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Structural engineering of MXenes for enhanced magnesium ion diffusion: a computational study.


ABSTRACT: The unique layered structure and tunable surface terminations of MXenes play a critical role in Mg2+ storage and diffusion dynamics. This study systematically investigates the behavior of Mg2+ in Ti3C2O2 and its nitrogen-doped derivatives through theoretical calculations. In Ti3C2O2 monolayers, Mg2+ exhibits a high diffusion barrier of 0.81 eV due to strong electrostatic interactions. However, AA-stacking reduces this barrier to 0.32 eV by introducing staggered active sites. The instability caused by interlayer O-O repulsion is mitigated by modulating the N/O ratio (Ti3C2O1.78N0.22), resulting in a diffusion barrier of 0.27 eV. Transition metal substitution further optimizes performance, as exemplified by Nb3C2N2, which achieves an ultralow barrier of 0.23 eV through weakened N-N covalency and enhanced metal-N interactions. Voltage analysis reveals that Nb3C2N2 possesses dual functionality as both cathode (4.00 V) and anode (0.64 V), contrasting with the anode-specific behavior observed in Ti-based MXenes.

SUBMITTER: Ma M 

PROVIDER: S-EPMC12079366 | biostudies-literature | 2025 May

REPOSITORIES: biostudies-literature

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Structural engineering of MXenes for enhanced magnesium ion diffusion: a computational study.

Ma Mingxiao M   Yao Xiangyu X   Wang Jianglong J   Shi Xingqiang X   Wang Ruining R   Lian Ruqian R   Kan Dongxiao D   Jing Chenyang C  

RSC advances 20250515 20


The unique layered structure and tunable surface terminations of MXenes play a critical role in Mg<sup>2+</sup> storage and diffusion dynamics. This study systematically investigates the behavior of Mg<sup>2+</sup> in Ti<sub>3</sub>C<sub>2</sub>O<sub>2</sub> and its nitrogen-doped derivatives through theoretical calculations. In Ti<sub>3</sub>C<sub>2</sub>O<sub>2</sub> monolayers, Mg<sup>2+</sup> exhibits a high diffusion barrier of 0.81 eV due to strong electrostatic interactions. However, AA-s  ...[more]

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