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pH-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion

Bioinspired nanochannels whose functions are similar to those of the biological prototypes attract increasing attention due to their potential applications in signal transmission, mass transport, energy conversion, etc. Up to now, however, it is still a challenge to extract low-grade waste heat from...

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Autores principales: Zhao, Xiaolu, Li, Long, Xie, Wenyuan, Qian, Yongchao, Chen, Weipeng, Niu, Bo, Chen, Jianjun, Kong, Xiang-yu, Jiang, Lei, Wen, Liping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419229/
https://www.ncbi.nlm.nih.gov/pubmed/36132795
http://dx.doi.org/10.1039/d0na00429d
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author Zhao, Xiaolu
Li, Long
Xie, Wenyuan
Qian, Yongchao
Chen, Weipeng
Niu, Bo
Chen, Jianjun
Kong, Xiang-yu
Jiang, Lei
Wen, Liping
author_facet Zhao, Xiaolu
Li, Long
Xie, Wenyuan
Qian, Yongchao
Chen, Weipeng
Niu, Bo
Chen, Jianjun
Kong, Xiang-yu
Jiang, Lei
Wen, Liping
author_sort Zhao, Xiaolu
collection PubMed
description Bioinspired nanochannels whose functions are similar to those of the biological prototypes attract increasing attention due to their potential applications in signal transmission, mass transport, energy conversion, etc. Up to now, however, it is still a challenge to extract low-grade waste heat from the ambient environment in an aqueous solution. Herein, a thermo-driven nanofluidic system was developed to extract low-grade waste heat efficiently based on directed ionic transport at a micro-/nanoscale. A steady streaming current increases linearly with the temperature gradient, achieving as high as 14 nA at a temperature gradient of 47.5 °C (δT = 47.5 °C) through a 0.5 cm(2) porous membrane (10(6) cm(−2)). And an unexpected theoretical power of 25.48 pW using a single nanochannel at a temperature difference of 40 °C has been achieved. This bioinspired multifunctional system broadens thermal energy recovery and will accelerate the evolution of nanoconfined mass transport for practical applications.
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spelling pubmed-94192292022-09-20 pH-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion Zhao, Xiaolu Li, Long Xie, Wenyuan Qian, Yongchao Chen, Weipeng Niu, Bo Chen, Jianjun Kong, Xiang-yu Jiang, Lei Wen, Liping Nanoscale Adv Chemistry Bioinspired nanochannels whose functions are similar to those of the biological prototypes attract increasing attention due to their potential applications in signal transmission, mass transport, energy conversion, etc. Up to now, however, it is still a challenge to extract low-grade waste heat from the ambient environment in an aqueous solution. Herein, a thermo-driven nanofluidic system was developed to extract low-grade waste heat efficiently based on directed ionic transport at a micro-/nanoscale. A steady streaming current increases linearly with the temperature gradient, achieving as high as 14 nA at a temperature gradient of 47.5 °C (δT = 47.5 °C) through a 0.5 cm(2) porous membrane (10(6) cm(−2)). And an unexpected theoretical power of 25.48 pW using a single nanochannel at a temperature difference of 40 °C has been achieved. This bioinspired multifunctional system broadens thermal energy recovery and will accelerate the evolution of nanoconfined mass transport for practical applications. RSC 2020-07-17 /pmc/articles/PMC9419229/ /pubmed/36132795 http://dx.doi.org/10.1039/d0na00429d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhao, Xiaolu
Li, Long
Xie, Wenyuan
Qian, Yongchao
Chen, Weipeng
Niu, Bo
Chen, Jianjun
Kong, Xiang-yu
Jiang, Lei
Wen, Liping
pH-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion
title pH-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion
title_full pH-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion
title_fullStr pH-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion
title_full_unstemmed pH-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion
title_short pH-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion
title_sort ph-regulated thermo-driven nanofluidics for nanoconfined mass transport and energy conversion
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419229/
https://www.ncbi.nlm.nih.gov/pubmed/36132795
http://dx.doi.org/10.1039/d0na00429d
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