4.8 Article

Hierarchical Triple-Shelled MnCo2O4 Hollow Microspheres as High-Performance Anode Materials for Potassium-Ion Batteries

Journal

SMALL
Volume 17, Issue 11, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202007597

Keywords

anode materials; bimetallic oxides; conversion mechanism; hollow microspheres; potassium‐ ion batteries

Funding

  1. National Natural Science Foundation of China [51972030]
  2. S&T Major Project of Inner Mongolia Autonomous Region in China [2020ZD0018]
  3. National Key Research and Development Program of China New Energy Project for Electric Vehicle [2016YFB0100204]
  4. Beijing Outstanding Young Scientists Program [BJJWZYJH01201910007023]
  5. Guangdong Key Laboratory of Battery Safety [2019B121203008]

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Hierarchical MnCo2O4 hollow microspheres with three porous shells have been fabricated as anode materials for potassium-ion batteries, showing enhanced rate performance and demonstrated substance transformation during charging/discharging processes using in situ X-ray diffraction strategy.
Metal oxide anode materials generally possess high theoretical capacities. However, their further development in potassium-ion batteries (KIBs) is limited by self-aggregation and large volume fluctuations during charge/discharge processes. Herein, hierarchical MnCo2O4 hollow microspheres (ts-MCO HSs) with three porous shells that consist of aggregated primary nanoparticles are fabricated as anode materials of KIBs. The porous shells are in favor of reducing the diffusion path of K-ions and electrons, and thus the rate performance can be enhanced. The unique triple-shelled hollow structure is believed to provide sufficient contact between electrolyte and metal oxides, possess additional active storage sites for K-ions, and buffer the volume change during K-ions insertion/extraction. A high specific capacity of 243 mA h g(-1) at 100 mA g(-1) in the 2nd cycle and a highly improved rate performance of 153 mA h g(-1) at 1 A g(-1) are delivered when cycled between 0.01 and 3.0 V. In addition, the transformation of substances during charging/discharging processes are intuitively demonstrated by the in situ X-ray diffraction strategy for the first time, which further proves that the unique structure of ts-MCO HSs with three porous shells can significantly enhance the potassium ions storage performance.

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