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用于高能锂离子电池的聚合物主链低共熔凝胶电解质

Polymeric Backbone Eutectogel Electrolytes for High-Energy Lithium-Ion Batteries.

作者信息

Kelchtermans An-Sofie, Joos Bjorn, De Sloovere Dries, Paulus Andreas, Mercken Jonas, Mylavarapu Satish Kumar, Elen Ken, Marchal Wouter, Tesfaye Alexander, Thompson Travis, Van Bael Marlies K, Hardy An

机构信息

Institute for Materials Research (imo-imomec), Materials Chemistry, DESINe Group, Hasselt University, Agoralaan Building D, Diepenbeek 3590, Belgium.

EnergyVille, Thor Park 8320, Genk 3600, Belgium.

出版信息

ACS Omega. 2023 Sep 26;8(40):36753-36763. doi: 10.1021/acsomega.3c03081. eCollection 2023 Oct 10.

Abstract

This work introduces a polymeric backbone eutectogel (P-ETG) hybrid solid-state electrolyte with an -isopropylacrylamide (NIPAM) backbone for high-energy lithium-ion batteries (LIBs). The NIPAM-based P-ETG is (electro)chemically compatible with commercially relevant positive electrode materials such as the nickel-rich layered oxide LiNiMnCoO (NMC622). The chemical compatibility was demonstrated through (physico)chemical characterization methods. The nonexistence (within detection limits) of interfacial reactions between the electrolyte and the positive electrode, the unchanged bulk crystallographic composition, and the absence of transition metal ions leaching from the positive electrode in contact with the electrolyte were demonstrated by Fourier transform infrared spectroscopy, powder X-ray diffraction, and elemental analysis, respectively. Moreover, the NIPAM-based P-ETG demonstrates a wide electrochemical stability window (1.5-5.0 V vs Li/Li) and a reasonably high ionic conductivity at room temperature (0.82 mS cm). The electrochemical compatibility of a high-potential NMC622-containing positive electrode and the P-ETG is further demonstrated in Li|P-ETG|NMC622 cells, which deliver a discharge capacity of 134, 110, and 97 mAh g at C/5, C/2, and 1C, respectively, after 90 cycles. The Coulombic efficiency is >95% at C/5, C/2, and 1C. Hence, gaining scientific insights into the compatibility of the electrolytes with positive electrode materials that are relevant to the commercial market, like NMC622, is important because this requires going beyond the electrolyte design itself, which is essential to their practical applications.

摘要

这项工作介绍了一种用于高能锂离子电池(LIBs)的具有聚异丙基丙烯酰胺(NIPAM)主链的聚合物主链低共熔凝胶(P-ETG)混合固态电解质。基于NIPAM的P-ETG与商业相关的正极材料如富镍层状氧化物LiNiMnCoO(NMC622)具有(电)化学兼容性。通过(物理)化学表征方法证明了这种化学兼容性。分别通过傅里叶变换红外光谱、粉末X射线衍射和元素分析证明了电解质与正极之间不存在界面反应(在检测限内)、整体晶体学组成不变以及与电解质接触的正极中没有过渡金属离子浸出。此外,基于NIPAM的P-ETG表现出较宽的电化学稳定性窗口(相对于Li/Li为1.5 - 5.0 V)以及在室温下具有相当高的离子电导率(0.82 mS cm)。在Li|P-ETG|NMC622电池中进一步证明了含高电位NMC622的正极与P-ETG的电化学兼容性,该电池在90次循环后,在C/5、C/2和1C下的放电容量分别为134、110和97 mAh g。在C/5、C/2和1C下的库仑效率>95%。因此,深入了解电解质与商业市场相关的正极材料(如NMC622)之间的兼容性具有重要意义,因为这需要超越电解质设计本身,而这对于它们的实际应用至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbb1/10568718/663f8314af03/ao3c03081_0001.jpg

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