Monitoring Ti3C2Tx MXene Degradation Pathways Using Raman Spectroscopy

拉曼光谱 锐钛矿 金红石 降级(电信) 材料科学 光谱学 纳米技术 纳米复合材料 纳米颗粒 化学工程 化学 物理 光催化 催化作用 计算机科学 光学 生物化学 量子力学 电信 工程类
作者
Sonata Adomavičiu̅tė-Grabusovė,Anton Popov,Simonas Ramanavičius,Valdas Šablinskas,Kateryna Shevchuk,Oleksiy Gogotsi,Ivan Baginskiy,Yury Gogotsi,Arūnas Ramanavičius
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (20): 13184-13195 被引量:160
标识
DOI:10.1021/acsnano.4c02150
摘要

Extending applications of Ti3C2Tx MXene in nanocomposites and across fields of electronics, energy storage, energy conversion, and sensor technologies necessitates simple and efficient analytical methods. Raman spectroscopy is a critical tool for assessing MXene composites; however, high laser powers and temperatures can lead to the materials' deterioration during the analysis. Therefore, an in-depth understanding of MXene photothermal degradation and changes in its oxidation state is required, but no systematic studies have been reported. The primary aim of this study was to investigate the degradation of the MXene lattice through Raman spectroscopic analysis. Distinct spectral markers were related to structural alterations within the Ti3C2Tx material after subjecting it to thermal- and laser-induced degradation. During the degradation processes, spectral markers were revealed for several specific steps: a decrease in the number of interlayer water molecules, a decrease in the number of -OH groups, formation of C-C bonds, oxidation of the lattice, and formation of TiO2 nanoparticles (first anatase, followed by rutile). By tracking of position shifts and intensity changes for Ti3C2Tx, the spectral markers that signify the initiation of each step were found. This spectroscopic approach enhances our understanding of the degradation pathways of MXene, and facilitating enhanced and dependable integration of these materials into devices for diverse applications, from energy storage to sensors.
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