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首页> 外文期刊>Chemical engineering journal >High areal loading and long-life cycle stability of lithium-sulfur batteries achieved by a dual-function ZnS-modified separator
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High areal loading and long-life cycle stability of lithium-sulfur batteries achieved by a dual-function ZnS-modified separator

机译:通过双功能ZnS改性分离器实现的锂 - 硫电池的高面积负载和长寿命稳定性

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摘要

Stabilizing the lithium anode while inhibiting the shuttle effect to achieve stable circulation under high sulfur loading is an inevitable problem for the commercialization of lithium-sulfur batteries. A low cost of raw materials and a simple synthesis are also important prerequisites for product commercialization. In this paper, zinc sulfide (ZnS) nanoparticles embedded in nitrogen-doped 3D-carbon nanosheets (NCNS) are proposed as modified separator materials. During high-temperature carbonization of the carbon materials, a zinc sulphide phase transition occurs, resulting in an anion vacancy (S2-) and an unsaturated Zn centre. While maintaining catalytic activity, the unsaturated Zn centre in ZnS acts as a Lewis acid to form a coordinate bond with the polysulfide. Furthermore, a uniform distribution of N heteroatoms can effectively regulate Li+ flux through the separator, thereby achieving a stable cycle for the lithium anode. A cell with the ZnS/NCNS-modified separator can achieve a stable cycle at 0.5 C and superior electrochemical performance even with an areal sulfur loading of 6 mg cm(-2). An excellent reduction in self-discharge was also confirmed by a 4% capacity attenuation after resting for 4 days. This work provides new insight on the design and preparation of novel separators for highly stable Li-S batteries via a "green" and cost-effective approach.
机译:稳定锂阳极同时抑制梭效应,以在高硫负载下实现稳定的循环是锂 - 硫电池商业化的不可避免的问题。原材料的低成本和简单的合成也是产品商业化的重要先决条件。本文提出了嵌入氮掺杂的3D-碳纳米片(NCNS)的硫化锌(ZnS)纳米颗粒作为改性分离器材料。在碳材料的高温碳化期间,发生硫化锌相转变,导致阴离子空位(S2-)和不饱和Zn中心。在保持催化活性的同时,ZnS中的不饱和Zn中心用作路易斯酸,以形成与多硫化物的坐标键。此外,N杂原子的均匀分布可以有效地通过隔膜调节Li +通量,从而实现锂阳极的稳定循环。具有ZnS / NCNS改性分离器的电池可以在0.5℃和优异的电化学性能下实现稳定的循环,即使具有6mgcm(-2)的面积硫负载。在休息4天后,还通过4%的容量衰减证实了自放电的优异降低。这项工作提供了关于通过“绿色”和经济高效的高度稳定LI-S电池的新型分离器的设计和准备新的洞察力。

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