Temperature Evolution of Composition, Thermal, Electrical and Magnetic Properties of Ti3C2Tx-MXene

Author:

Srivatsa Shreyas1ORCID,Tokarz Waldemar2,Przewoźnik Janusz2ORCID,Strączek Tomasz3ORCID,Grabowski Krzysztof14ORCID,Rutkowski Paweł5ORCID,Uhl Tadeusz14ORCID,Kulawik Jan6,Kata Dariusz5,Madej Dominika5ORCID,Lis Jerzy5,Kapusta Czesław2

Affiliation:

1. Space Technology Centre, AGH University of Krakow, 30-059 Krakow, Poland

2. Faculty of Physics and Applied Computer Science, AGH University of Krakow, 30-059 Krakow, Poland

3. National Synchrotron Radiation Centre SOLARIS, Jagiellonian University, Czerwone Maki 98, 30-392 Kraków, Poland

4. Department of Robotics and Mechatronics, AGH University of Krakow, 30-059 Krakow, Poland

5. Faculty of Materials Science and Ceramics, AGH University of Krakow, al. A. Mickiewicza 30, 30-059 Krakow, Poland

6. Kraków Division, Łukasiewicz Research Network—Institute of Microelectronics and Photonics, 30-701 Kraków, Poland

Abstract

MXenes are a family of two-dimensional nanomaterials. Titanium carbide MXene (Ti3C2Tx-MXene), reported in 2011, is the first inorganic compound reported among the MXene family. In the present work, we report on the study of the composition and various physical properties of Ti3C2Tx-MXene nanomaterial, as well as their temperature evolution, to consider MXenes for space applications. X-ray diffraction, thermal analysis and mass spectroscopy measurements confirmed the structure and terminating groups of the MXene surface, revealing a predominant single OH layer character. The temperature dependence of the specific heat shows a Debye-like character in the measured range of 2 K–300 K with a linear part below 10 K, characteristic of conduction electrons of metallic materials. The electron density of states (DOS) calculations for Ti3C2OH-MXene reveal a significant DOS value at the Fermi level, with a large slope, confirming its metallic character, which is consistent with the experimental findings. The temperature dependence of electrical resistivity of the MXene samples was tested for a wide temperature range (3 K–350 K) and shows a decrease on lowering temperature with an upturn at low temperatures, where negative magnetoresistance is observed. The magnetoresistance versus field is approximately linear and increases its magnitude with decreasing temperature. The magnetization curves are straight lines with temperature-independent positive slopes, indicating Pauli paramagnetism due to conduction electrons.

Funder

European Union’s Horizon 2020 research and innovation program

AGH University of Krakow

Publisher

MDPI AG

Reference54 articles.

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