全钒氧化还原液流电池电化学电池设计的分子动力学模拟

Anant Babu Marahatta
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摘要

钒氧化还原液流电池(VRFB)由于具有良好的电化学储能能力,成为电网连接中最有潜力的候选电池,是可再生能源领域公认的最新技术。尽管“全钒”氧化还原电偶作为最有前景的电解质材料的独特之处,以及其明显的技术功能化,但集中于其在理想状态和不同电荷状态下电池内部运行机制的研究工作仍处于初级阶段。基于MD模拟的理论洞见,旨在揭示纳米尺度下Nafion-117型质子交换膜周围界面微观结构的基准定量信息,相邻态裸Vn+离子的强烈水合亲和性,以及H2O、h30 +和Nafion-SO3-等的紧密亲和性,将为其技术进步奠定基础。本文给出的一般结果表明,在水合氢离子(h30 +)、Eigen (H5O2+)和Zundel (H9O3+)状态下,含有H2O分子和质子的vrlb -电解质以与纯体积水系统相同的模式分布,并动态耗尽以表现出易质子传导。此外,本文预测的naion -117在含水量(l) = 22时SO3-单元的显著偏离证实了它在它们之间容易容纳H2O、h30o +和Vn+的实验观察特征;阐明其在潮湿条件下非典型质子电导率和离子迁移率背后的原因。基于MD轨迹的径向分布函数(RDF)预测了Vn+- OH2的径向距离,验证了之前基于DFT的量子力学方法所建立的裸相邻Vn+离子的极端水化亲和力及其与自由H2O分子的稳定倾向。
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Molecular Dynamics Simulation of the Electrochemical Cell Design for All- vanadium Redox Flow Battery
Being the most potential battery candidate for the electrical grids connections due to having promising electrochemical energy storing abilities, vanadium redox flow battery (VRFB) is widely recognized state-of-the-art technology in renewable energy sectors. Despite its uniqueness of utilizing "all-vanadium" redox couples as the most prospective electrolyte materials, and their conspicuous technological functionalizations, the research works concentrated into its internal operational mechanisms of the cell at both ideal & different state-of-charges are still in the primitive stage. This MD simulation based theoretical insights aiming at revealing benchmark quantitative information on the interfacial micro structures around its Nafion-117 type proton exchange membrane, the intense hydration affinities of its adjacent state bare Vn+ ions, and the closed proximity around the H2O, H3O+, & Nafion-SO3-, etc. at nanometer scale would be a stepping-stone to its technological advancement. The general results presented here illuminate that the VRFB-electrolyte hosting H2O molecules and protons in Hydronium (H3O+), Eigen (H5O2+), & Zundel (H9O3+) states are distributed in a pattern identical to that in a purely bulk water system, and are dynamically used up for exhibiting facile proton conduction. Besides this, the significant departures of the SO3- units of the Nafion-117 at water content (l) = 22 predicted herein confirms its experimentally observed feature of easy accommodating H2O, H3O+, & Vn+ in between them; elucidating the reasons behind its atypical proton conductivity & ionic mobility rates under wet conditions. The MD trajectories based radial distribution function (RDF) predicted Vn+- OH2 radial distances validate the extreme hydration affinities of the bare adjacent Vn+ ions plus their stabilizing propensities with free H2O molecules as established earlier by the DFT based quantum mechanical method. 
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