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具有垂直排列的MXene衍生TiO/石墨烯的纳米结构用于实现增强的超级电容器性能

Nanoarchitectonics of MXene Derived TiO /Graphene with Vertical Alignment for Achieving the Enhanced Supercapacitor Performance.

作者信息

Park Seungyoung, Choi Seo Hyun, Kim Ju Min, Ji Seulgi, Kang Saewon, Yim Soonmin, Myung Sung, Kim Seong K, Lee Sun Sook, An Ki-Seok

机构信息

Thin Film Materials Research Center, Korea Research Institute of Chemical Technology, Yuseong-gu, Daejeon, 34114, Republic of Korea.

Department of Chemical Engineering, Hannam University, 1646 Yuseong-daero, Yuseong-gu, Daejeon, 34430, Republic of Korea.

出版信息

Small. 2024 Feb;20(6):e2305311. doi: 10.1002/smll.202305311. Epub 2023 Oct 5.

Abstract

Structural engineering and hybridization of heterogeneous 2D materials can be effective for advanced supercapacitor. Furthermore, architectural design of electrodes particularly with vertical construction of structurally anisotropic graphene nanosheets, can significantly enhance the electrochemical performance. Herein, MXene-derived TiO nanocomposites hybridized with vertical graphene is synthesized via CO laser irradiation on MXene/graphene oxide nanocomposite film. Instantaneous photon energy by laser irradiation enables the formation of vertical graphene structures on nanocomposite films, presenting the controlled anisotropy in free-standing film. This vertical structure enables improved supercapacitor performance by forming an open structure, increasing the electrolyte-electrode interface, and creating efficient electron transport path. In addition, the effective oxidation of MXene nanosheets by instantaneous photon energy leads to the formation of rutile TiO . TiO nanoparticles directly generated on graphene enables the effective current path, which compensates for the low conductivity of TiO and enables the functioning of an effective supercapacitor by utilizing its pseudocapacitive properties. The resulting film exhibits excellent specific areal capacitance of 662.9 mF cm at a current density of 5 mA cm . The film also shows superb cyclic stability during 40 000 repeating cycles, maintaining high capacitance. Also, the pseudocapacitive redox reaction kinetics is evaluated, showing fast redox kinetics with potential for high-performance supercapacitor applications.

摘要

异质二维材料的结构工程和杂化对于先进超级电容器可能是有效的。此外,电极的结构设计,特别是具有结构各向异性的石墨烯纳米片的垂直结构,可以显著提高电化学性能。在此,通过对MXene/氧化石墨烯纳米复合薄膜进行CO激光辐照,合成了与垂直石墨烯杂化的MXene衍生TiO纳米复合材料。激光辐照产生的瞬时光子能量使纳米复合薄膜上形成垂直石墨烯结构,在独立薄膜中呈现出可控的各向异性。这种垂直结构通过形成开放结构、增加电解质-电极界面以及创建有效的电子传输路径,提高了超级电容器的性能。此外,瞬时光子能量对MXene纳米片的有效氧化导致金红石TiO的形成。直接在石墨烯上生成的TiO纳米颗粒实现了有效的电流路径,弥补了TiO的低导电性,并通过利用其赝电容特性使有效的超级电容器发挥作用。所得薄膜在电流密度为5 mA cm时表现出662.9 mF cm的优异比面积电容。该薄膜在40000次重复循环中还表现出出色的循环稳定性,保持高电容。此外,还评估了赝电容氧化还原反应动力学,显示出快速的氧化还原动力学,具有用于高性能超级电容器应用的潜力。

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