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熵驱动超快离子传导通过在共价有机框架的有序纳米通道中限制有机塑料晶体。

Entropy-Driven Ultrafast Ion Conduction Via Confining Organic Plastic Crystals in Ordered Nanochannels of Covalent Organic Frameworks.

机构信息

Institute of Crystalline Materials, Shanxi University, Wucheng Rd, No 92, Taiyuan, 030006, China.

出版信息

Small. 2023 Apr;19(17):e2207831. doi: 10.1002/smll.202207831. Epub 2023 Jan 20.

Abstract

Low conductivity over a wide temperature region due to ultra-slow ion migration dynamics is a key issue in the field of solid-state electrolytes (SSE), which needs to be solved and improved. Covalent organic frameworks (COFs), a rapidly growing class of porous crystalline materials, emerge as a new research hotspot in the field of SSEs. This is due to their homogeneously dispersed sites and well-defined pathways for ion diffusion, demonstrating great advantages over conventional non-porous solids. Herein, a composite solid electrolyte by confining organic ionic plastic crystal (OIPC) in the 1D ordered nanochannels of COFs as the host matrix for solid-state lithium-ion conduction, is reported. Due to the loss of coupling between PBu cations and TFSI anions, the cation-anion interaction is weakened; and thus, the lithium-ion transportation is facilitated. As a result, the COF-confining OIPC SSEs show ultra-high lithium-ion conductivity of 0.048 S cm at 30 °C and 0.021 S cm at the extremely low temperature of -30 °C. The dynamic origin of this fast ion conduction is characterized by differential scanning calorimetry (DSC), X-ray photoelectron spectroscopy (XPS), and variable temperature solid-state nuclear magnetic resonance (NMR) spectroscopy.

摘要

由于超慢离子迁移动力学导致宽温度范围内的低电导率是固态电解质(SSE)领域的一个关键问题,需要加以解决和改进。共价有机框架(COFs)作为 SSE 领域的一个新的研究热点,是一类快速发展的多孔晶体材料。这是由于其离子扩散的均匀分散位点和明确的途径,与传统的无孔固体相比具有很大的优势。本文报道了一种将有机离子塑性晶体(OIPC)限制在 COFs 的 1D 有序纳米通道中作为固态锂离子传导主体基质的复合固态电解质。由于 PBu^+阳离子和 TFSI^-阴离子之间的耦合丧失,阳离子-阴离子相互作用减弱,从而促进了锂离子的传输。结果,COF 限制的 OIPC SSE 在 30°C 时表现出超高的锂离子电导率为 0.048 S cm,在极低的-30°C 温度下也表现出 0.021 S cm 的电导率。通过差示扫描量热法(DSC)、X 射线光电子能谱(XPS)和变温固态核磁共振(NMR)光谱对这种快速离子传导的动力学起源进行了表征。

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