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Synergistically Inducing Ultrafast Ion Diffusion and Reversible Charge Transfer in Lithium Metal Batteries Using Bimetallic Molybdenum-Titanium MXenes.

Authors :
Narayanasamy M
Zaman S
Kim JS
Jung S
Naqvi SM
Hassan T
Iqbal A
Lee SU
Koo CM
Source :
ACS nano [ACS Nano] 2025 Jan 14; Vol. 19 (1), pp. 1689-1701. Date of Electronic Publication: 2025 Jan 01.
Publication Year :
2025

Abstract

Metal batteries have captured significant attention for high-energy applications, owing to their superior theoretical energy densities. However, their practical viability is impeded by severe dendrite formation and poor cycling stability. To alleviate these issues, a 3D-structured bimetallic-Mo <subscript>2</subscript> Ti <subscript>2</subscript> C <subscript>3</subscript> T <subscript> x </subscript> based fiber electrode was fabricated in this study and analyzed experimentally and computationally. The bimetallic Mo-Ti composition of MXenes synergistically achieved low binding and formation energies with lithium. In particular, the minimal lattice mismatch between the deposited Li metal and the Mo <subscript>2</subscript> Ti <subscript>2</subscript> C <subscript>3</subscript> T <subscript> x </subscript> MXene anode substrate led to improved Li formation energy with respect to the MXene surface. Moreover, the synergy of the bimetallic Mo-Ti composition of the Mo <subscript>2</subscript> Ti <subscript>2</subscript> C <subscript>3</subscript> T <subscript> x </subscript> MXene fiber substrate helped to amplify ion diffusion and reversible charge transfer. Consequently, the bimetallic MXene electrode exhibited an impressive Coulombic efficiency (99.08%) even at a high current density (5 mA cm <superscript>-2</superscript> ) and a fixed cutoff capacity of 1 mA h cm <superscript>-2</superscript> with prolonged cycle life (650 cycles). This report highlights a promising advancement in addressing the critical challenges facing metal battery operation, thereby offering an approach to improving performance for high-energy applications.

Details

Language :
English
ISSN :
1936-086X
Volume :
19
Issue :
1
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
39741447
Full Text :
https://doi.org/10.1021/acsnano.4c15493