The Evolution of MXenes Conductivity and Optical Properties Upon Heating in Air

Author:

Shamsabadi Ahmad A.1,Fang Hui1ORCID,Zhang Danzhen2,Thakur Anupma3,Chen Cindy Y.1,Zhang Aixi1,Wang Haonan1,Anasori Babak34,Soroush Masoud5,Gogotsi Yury2,Fakhraai Zahra1ORCID

Affiliation:

1. Department of Chemistry University of Pennsylvania Philadelphia PA 19104 USA

2. A.J. Drexel Nanomaterials Institute and Department of Material Science and Engineering Drexel University Philadelphia PA 19104 USA

3. Department of Mechanical and Energy Engineering and Integrated Nanosystems Development Institute Purdue School of Engineering and Technology Indiana University–Purdue University Indianapolis Indianapolis IN 46202 USA

4. School of Materials Engineering Purdue University West Lafayette IN 47907 USA

5. Department of Chemical and Biological Engineering Drexel University Philadelphia PA 19104 USA

Abstract

AbstractMXenes, a family of 2D transition‐metal carbides and nitrides, have excellent electrical conductivity and unique optical properties. However, MXenes oxidize in ambient conditions, which is accelerated upon heating. Intercalation of water also causes hydrolysis accelerating oxidation. Developing new tools to readily characterize MXenes’ thermal stability can enable deeper insights into their structure–property relationships. Here, in situ spectroscopic ellipsometry (SE) is employed to characterize the optical properties of three types of MXenes (Ti3C2Tx, Mo2TiC2Tx, and Ti2CTx) with varied composition and atomistic structures to investigate their thermal degradation upon heating under ambient environment. It is demonstrated that changes in MXene extinction and optical conductivity in the visible and near‐IR regions correlate well with the amount of intercalated water and hydroxyl termination groups and the degree of oxidation, measured using thermogravimetric analysis. Among the three MXenes, Ti3C2Tx and Ti2CTx, respectively, have the highest and lowest thermal stability, indicating the role of transition‐metal type, synthesis route, and the number of atomic layers in MXene flakes. These findings demonstrate the utility of SE as a powerful in situ technique for rapid structure–property relationship studies paving the way for the further design, fabrication, and property optimization of novel MXene materials.

Funder

National Science Foundation

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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