Structure–Activity Relationships in Ether-Functionalized Solid-State Metal–Organic Framework Electrolytes

IF 7.2 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Anthony U. Mu, Vibhu Vardhan Singh, Hyunyong Kim, Dong Ju Lee, Namseo Kim, Christian X. Ruff, Aaron Levy, Thomas A. Young, Francesco Paesani, Seth M. Cohen*, Tod A. Pascal* and Zheng Chen*, 
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Abstract

The structure–property relationships of metal–organic framework (MOF)-based solid-state electrolytes are not well understood. Herein, a systematic investigation of 12 Zr(IV)-based UiO-66 MOFs with varying ether-chain functional groups was carried out to elucidate the critical microscopic interactions that facilitate improved solid-state electrolyte performance. Enhanced sampling molecular dynamics (MD) simulations were employed and revealed a three-tier ion hopping mechanism: linker–linker hopping, linker-counterion hopping, and counterion-counterion hopping. Detailed structural analysis of the MD trajectories revealed that the chemistry and morphology of the linker groups affect the relative stability and population distribution of the electrolyte components, such that crown-ether-based linker groups enhance the probability of extended, low-barrier ion percolation pathways. As a result, we were able to tune the ionic conductivities by rationally manipulating the counterion distributions, linker binding strengths, and the configurational entropy (multivariability of the linkers). The resulting performance of these MOF-based solid-state electrolytes was significantly enhanced, with a methoxy-functionalized framework (UiO-66-L1100) achieving high ionic conductivities of 2.32 × 10–4 S/cm and 2.07 × 10–3 S/cm at 30 °C and 90 °C, respectively, an order of magnitude greater than other all-solid-state MOF electrolyte systems. The electrolyte stability was evaluated with LiIn|LPSCl|MOF:LiTFSI|LPSCl|LiIn symmetric cells, showing excellent Li plating/stripping processes for over 2 months.

Abstract Image

醚功能化固态金属-有机骨架电解质的构效关系
人们对基于金属有机框架(MOF)的固态电解质的结构-性能关系了解不多。在此,我们对 12 种具有不同醚链官能团的 Zr(IV)UiO-66 MOFs 进行了系统研究,以阐明有助于改善固态电解质性能的关键微观相互作用。研究采用了增强采样分子动力学(MD)模拟,发现了三层离子跳跃机制:连接体-连接体跳跃、连接体-反离子跳跃和反离子-反离子跳跃。对 MD 轨迹进行的详细结构分析表明,连接基团的化学性质和形态会影响电解质成分的相对稳定性和种群分布,因此冠醚基连接基团会提高延伸、低阻隔离子渗流路径的概率。因此,我们能够通过合理操纵反离子分布、连接体结合强度和构型熵(连接体的多变量)来调节离子电导率。这些基于 MOF 的固态电解质的性能得到了显著提高,其中甲氧基官能化框架(UiO-66-L1100)在 30 °C 和 90 °C 时的离子电导率分别高达 2.32 × 10-4 S/cm 和 2.07 × 10-3 S/cm,比其他全固态 MOF 电解质系统高出一个数量级。用 LiIn|LPSCl|MOF:LiTFSI|LPSCl|LiIn 对称电池对电解质的稳定性进行了评估,结果表明在两个多月的时间里,锂的电镀/剥离过程非常出色。
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来源期刊
Chemistry of Materials
Chemistry of Materials 工程技术-材料科学:综合
CiteScore
14.10
自引率
5.80%
发文量
929
审稿时长
1.5 months
期刊介绍: The journal Chemistry of Materials focuses on publishing original research at the intersection of materials science and chemistry. The studies published in the journal involve chemistry as a prominent component and explore topics such as the design, synthesis, characterization, processing, understanding, and application of functional or potentially functional materials. The journal covers various areas of interest, including inorganic and organic solid-state chemistry, nanomaterials, biomaterials, thin films and polymers, and composite/hybrid materials. The journal particularly seeks papers that highlight the creation or development of innovative materials with novel optical, electrical, magnetic, catalytic, or mechanical properties. It is essential that manuscripts on these topics have a primary focus on the chemistry of materials and represent a significant advancement compared to prior research. Before external reviews are sought, submitted manuscripts undergo a review process by a minimum of two editors to ensure their appropriateness for the journal and the presence of sufficient evidence of a significant advance that will be of broad interest to the materials chemistry community.
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