Hierarchical pore CoxP@Ti3C2Tx foams prepared by Co2+ induced Self-assembly and in-situ “micron-reactor” phosphating for novel separator modification of lithium-sulfur batteries

IF 5.5 3区 材料科学 Q1 ELECTROCHEMISTRY Electrochimica Acta Pub Date : 2025-02-01 DOI:10.1016/j.electacta.2024.145456
Kai Yang , Yiling Huang , Hongcheng Li , Peixing Wang , Jian Zou , Wei Jiang , Xiaoxue Zhu , Yan Xu , Qiutong Jiang , Limei Pan , Qian Li , Jian Yang
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Abstract

Separator-modification attracts increasing attention as a simple and effective resolution strategy for shuttle effect of Li-S batteries. In this work, CoxP@Ti3C2Tx foam with large specific surface areas and hierarchical pore channels is prepared by Co2+ induced self-assembly and in-situ “micron-reactor” phosphating. This novel phosphating strategy not only significantly reduces the consumption of phosphorus source (NH4H2PO2), but also facilitates the improvement of CoPx nanoparticles (NPs) growth and the uniform construction of pore structure on Ti3C2TX nanosheets (NSs) surface. The restacking of Ti3C2Tx NSs and agglomeration of CoxP NPs are effectively inhibited. Then the CoxP@Ti3C2Tx foam is employed for the modification of polypropylene separator, which significantly suppresses the polysulfides (LiPSs) shuttle through the chemisorption by Ti3C2Tx NSs and accelerates the redox kinetics and LiPSs conversion via CoxP NPs as catalysts. Consequently, the Li-S battery shows excellent electrochemical properties, especially at high rate, a high capacity of 691.51 mAh g−1 after 400 cycles at 2.0 C with a decay rate of only 0.037 % per cycle. This work opens a simple, universal, efficient, cost-effective, and environment-friendly strategy for fabricating Ti3C2Tx-phosphides foams, which finds diverse applications in energy storage and conversion, catalysis, microwave absorbing/electromagnetic shielding, etc.

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Co2+诱导自组装和原位“微米反应器”磷化制备的分级孔CoxP@Ti3C2Tx泡沫材料用于新型锂硫电池分离器改性
隔膜改造作为一种简单有效的解决锂电池穿梭效应的方法越来越受到人们的关注。在这项工作中,通过Co2+诱导自组装和原位“微米反应器”磷化制备了具有大比表面积和分层孔通道的CoxP@Ti3C2Tx泡沫。这种新型磷化策略不仅显著降低了磷源(NH4H2PO2)的消耗,而且有利于提高Ti3C2TX纳米片(NSs)表面CoPx纳米颗粒(NPs)的生长和孔隙结构的均匀性。有效抑制了Ti3C2Tx NPs的再堆积和CoxP NPs的团聚。然后利用CoxP@Ti3C2Tx泡沫对聚丙烯分离器进行改性,显著抑制了Ti3C2Tx NPs化学吸附过程中多硫化物(LiPSs)的迁移,加速了CoxP NPs作为催化剂的氧化还原动力学和LiPSs转化。结果表明,该锂硫电池表现出优异的电化学性能,特别是在高倍率下,在2.0℃下循环400次后,电池容量高达691.51 mAh g−1,每循环衰减率仅为0.037%。本工作开辟了一种简单、通用、高效、经济、环保的制备ti3c2tx -磷化泡沫材料的策略,在能量存储与转换、催化、微波吸收/电磁屏蔽等方面具有广泛的应用。
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来源期刊
Electrochimica Acta
Electrochimica Acta 工程技术-电化学
CiteScore
11.30
自引率
6.10%
发文量
1634
审稿时长
41 days
期刊介绍: Electrochimica Acta is an international journal. It is intended for the publication of both original work and reviews in the field of electrochemistry. Electrochemistry should be interpreted to mean any of the research fields covered by the Divisions of the International Society of Electrochemistry listed below, as well as emerging scientific domains covered by ISE New Topics Committee.
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