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Additive Manufacturing of Two-Dimensional Conductive Metal-Organic Framework with Multidimensional Hybrid Architectures for High-Performance Energy Storage.
Zhao, Jingxin; Zhang, Yan; Lu, Hongyu; Wang, Yafei; Liu, Xu Dong; Maleki Kheimeh Sari, Hirbod; Peng, Jianhong; Chen, Shufan; Li, Xifei; Zhang, Yongjun; Sun, Xueliang; Xu, Bingang.
Afiliación
  • Zhao J; Nanotechnology Center, Institute of Textiles and Clothing, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong 999077, P.R. China.
  • Zhang Y; Key Laboratory of Functional Polymer Materials and State Key Laboratory of Medical Chemical Biology, Institute of Polymer Chemistry, College of Chemistry, Nankai University, Tianjin 300071, P.R. China.
  • Lu H; Institute of Advanced Electrochemical Energy, Xi'an University of Technology, Xi'an, Shaanxi 710048, P.R. China.
  • Wang Y; Key Laboratory of Functional Polymer Materials and State Key Laboratory of Medical Chemical Biology, Institute of Polymer Chemistry, College of Chemistry, Nankai University, Tianjin 300071, P.R. China.
  • Liu XD; Centre of Laser Fusion, China Academy of Engineering Physics, Mianyang 621900, P.R. China.
  • Maleki Kheimeh Sari H; Institute of Advanced Electrochemical Energy, Xi'an University of Technology, Xi'an, Shaanxi 710048, P.R. China.
  • Peng J; Institute of Advanced Electrochemical Energy, Xi'an University of Technology, Xi'an, Shaanxi 710048, P.R. China.
  • Chen S; Centre of Laser Fusion, China Academy of Engineering Physics, Mianyang 621900, P.R. China.
  • Li X; Institute of Advanced Electrochemical Energy, Xi'an University of Technology, Xi'an, Shaanxi 710048, P.R. China.
  • Zhang Y; Key Laboratory of Functional Polymer Materials and State Key Laboratory of Medical Chemical Biology, Institute of Polymer Chemistry, College of Chemistry, Nankai University, Tianjin 300071, P.R. China.
  • Sun X; Department of Mechanical and Materials Engineering, University of Western Ontario, London, Ontario N6A5B9, Canada.
  • Xu B; Nanotechnology Center, Institute of Textiles and Clothing, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong 999077, P.R. China.
Nano Lett ; 22(3): 1198-1206, 2022 Feb 09.
Article en En | MEDLINE | ID: mdl-35080406
ABSTRACT
Two-dimensional conductive metal-organic frameworks (2D CMOFs) can be regarded as high-performance electrode substances owing to their rich hierarchical porous architecture and excellent electrical conductivity. However, the sluggish kinetics behavior of electrodes within the bulk structure restricts their advances in energy storage fields. Herein, a series of graphene-based mixed-dimensional composite aerogels are achieved by incorporating the 2D M-tetrahydroxy-1,4-quinone (M-THQ) (M = Cu, Cu/Co, or Cu/Ni) into CNTs@rGO aerogel electrodes using a 3D-printing direct ink writing (DIW) technique. Benefiting from the high capacity of M-THQ and abundant porosity of the 3D-printed microlattice electrodes, an excellent capacitive performance of the M-THQ@CNTs@rGO cathodes is achieved based on the fast electron/ion transport. Furthermore, the 3D-printed lithium-ion hybrid supercapacitor (LIHCs) device assembled with Cu/Co-THQ@CNTs@rGO cathode and C60@VNNWs@rGO anode delivers a remarkable electrochemical performance. More importantly, this work manifests the practicability of printing 2D CMOFs electrodes, which provides a substantial research basis for 3D printing energy storage.
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Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Nano Lett Año: 2022 Tipo del documento: Article

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Nano Lett Año: 2022 Tipo del documento: Article