Atomic Modulation of 3D Conductive Frameworks Boost Performance of MnO 2 for Coaxial Fiber-Shaped Supercapacitors

Coaxial fiber-shaped supercapacitors are a promising class of energy storage devices requiring high performance for flexible and miniature electronic devices. Yet, they are still struggling from inferior energy density, which comes from the limited choices in materials and structure used. Here, Zn-d...

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Published inNano-micro letters Vol. 13; no. 1; p. 4
Main Authors Wang, Xiaona, Zhou, Zhenyu, Sun, Zhijian, Hah, Jinho, Yao, Yagang, Moon, Kyoung-Sik, Di, Jiangtao, Li, Qingwen, Wong, Ching-Ping
Format Journal Article
LanguageEnglish
Published Germany 27.10.2020
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Abstract Coaxial fiber-shaped supercapacitors are a promising class of energy storage devices requiring high performance for flexible and miniature electronic devices. Yet, they are still struggling from inferior energy density, which comes from the limited choices in materials and structure used. Here, Zn-doped CuO nanowires were designed as 3D framework for aligned distributing high mass loading of MnO nanosheets. Zn could be introduced into the CuO crystal lattice to tune the covalency character and thus improve charge transport. The Zn-CuO@MnO as positive electrode obtained superior performance without sacrificing its areal and gravimetric capacitances with the increasing of mass loading of MnO due to 3D Zn-CuO framework enabling efficient electron transport. A novel category of free-standing asymmetric coaxial fiber-shaped supercapacitor based on Zn CuO@MnO core electrode possesses superior specific capacitance and enhanced cell potential window. This asymmetric coaxial structure provides superior performance including higher capacity and better stability under deformation because of sufficient contact between the electrodes and electrolyte. Based on these advantages, the as-prepared asymmetric coaxial fiber-shaped supercapacitor exhibits a high specific capacitance of 296.6 mF cm and energy density of 133.47 μWh cm . In addition, its capacitance retention reaches 76.57% after bending 10,000 times, which demonstrates as-prepared device's excellent flexibility and long-term cycling stability.
AbstractList Coaxial fiber-shaped supercapacitors are a promising class of energy storage devices requiring high performance for flexible and miniature electronic devices. Yet, they are still struggling from inferior energy density, which comes from the limited choices in materials and structure used. Here, Zn-doped CuO nanowires were designed as 3D framework for aligned distributing high mass loading of MnO nanosheets. Zn could be introduced into the CuO crystal lattice to tune the covalency character and thus improve charge transport. The Zn-CuO@MnO as positive electrode obtained superior performance without sacrificing its areal and gravimetric capacitances with the increasing of mass loading of MnO due to 3D Zn-CuO framework enabling efficient electron transport. A novel category of free-standing asymmetric coaxial fiber-shaped supercapacitor based on Zn CuO@MnO core electrode possesses superior specific capacitance and enhanced cell potential window. This asymmetric coaxial structure provides superior performance including higher capacity and better stability under deformation because of sufficient contact between the electrodes and electrolyte. Based on these advantages, the as-prepared asymmetric coaxial fiber-shaped supercapacitor exhibits a high specific capacitance of 296.6 mF cm and energy density of 133.47 μWh cm . In addition, its capacitance retention reaches 76.57% after bending 10,000 times, which demonstrates as-prepared device's excellent flexibility and long-term cycling stability.
Author Wang, Xiaona
Sun, Zhijian
Hah, Jinho
Di, Jiangtao
Yao, Yagang
Zhou, Zhenyu
Moon, Kyoung-Sik
Wong, Ching-Ping
Li, Qingwen
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  givenname: Xiaona
  surname: Wang
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  email: xnwang2016@sinano.ac.cn
  organization: Division of Advanced Nanomaterials, Key Laboratory of Nanodevices and Applications, Joint Key Laboratory of Functional Nanomaterials and Devices, CAS Center for Excellence in Nanoscience, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, People's Republic of China. xnwang2016@sinano.ac.cn
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  givenname: Zhenyu
  surname: Zhou
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  organization: Division of Advanced Nanomaterials, Key Laboratory of Nanodevices and Applications, Joint Key Laboratory of Functional Nanomaterials and Devices, CAS Center for Excellence in Nanoscience, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, People's Republic of China
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  givenname: Zhijian
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  organization: School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA
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  surname: Moon
  fullname: Moon, Kyoung-Sik
  organization: School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA
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  givenname: Jiangtao
  surname: Di
  fullname: Di, Jiangtao
  email: jidi2009@sinano.ac.cn
  organization: Division of Advanced Nanomaterials, Key Laboratory of Nanodevices and Applications, Joint Key Laboratory of Functional Nanomaterials and Devices, CAS Center for Excellence in Nanoscience, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, People's Republic of China. jidi2009@sinano.ac.cn
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  givenname: Qingwen
  surname: Li
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  email: qwli2007@sinano.ac.cn
  organization: Division of Advanced Nanomaterials, Key Laboratory of Nanodevices and Applications, Joint Key Laboratory of Functional Nanomaterials and Devices, CAS Center for Excellence in Nanoscience, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, People's Republic of China. qwli2007@sinano.ac.cn
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  givenname: Ching-Ping
  surname: Wong
  fullname: Wong, Ching-Ping
  email: cp.wong@mse.gatech.edu
  organization: School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA. cp.wong@mse.gatech.edu
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Keywords 3D framework
Coaxial fiber-shaped supercapacitors
Zn–CuO@MnO2 core–shell structure
Zn–CuO nanowires
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Title Atomic Modulation of 3D Conductive Frameworks Boost Performance of MnO 2 for Coaxial Fiber-Shaped Supercapacitors
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