A systematical ab-initio review of promising 2D MXene monolayers towards Li-ion battery applications

Abstract

Two-dimensional materials have been attracting increasing interests because of their outstanding properties for Lithium-ion battery applications. In particular, a material family called MXenes (Mn+1Cn, where n = 1, 2, 3) have been recently attracted immense interest in this respect due to their incomparable fast-charging properties and high capacity promises. In this article, we review the state-of-the-art computational progress on Li-ion battery applications of MXene materials in accordance with our systematical DFT calculations. Structural, mechanical, dynamical, and electrical properties of 20 distinct MXene (M: Sc, Ti, V, Cr, Nb, Mo, Hf, Ta, W, and Zr) have been discussed. The battery performances of these MXene monolayers are further investigated by Li-ion binding energies, open circuit voltage values, and Li migration energy barriers. The experimental and theoretical progress up to date demonstrates particularly the potential of non-terminated or pristine MXene materials in Li ion-storage applications. Stability analyses show most of the pristine MXenes should be achievable, however susceptible to the development progress on the experimental growth procedures. Among pristine MXenes, Ti2C, V2C, Sc2C, and Zr2C compounds excel with their high charge/discharge rate prospect due to their extremely low Li diffusion energy barriers. Considering also their higher predicted gravimetric capacities, Sc, Ti, V, and Zr containing MXenes are more promising for their utilization in energy storage applications.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jul 01, 2020
Source ID
10.1088/2515-7655/ab9fe3

Entities

People

  • Cem Sevik
  • Deniz Cakir
  • Oğuz Gülseren
  • Uğur Yorulmaz
  • i̇lker demiroglu

Organizations

  • Air Force Office of Scientific Research
  • TÜBİTAK

Tags

Fields of Study

  • Materials science

Readers

  • Canadian European Scientific Immigration and Epilepsy Clearance Studies
  • Electrochemical Engineering/ Fuel Cell Technologies
  • Surface Engineering/Surface Coating Technology.