Solvation structure design for stabilizing MXene in transition metal ion solutions

SusMat Pub Date : 2024-05-08 DOI:10.1002/sus2.202
Jie Wang, Guohao Li, Guanshun Xie, Zhaohui Huang, Peng Zhang, Benhua Xu, Xiuqiang Xie, Nan Zhang
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Abstract

Although MXene has attracted great interest in diverse fields, it is susceptible to oxidation in water (H2O) with transition metal ions such as Co2+, Fe2+, and Cu2+, which is pronounced at high temperatures. This impedes the preparation of MXene‐based composites and their functional applications. Here, this study revealed that Co2+ increases the maximum and average atomic charge of H in H2O to improve the reactivity of H2O, which leads to the fact that Co2+ catalyzes the oxidation of Ti3C2Tx MXene. Furthermore, the addition of N,N‐dimethyl formamide (DMF) reduces the H2O activity and improves the oxidation stability of Ti3C2Tx in the presence of Co2+ via preferentially forming coordination bonds with Co2+. This strategy is also effective in enhancing the oxidation tolerance of Ti3C2Tx to Fe2+ in H2O. Moreover, it is feasible to enhance the oxidation stability of Ti2CTx MXene in H2O with the existence of Co2+. By virtue of these, the CoO/Ti3C2Tx composite was successfully prepared without obvious Ti3C2Tx oxidation, which is desirable to harness the advantages of Ti3C2Tx as the complementary component for lithium‐ion batteries. This work provides a straightforward paradigm to enhance the oxidation resistance of MXene in H2O in the presence of transition metal ions and at high temperatures, which opens a new vista to use MXene for target applications.
在过渡金属离子溶液中稳定 MXene 的溶解结构设计
尽管 MXene 在各个领域都引起了极大的兴趣,但它在水中(H2O)容易被过渡金属离子(如 Co2+、Fe2+ 和 Cu2+)氧化,这种氧化作用在高温下尤为明显。这阻碍了基于 MXene 的复合材料的制备及其功能应用。本研究发现,Co2+ 能增加 H2O 中 H 的最大原子电荷和平均原子电荷,从而提高 H2O 的反应活性,这导致 Co2+ 能催化 Ti3C2Tx MXene 的氧化。此外,添加 N,N-二甲基甲酰胺(DMF)可降低 H2O 活性,并通过优先与 Co2+ 形成配位键来提高 Ti3C2Tx 在 Co2+ 存在下的氧化稳定性。这种策略还能有效提高 Ti3C2Tx 在 H2O 中对 Fe2+ 的氧化耐受性。此外,Co2+ 的存在还可以增强 Ti2CTx MXene 在 H2O 中的氧化稳定性。因此,成功制备出的 CoO/Ti3C2Tx 复合材料不会出现明显的 Ti3C2Tx 氧化现象,这对于利用 Ti3C2Tx 的优势作为锂离子电池的补充成分是非常理想的。这项研究提供了一种在过渡金属离子存在和高温条件下增强 MXene 在 H2O 中抗氧化性的直接范例,为将 MXene 用于目标应用开辟了新的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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