets with High Desalination Capacity and Long-Term Performance Stability in Capacitive Deionization
title_fullStr Three-Dimensional Cobalt Hydroxide Hollow Cube/Vertical Nanosheets with High Desalination Capacity and Long-Term Performance Stability in Capacitive Deionization
title_full_unstemmed Three-Dimensional Cobalt Hydroxide Hollow Cube/Vertical Nanosheets with High Desalination Capacity and Long-Term Performance Stability in Capacitive Deionization
title_short Three-Dimensional Cobalt Hydroxide Hollow Cube/Vertical Nanosheets with High Desalination Capacity and Long-Term Performance Stability in Capacitive Deionization
title_sort three-dimensional cobalt hydroxide hollow cube/vertical nanosheets with high desalination capacity and long-term performance stability in capacitive deionization
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8566195/
https://www.ncbi.nlm.nih.gov/pubmed/34806019
http://dx.doi.org/10.34133/2021/9754145
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