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首页> 外文期刊>ACS applied materials & interfaces >New Insights into the Anchoring Mechanism of Polysulfides inside Nanoporous Covalent Organic Frameworks for Lithium-Sulfur Batteries
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New Insights into the Anchoring Mechanism of Polysulfides inside Nanoporous Covalent Organic Frameworks for Lithium-Sulfur Batteries

机译:用于锂 - 硫电池内纳米多孔共价有机骨架内聚硫化物锚定机理的新见解

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摘要

The application prospects of lithium-sulfur (Li-S) batteries are constrained by many challenges, especially the shuttle effect of lithium polysulfides (Li2Sx). Recently, microporous covalent organic framework (COF) materials have been used to anchor electrodes in Li-S batteries, because of their preferable characteristics, such as self-design ability, suitable pore size, and various active groups. To identify the ideal anchoring materials that can effectively restrain the shuttle of Li2Sx species, the anchoring mechanism between COF materials and Li2Sx species should be investigated in depth. Therefore, we systematically investigated the anchoring mechanism between specific COF nanomaterials (consisting of boron and oxygen atoms and benzene group) and Li2Sx (x = 1, 2, 4, 6, or 8) species on the surface and inside the pore using density functional theory methods with van der Waals interactions. The detailed analysis of the adsorption energy, difference charge density, charge transfer, and atomic density of states can be used to determine that the COF nanomaterials, with the structure of boroxine connecting to benzene groups and boroxine groups not constructed at the corner of the structure, can effectively anchor the Li2Sx series. Accordingly, this study provides the theoretical basis for the molecular-scale design of ideal anchoring materials, which can be useful to improve the performance of the Li-S batteries.
机译:锂 - 硫(LI-S)电池的应用前景受到许多挑战的限制,尤其是锂多硫化物(Li2Sx)的梭效果。最近,微孔共价有机骨架(COF)材料已被用于锚定Li-S电池中的电极,因为它们的优选特性,例如自我设计能力,合适的孔径和各种活性组。为了确定能够有效抑制Li2SX物种梭的理想锚定材料,应深入研究COF材料和LI2SX物种之间的锚定机理。因此,我们系统地研究了在表面和孔隙内部的特定COF纳米材料(由硼和氧原子和苯组和苯基组成)的锚定机制,并使用密度函数在孔隙内部和孔隙内部van der waals相互作用的理论方法。可以使用对吸附能量,差异电荷密度,电荷转移和原子密度的详细分析来确定COF纳米材料,其具有连接到苯组的硼罗胺和硼氧基的结构未在结构的拐角处构建,可以有效地锚定LI2SX系列。因此,本研究为理想的锚固材料的分子尺度设计提供了理论依据,其可用于提高Li-S电池的性能。

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