首页> 外文期刊>Journal of Materials Science >Fabrication of reduced graphene oxide/manganese oxide ink for 3D-printing technology on the application of high-performance supercapacitors
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Fabrication of reduced graphene oxide/manganese oxide ink for 3D-printing technology on the application of high-performance supercapacitors

机译:高性能超级电容器应用的3D印刷技术的制备氧化石墨烯氧化物/锰氧化物油墨

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摘要

The low energy density of supercapacitors currently limits their widespread applicability. With the development of 3D printing technology in the field of energy storage, fine electrode structures can be designed to overcome this limitation. This paper reports an ink consisting of alpha-MnO2 nanorods, reduced graphene oxide, and pluronic F127 and employed it for the extrusion-based 3D printing of supercapacitor electrodes. The 3D-printed 1-layer electrode achieved a mass-specific capacitance of 422 F g(-1) at a current density of 0.1 A g(-1), and the as-prepared full-cell supercapacitor based on such electrode, its energy density reached 19.35 Wh kg(-1), corresponding to a power density of 50 W kg(-1). The extrusion 3D printing method also allows for the fabrication of multiple electrode layers, and the 3D-printed electrodes were demonstrated as capable of practical applications such as powering LEDs and charging a mobile phone. The proposed 3D printing technology for preparing supercapacitors can quickly and economically prepare supercapacitors with special structures in large quantities, providing a method for large-scale applications of supercapacitors, and also provides some inspiration for the structure of other energy storage devices such as ion batteries.
机译:超级电容器的低能量密度限制了其广泛应用。随着3D打印技术在储能领域的发展,可以设计精细的电极结构来克服这一限制。本文报道了一种由α-MnO2纳米棒、还原石墨烯氧化物和pluronic F127组成的油墨,并将其用于超级电容器电极的基于挤出的3D打印。3D打印的1层电极在0.1 a g(-1)的电流密度下实现了422 F g(-1)的质量比电容,基于这种电极制备的全电池超级电容器,其能量密度达到19.35 Wh kg(-1),对应于50 W kg(-1)的功率密度。挤压3D打印方法还允许制造多个电极层,3D打印电极被证明能够为LED供电和为手机充电等实际应用。提出的用于制备超级电容器的3D打印技术可以快速、经济地大量制备具有特殊结构的超级电容器,为超级电容器的大规模应用提供了一种方法,也为离子电池等其他储能装置的结构提供了一些启示。

著录项

  • 来源
    《Journal of Materials Science》 |2021年第13期|共13页
  • 作者单位

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Sch Elect &

    Informat Engn Tianjin 300072 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

    Tianjin Univ Sch Precis Instrument &

    Optoelect Engn State Key Lab Precis Measuring Technol &

    Instrume Tianjin 300072 Peoples R China;

    Tianjin Univ Technol Tianjin Key Lab Film Elect &

    Commun Devices Adv Mat &

    Printed Elect Ctr Sch Elect &

    Elect Engn Tianjin 300384 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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