Harnessing Plasma-Assisted Doping Engineering to Stabilize Metallic Phase MoSe<sub>2</sub> for Fast and Durable Sodium-Ion Storage.

He, Hanna; Zhang, Hehe; Huang, Dan; Kuang, Wei; Li, Xiaolong; Hao, Junnan; Guo, Zaiping; Zhang, Chuhong · Adv Mater · 2022

basic_science · Level V

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Abstract

Metallic-phase selenide molybdenum (1T-MoSe<sub>2</sub> ) has become a rising star for sodium storage in comparison with its semiconductor phase (2H-MoSe<sub>2</sub> ) owing to the intrinsic metallic electronic conductivity and unimpeded Na<sup>+</sup> diffusion structure. However, the thermodynamically unstable nature of 1T phase renders it an unprecedented challenge to realize its phase control and stabilization. Herein, a plasma-assisted P-doping-triggered phase-transition engineering is proposed to synthesize stabilized P-doped 1T phase MoSe<sub>2</sub> nanoflower composites (P-1T-MoSe<sub>2</sub> NFs). Mechanism analysis reveals significantly decreased phase-transition energy barriers of the plasma-induced Se-vacancy-rich MoSe<sub>2</sub> from 2H to 1T owing to its low crystallinity and reduced structure stability. The vacancy-rich structure promotes highly concentrated P doping, which manipulates the electronic structure of the MoSe<sub>2</sub> and urges its phase transition, acquiring a high transition efficiency of 91% accompanied with ultrahigh phase stability. As a result, the P-1T-MoSe<sub>2</sub> NFs deliver an exceptional high reversible capacity of 510.8 mAh g<sup>-1</sup> at 50 mA g<sup>-1</sup> with no capacity fading over 1000 cycles at 5000 mA g<sup>-1</sup> for sodium storage. The underlying mechanism of this phase-transition engineering verified by profound analysis provides informative guide for designing advanced materials for next-generation energy-storage systems.