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通过酸性或碱性后处理诱导溶剂共嵌入锂离子电池中的少层TiCT MXenes

Solvent Co-intercalation into Few-layered TiCT MXenes in Lithium Ion Batteries Induced by Acidic or Basic Post-treatment.

作者信息

Bärmann Peer, Nölle Roman, Siozios Vassilios, Ruttert Mirco, Guillon Olivier, Winter Martin, Gonzalez-Julian Jesus, Placke Tobias

机构信息

MEET Battery Research Center, Institute of Physical Chemistry, University of Münster, Corrensstraße 46, 48149 Münster, Germany.

Institute of Energy and Climate Research: Materials Synthesis and Processing (IEK-1), Forschungszentrum Jülich GmbH, Wilhelm-Johnen-Straße, 52425 Jülich, Germany.

出版信息

ACS Nano. 2021 Feb 23;15(2):3295-3308. doi: 10.1021/acsnano.0c10153. Epub 2021 Feb 1.

Abstract

MXenes, as an emerging class of 2D materials, display distinctive physical and chemical properties, which are highly suitable for high-power battery applications, such as lithium ion batteries (LIBs). TiCT (T = O, OH, F, Cl) is one of the most investigated MXenes to this day; however, most scientific research studies only focus on the design of multilayered or monolayer MXenes. Here, we present a comprehensive study on the synthesis of few-layered TiCT materials and their use in LIB cells, in particular for high-rate applications. The synthesized TiCT MXenes are characterized complementary XRD, Raman spectroscopy, XPS, EDX, SEM, TGA, and nitrogen adsorption techniques to clarify the structural and chemical changes, especially regarding the surface groups and intercalated cations/water molecules. The structural changes are correlated with respect to the acidic and basic post-treatment of TiCT. Furthermore, the detected alterations are put into an electrochemical perspective galvanostatic and potentiostatic investigations to study the pseudocapacitive behavior of few-layered TiCT, exhibiting a stable capacity of 155 mAh g for 1000 cycles at 5 A g. The acidic treatment of TiCT synthesized the formation of HF through LiF/HCl is able to increase the initial capacity in comparison to the pristine or basic treatment. To gain further insights into the structural changes occurring during (de)lithiation, XRD is applied for LIB cells in a voltage range from 0.01 to 3 V to give fundamental mechanistic insights into the structural changes occurring during the first cycles. Thereby, the increased initial capacity observed for acidic-treated MXenes can be explained by the reduced co-intercalation of solvent molecules.

摘要

MXenes作为一类新兴的二维材料,具有独特的物理和化学性质,非常适合用于高功率电池应用,如锂离子电池(LIBs)。TiCT(T = O、OH、F、Cl)是迄今为止研究最多的MXenes之一;然而,大多数科学研究仅关注多层或单层MXenes的设计。在此,我们对少层TiCT材料的合成及其在LIB电池中的应用进行了全面研究,特别是在高倍率应用方面。通过XRD、拉曼光谱、XPS、EDX、SEM、TGA和氮吸附技术对合成的TiCT MXenes进行了表征,以阐明结构和化学变化,特别是关于表面基团和插层阳离子/水分子的变化。结构变化与TiCT的酸碱后处理有关。此外,将检测到的变化从电化学角度进行了恒电流和恒电位研究,以研究少层TiCT的赝电容行为,在5 A g下1000次循环中表现出155 mAh g的稳定容量。通过LiF/HCl合成的TiCT的酸性处理能够通过形成HF来提高与原始或碱性处理相比的初始容量。为了进一步深入了解(脱)锂过程中发生的结构变化,对电压范围为0.01至3 V的LIB电池应用XRD,以深入了解第一个循环中发生的结构变化的基本机理。因此,酸性处理的MXenes观察到的初始容量增加可以通过溶剂分子共插层减少来解释。

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