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MXenes及其复合材料的电泳沉积:迈向可扩展的方法。

Electrophoretic deposition of MXenes and their composites: Toward a scalable approach.

作者信息

Namvari Mina, Chakrabarti Barun Kumar

机构信息

Sabanci University Nanotechnology Research and Application Center (SUNUM), Sabanci University, Istanbul 34956, Turkey.

Sabanci University Nanotechnology Research and Application Center (SUNUM), Sabanci University, Istanbul 34956, Turkey.

出版信息

Adv Colloid Interface Sci. 2024 Sep;331:103208. doi: 10.1016/j.cis.2024.103208. Epub 2024 Jun 4.

Abstract

Over the past decade, MXenes, a novel class of advanced 2D nanomaterials, have manifested as a prominent electrode material with diverse applications. Their unique layered structures, negative zeta potential, charge carrier mobility, mechanical properties, adjustable bandgap, hydrophilicity, metallic nature, and surface chemistry collectively contribute to the abundance of active redox sites on the surface and a reduction in the ion diffusion pathway. Despite such promising attributes of MXene, challenges like aggregation and restacking reduce the accessibility of active surface sites for electrolyte ions. Amongst approaches such as surface functionalization, addition of spacers, or facilitating pore formation, the electrophoretic deposition (EPD) of MXene on substrates has commenced to gain attention aiming to mitigate these issues. More importantly, it offers large-scale film fabrication in a short time without the necessity of using a charge-inducing agent. This review compiles recent advances in the use of EPD for preparing MXene-based electrodes and discusses the effect of EPD parameters on the relevant device performance. Recognition is given to understanding the relation of MXene colloidal composition in aqueous (and in some cases, non-aqueous) dispersions, deposition times, and other relevant parameters on respective device performances. In conclusion, the potential avenues offered by MXenes for future research on electrode materials are emphasized.

摘要

在过去十年中,MXenes作为一类新型的先进二维纳米材料,已成为一种具有多种应用的重要电极材料。它们独特的层状结构、负zeta电位、电荷载流子迁移率、机械性能、可调节带隙、亲水性、金属性质和表面化学共同促成了表面活性氧化还原位点的丰富,并缩短了离子扩散路径。尽管MXene具有这些有前景的特性,但诸如聚集和重新堆叠等挑战会降低电解质离子对活性表面位点的可及性。在表面功能化、添加间隔物或促进孔隙形成等方法中,MXene在基底上的电泳沉积(EPD)已开始受到关注,旨在缓解这些问题。更重要的是,它能够在短时间内进行大规模薄膜制备,而无需使用电荷诱导剂。本综述汇编了使用EPD制备基于MXene的电极的最新进展,并讨论了EPD参数对相关器件性能的影响。认识到理解MXene在水性(以及在某些情况下非水性)分散体中的胶体组成、沉积时间和其他相关参数与各自器件性能之间的关系。总之,强调了MXenes为未来电极材料研究提供的潜在途径。

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