Insights into the Stability and Surface Termination of Topological Semimetal NbAs2

Author:

D'Olimpio Gianluca1ORCID,Zhang Yanxue2,Rosmus Marcin3,Nappini Silvia4,Chakraborty Atasi5,Olszowska Natalia3,Ottaviano Luca1,Sankar Raman6,Agarwal Amit5,Bondino Federica4,Gao Junfeng2,Politano Antonio1ORCID

Affiliation:

1. Department of Physical and Chemical Sciences University of L'Aquila Via Vetoio L'Aquila 67100 Italy

2. Key Laboratory of Materials Modification by Laser Ion and Electron Beams (Dalian University of Technology) Ministry of Education School of Physics Dalian 116024 China

3. National Synchrotron Radiation Centre SOLARIS Jagiellonian University Czerwone Maki 98 Kraków PL‐30392 Poland

4. Istituto Officina dei Materiali (IOM)–CNR Area Science Park Trieste I‐34149 Italy

5. Department of Physics Indian Institute of Technology Kanpur Kanpur 208016 India

6. Institute of Physics Academia Sinica Nankang Taipei 11529 Taiwan

Abstract

AbstractNbAs2, a topological semimetal, has stirred considerable interest for its potential usage in magnetic and fault‐tolerant quantum computation superconductor devices, owing to its superconductivity, enormous magnetoresistance, and anisotropic magneto‐transport attributes. Yet, its environmental stability, a crucial factor for practical applications, remains largely unexplored. Herein, a comprehensive examination of the stability and electronic properties of the (001) surface of NbAs2 utilizing density functional theory (DFT) and surface science experiments is conducted. The theoretical deductions reveal that As atoms, organized in a buckled honeycomb configuration, terminate the bare (001) surface, akin to the tensile blue arsenene monolayer along the armchair direction. This study further demonstrates that the oxidation barrier is particularly low (only 0.2 eV), highlighting that the (001) surface is highly prone to oxidation under standard conditions, forming a As2O5+Nb2O5/NbAs2 heterostructure. Additionally, it observes that oxidation adversely affects the electronic characteristics of the topological semimetal NbAs2. The conclusions underscore the need for NbAs2 to be managed under high vacuum conditions or to be encapsulated for any usage in the ambient atmosphere in order to retain its electronic properties for practical purposes.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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