Microscopic insights into UiO-66@proton exchange composite membrane by molecular dynamics simulation

IF 8.1 2区 工程技术 Q1 CHEMISTRY, PHYSICAL International Journal of Hydrogen Energy Pub Date : 2024-11-30 DOI:10.1016/j.ijhydene.2024.11.404
Dongchen Shen , Zhilu Liu , Wei Li , Song Li , Zhengkai Tu
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Abstract

UiO-66 as one of the known metal-organic frameworks (MOFs) has been recognized as highly promising dopants for enhancing the proton conductivity of proton exchange membrane (PEM) owing to the large pore volume and structure tunability. Despite the numerous experimental reports on MOF-doped PEMs, their increased proton conductivity is commonly ascribed to enhanced water uptake. The underlying mechanisms from a microscopic perspective remain elusive. Therefore, this work explores the microstructure and water diffusion dynamics within composite membranes to decipher their mechanisms involved in proton conductivity using molecular dynamics (MD) simulations. Four types of composite membranes based on two representative MOFs i.e. UiO-66 and UiO-66-NH2 and two PEMs including Nafion and Dow, respectively, were taken into account. It is revealed that the UiO-66-NH2 doped Nafion composite membrane exhibits the highest water uptake among the four composite membranes resulting from the super hydrophilicity of UiO-66-NH2. Besides, the more concentrated distribution of sulfonic groups near the water-PEM interface and the higher interface roughness of UiO-66-NH2 doped Nafion lead to more water molecules surrounding its sulfonic groups that are favorable for the proton dissociation from sulfonic groups. Furthermore, the increased water channel connectivity of MOF-doped membranes that promotes proton transport through water via the Grotthuss mechanism demonstrates one of the mechanisms for increased proton conductivity. On the other hand, although the reduced lifetime of the hydrogen bond network and the enhanced water diffusion coefficient within MOF-doped membranes manifest the favorable proton transfer via the Vehicle mechanism. Overall, UiO-66-NH2 doped Nafion membranes exhibiting the highest water channel connectivity and water diffusion coefficients demonstrate the greatest potential of UiO-66-NH2 doping in advancing the proton conductivity. These findings provided microscopic insights into understanding the improved proton conductivity mechanism of MOF doped PEMs, and the approaches developed in this work may be extended to other composite membranes.
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微观洞察UiO-66@proton交换复合膜的分子动力学模拟
UiO-66作为一种已知的金属有机骨架(MOFs),由于其具有较大的孔体积和结构可调性,被认为是提高质子交换膜(PEM)质子电导率的极具前景的掺杂剂。尽管有许多关于mof掺杂的PEMs的实验报告,但它们增加的质子电导率通常归因于增强的吸水率。从微观角度来看,潜在的机制仍然难以捉摸。因此,本研究探索了复合膜内的微观结构和水扩散动力学,利用分子动力学(MD)模拟来破译它们与质子电导率有关的机制。以两种具有代表性的mof (UiO-66和UiO-66- nh2)和两种PEMs (Nafion和Dow)为基础,研究了四种复合膜。结果表明,由于UiO-66-NH2的超亲水性,UiO-66-NH2掺杂的Nafion复合膜在4种复合膜中表现出最高的吸水性。此外,UiO-66-NH2掺杂的Nafion在水- pem界面附近的磺酸基分布更集中,界面粗糙度更高,导致其磺酸基周围有更多的水分子,有利于质子与磺酸基解离。此外,mof掺杂膜的水通道连通性增加,通过Grotthuss机制促进质子在水中的传输,这证明了质子电导率增加的机制之一。另一方面,虽然mof掺杂膜内氢键网络寿命降低,水扩散系数提高,但通过Vehicle机制表现出有利的质子转移。总体而言,UiO-66-NH2掺杂的Nafion膜表现出最高的水通道连通性和水扩散系数,表明UiO-66-NH2掺杂在提高质子电导率方面具有最大的潜力。这些发现为理解MOF掺杂的PEMs改善质子电导率的机制提供了微观的见解,并且本工作中发展的方法可能扩展到其他复合膜。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Hydrogen Energy
International Journal of Hydrogen Energy 工程技术-环境科学
CiteScore
13.50
自引率
25.00%
发文量
3502
审稿时长
60 days
期刊介绍: The objective of the International Journal of Hydrogen Energy is to facilitate the exchange of new ideas, technological advancements, and research findings in the field of Hydrogen Energy among scientists and engineers worldwide. This journal showcases original research, both analytical and experimental, covering various aspects of Hydrogen Energy. These include production, storage, transmission, utilization, enabling technologies, environmental impact, economic considerations, and global perspectives on hydrogen and its carriers such as NH3, CH4, alcohols, etc. The utilization aspect encompasses various methods such as thermochemical (combustion), photochemical, electrochemical (fuel cells), and nuclear conversion of hydrogen, hydrogen isotopes, and hydrogen carriers into thermal, mechanical, and electrical energies. The applications of these energies can be found in transportation (including aerospace), industrial, commercial, and residential sectors.
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