The Jahn-Teller Effect for Amorphization of Molybdenum Trioxide towards High-Performance Fiber Supercapacitor

Author:

Yu Chenyang1,Xu Hai1,Gong Yujiao1,Chen Ruyi1,Hui Zengyu1,Zhao Xi1,Sun Yue1,Chen Qiang2,Zhou Jinyuan3,Ji Wenxin4,Sun Gengzhi15ORCID,Huang Wei15ORCID

Affiliation:

1. Institute of Advanced Materials (IAM), Nanjing Tech University (NanjingTech), Nanjing 211816, China

2. School of Materials Science and Engineering, Henan Polytechnic University, Jiaozuo 454003, China

3. School of Physical Science and Technology, Lanzhou University, Lanzhou 730000, China

4. State Key Laboratory of High-Efficiency Coal Utilization and Green Chemical Engineering, Ningxia University, Yinchuan 750021, China

5. Institute of Flexible Electronics (IFE), Northwestern Polytechnical University (NPU), Xi’an 710072, China

Abstract

Amorphous pseudocapacitive nanomaterials are highly desired in energy storage applications for their disordered crystal structures, fast electrochemical dynamics, and outstanding cyclic stability, yet hardly achievable using the state-of-the-art synthetic strategies. Herein, for the first time, high capacitive fiber electrodes embedded with nanosized amorphous molybdenum trioxide (A-MoO3-x) featuring an average particle diameter of ~20 nm and rich oxygen vacancies are obtained via a top-down method using α-MoO3 bulk belts as the precursors. The Jahn-Teller distortion in MoO6 octahedra due to the doubly degenerate ground state of Mo5+, which can be continuously strengthened by oxygen vacancies, triggers the phase transformation of α-MoO3 bulk belts (up to 30 μm long and 500 nm wide). The optimized fibrous electrode exhibits among the highest volumetric performance with a specific capacitance (CV) of 921.5 F cm-3 under 0.3 A cm-3, endowing the fiber-based weaveable supercapacitor superior CV and EV (energy density) of 107.0 F cm-3 and 9.5 mWh cm-3, respectively, together with excellent cyclic stability, mechanical robustness, and rate capability. This work demonstrates a promising strategy for synthesizing nanosized amorphous materials in a scalable, cost-effective, and controllable manner.

Funder

Fundamental Research Funds for the Central Universities

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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