揭示固体锂离子导体 Li3P5O14 的局部结构和动力学特性

IF 7 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Benjamin B. Duff, Lucia Corti, Bethan Turner, Guopeng Han, Luke M. Daniels, Matthew J. Rosseinsky and Frédéric Blanc*, 
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引用次数: 0

摘要

开发可用作固态电解质的快速锂离子传导材料,使其具有足够的电化学稳定性,以抵御电极材料的影响,对于全固态电池的未来至关重要。这些快速离子材料的进展取决于结构-离子迁移率-功能关系的建立。在这里,我们利用一系列多核和多维核磁共振 (NMR) 方法,包括 6Li 和 31P 魔角旋光 (MAS),结合密度泛函理论 (DFT),详细了解了超磷酸盐 Li3P5O14 的局部结构,它是一种基于氧化物的锂离子导体的候选材料,已被证明是一种高导电性、能量有利且电化学稳定的潜在固体电解质。我们结合 DFT,分别通过 31P 和 6Li MAS NMR 对超磷酸盐层和层状 Li6O1626- 链进行了综合赋值。31P 化学位移最低的 8 个共振的化学位移各向异性明显低于其余 12 个共振,这表明这些 P 位点的磷酸键性质是与其他三个磷酸基团架桥。我们采用了多种互补的 6,7Li NMR 技术,包括 MAS 变温线窄谱、自旋对齐回波 (SAE) NMR 和弛豫测定法,以量化 Li3P5O14 中的锂离子动力学。通过对扩散诱导的自旋晶格弛豫数据进行详细分析,对之前通过计算提出的三维锂扩散进行了实验验证。6Li NMR弛豫速率表明,Li1 和 Li5(唯一的五坐标 Li 位点)是移动性最强的位点,它们在 a-b 平面(层内)和 c 轴(层间)上彼此相邻。如 6Li-6Li 交换光谱核磁共振波谱所示,Li1 和 Li5 位点很可能在相邻层 Li6O1626- 链之间以及通过 P12O3612- 环的中心相互交换,从而形成三维路径。了解了高性能固体电解质中的锂离子迁移路径,就为进一步开发此类材料以提高其性能指明了方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Revealing the Local Structure and Dynamics of the Solid Li Ion Conductor Li3P5O14

Revealing the Local Structure and Dynamics of the Solid Li Ion Conductor Li3P5O14

The development of fast Li ion-conducting materials for use as solid electrolytes that provide sufficient electrochemical stability against electrode materials is paramount for the future of all-solid-state batteries. Advances on these fast ionic materials are dependent on building structure-ionic mobility-function relationships. Here, we exploit a series of multinuclear and multidimensional nuclear magnetic resonance (NMR) approaches, including 6Li and 31P magic angle spinning (MAS), in conjunction with density functional theory (DFT) to provide a detailed understanding of the local structure of the ultraphosphate Li3P5O14, a promising candidate for an oxide-based Li ion conductor that has been shown to be a highly conductive, energetically favorable, and electrochemically stable potential solid electrolyte. We have reported a comprehensive assignment of the ultraphosphate layer and layered Li6O1626– chains through 31P and 6Li MAS NMR, respectively, in conjunction with DFT. The chemical shift anisotropy of the eight resonances with the lowest 31P chemical shift is significantly lower than that of the 12 remaining resonances, suggesting the phosphate bonding nature of these P sites being one that bridges to three other phosphate groups. We employed a number of complementary 6,7Li NMR techniques, including MAS variable-temperature line narrowing spectra, spin-alignment echo (SAE) NMR, and relaxometry, to quantify the lithium ion dynamics in Li3P5O14. Detailed analysis of the diffusion-induced spin-lattice relaxation data allowed for experimental verification of the three-dimensional Li diffusion previously proposed computationally. The 6Li NMR relaxation rates suggest sites Li1 and Li5 (the only five-coordinate Li site) are the most mobile and are adjacent to one another, both in the a-b plane (intralayer) and on the c-axis (interlayer). As shown in the 6Li-6Li exchange spectroscopy NMR spectra, sites Li1 and Li5 likely exchange with one another both between adjacent layered Li6O1626– chains and through the center of the P12O3612– rings forming the three-dimensional pathway. The understanding of the Li ion mobility pathways in high-performing solid electrolytes outlines a route for further development of such materials to improve their performance.

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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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