4.7 Article

Tuning parallel manganese dioxide to hollow parallel hydroxyl oxidize iron replicas for high-performance asymmetric supercapacitors

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 594, Issue -, Pages 812-823

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2021.03.075

Keywords

FeOOH; Hollow parallel nanostructure; Morphology-preserved transformation; Supercapacitor

Funding

  1. National Natural Science Foundation of China [51908092]
  2. Fundamental Research Funds for the Central Universities [2020CDJXZ001, 2020CDCGJ006, 2020CDCGCL004]
  3. Joint Funds of the National Natural Science Foundation of China-Guangdong [U1801254]
  4. Chongqing Special Postdoctoral Science Foundation [XmT2018043]
  5. Natural Science Foundation Project of Chongqing for Post-doctor [cstc2019jcyjbsh0079]
  6. Technological projects of Chongqing Municipal Education Commission [KJZDK201800801]
  7. Innovative Research Team of Chongqing [CXTDG201602014]
  8. Innovative technology of New materials and metallurgy [2019CDXYCL0031]

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A novel strategy was developed to transform parallel MnO2 into FeOOH replicas, maintaining its original morphology and achieving high specific capacitance and superior electrochemical performance.
A novel and facile strategy is developed to tune parallel manganese dioxide (MnO2) to hollow parallel hydroxyl oxidize iron (FeOOH) replicas, which can exactly keep its original morphology. The key factors leading to the morphology-preserved transformation are the low-temperature and dropwise strategy via a serial of controlled experiments. Benefiting from the characteristics of parallel and hollow structures, the FeOOH replica delivers remarkable specific capacitance of 186.8F g(-1) at 0.5 A g(-1). The electrochemical performances delivered by the asymmetric supercapacitor (parallel MnO2//hollow parallel FeOOH) are much superior to those where conventional activated graphene or FeOOH nanoneedles are used as negative electrode materials. This can be attributed to the advantages of parallel nanostructure and high electrochemical matching effect of positive and negative electrode materials. The energy density is recorded up to 46.8 Wh kg(-1) at the power density of 0.5 kW kg(-1), while it still remains 20.7 Wh kg(-1) with the maximum power density of 10 kW kg(-1). Furthermore, this strategy shows great universality and can be broadened to almost all MnO2 related researches to synthesize ideal negative electrode materials with high structural and electrochemical matching effect, thus further enhances the electrochemical performances of as-prepared asymmetric supercapacitor devices. (C) 2021 Elsevier Inc. All rights reserved.

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