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Palladium-Phosphide-Modified Three-Dimensional Phospho-Doped Graphene Materials for Hydrogen Storage

The development of efficient hydrogen storage materials is crucial for advancing hydrogen-based energy systems. In this study, we prepared a highly innovative palladium-phosphide-modified P-doped graphene hydrogen storage material with a three-dimensional configuration (3D Pd(3)P(0.95)/P-rGO) using...

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Autores principales: Chen, Yiwen, Habibullah, Xia, Guanghui, Jin, Chaonan, Wang, Yao, Yan, Yigang, Chen, Yungui, Gong, Xiufang, Lai, Yuqiu, Wu, Chaoling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10305715/
https://www.ncbi.nlm.nih.gov/pubmed/37374404
http://dx.doi.org/10.3390/ma16124219
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author Chen, Yiwen
Habibullah
Xia, Guanghui
Jin, Chaonan
Wang, Yao
Yan, Yigang
Chen, Yungui
Gong, Xiufang
Lai, Yuqiu
Wu, Chaoling
author_facet Chen, Yiwen
Habibullah
Xia, Guanghui
Jin, Chaonan
Wang, Yao
Yan, Yigang
Chen, Yungui
Gong, Xiufang
Lai, Yuqiu
Wu, Chaoling
author_sort Chen, Yiwen
collection PubMed
description The development of efficient hydrogen storage materials is crucial for advancing hydrogen-based energy systems. In this study, we prepared a highly innovative palladium-phosphide-modified P-doped graphene hydrogen storage material with a three-dimensional configuration (3D Pd(3)P(0.95)/P-rGO) using a hydrothermal method followed by calcination. This 3D network hindering the stacking of graphene sheets provided channels for hydrogen diffusion to improve the hydrogen adsorption kinetics. Importantly, the construction of the three-dimensional palladium-phosphide-modified P-doped graphene hydrogen storage material improved the hydrogen absorption kinetics and mass transfer process. Furthermore, while acknowledging the limitations of primitive graphene as a medium in hydrogen storage, this study addressed the need for improved graphene-based materials and highlighted the significance of our research in exploring three-dimensional configurations. The hydrogen absorption rate of the material increased obviously in the first 2 h compared with two-dimensional sheets of Pd(3)P/P-rGO. Meanwhile, the corresponding 3D Pd(3)P(0.95)/P-rGO-500 sample, which was calcinated at 500 °C, achieved the optimal hydrogen storage capacity of 3.79 wt% at 298 K/4 MPa. According to molecular dynamics, the structure was thermodynamically stable, and the calculated adsorption energy of a single H(2) molecule was −0.59 eV/H(2), which was in the ideal range of hydrogen ad/desorption. These findings pave the way for the development of efficient hydrogen storage systems and advance the progress of hydrogen-based energy technologies.
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spelling pubmed-103057152023-06-29 Palladium-Phosphide-Modified Three-Dimensional Phospho-Doped Graphene Materials for Hydrogen Storage Chen, Yiwen Habibullah Xia, Guanghui Jin, Chaonan Wang, Yao Yan, Yigang Chen, Yungui Gong, Xiufang Lai, Yuqiu Wu, Chaoling Materials (Basel) Article The development of efficient hydrogen storage materials is crucial for advancing hydrogen-based energy systems. In this study, we prepared a highly innovative palladium-phosphide-modified P-doped graphene hydrogen storage material with a three-dimensional configuration (3D Pd(3)P(0.95)/P-rGO) using a hydrothermal method followed by calcination. This 3D network hindering the stacking of graphene sheets provided channels for hydrogen diffusion to improve the hydrogen adsorption kinetics. Importantly, the construction of the three-dimensional palladium-phosphide-modified P-doped graphene hydrogen storage material improved the hydrogen absorption kinetics and mass transfer process. Furthermore, while acknowledging the limitations of primitive graphene as a medium in hydrogen storage, this study addressed the need for improved graphene-based materials and highlighted the significance of our research in exploring three-dimensional configurations. The hydrogen absorption rate of the material increased obviously in the first 2 h compared with two-dimensional sheets of Pd(3)P/P-rGO. Meanwhile, the corresponding 3D Pd(3)P(0.95)/P-rGO-500 sample, which was calcinated at 500 °C, achieved the optimal hydrogen storage capacity of 3.79 wt% at 298 K/4 MPa. According to molecular dynamics, the structure was thermodynamically stable, and the calculated adsorption energy of a single H(2) molecule was −0.59 eV/H(2), which was in the ideal range of hydrogen ad/desorption. These findings pave the way for the development of efficient hydrogen storage systems and advance the progress of hydrogen-based energy technologies. MDPI 2023-06-07 /pmc/articles/PMC10305715/ /pubmed/37374404 http://dx.doi.org/10.3390/ma16124219 Text en © 2023 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
Chen, Yiwen
Habibullah
Xia, Guanghui
Jin, Chaonan
Wang, Yao
Yan, Yigang
Chen, Yungui
Gong, Xiufang
Lai, Yuqiu
Wu, Chaoling
Palladium-Phosphide-Modified Three-Dimensional Phospho-Doped Graphene Materials for Hydrogen Storage
title Palladium-Phosphide-Modified Three-Dimensional Phospho-Doped Graphene Materials for Hydrogen Storage
title_full Palladium-Phosphide-Modified Three-Dimensional Phospho-Doped Graphene Materials for Hydrogen Storage
title_fullStr Palladium-Phosphide-Modified Three-Dimensional Phospho-Doped Graphene Materials for Hydrogen Storage
title_full_unstemmed Palladium-Phosphide-Modified Three-Dimensional Phospho-Doped Graphene Materials for Hydrogen Storage
title_short Palladium-Phosphide-Modified Three-Dimensional Phospho-Doped Graphene Materials for Hydrogen Storage
title_sort palladium-phosphide-modified three-dimensional phospho-doped graphene materials for hydrogen storage
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10305715/
https://www.ncbi.nlm.nih.gov/pubmed/37374404
http://dx.doi.org/10.3390/ma16124219
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