3D MXene Architectures for Efficient Energy Storage and Conversion

被引:473
|
作者
Li, Ke [1 ,2 ,3 ,4 ]
Liang, Meiying [3 ,4 ]
Wang, Hao [5 ]
Wang, Xuehang [6 ,7 ]
Huang, Yanshan [8 ]
Coelho, Joao [3 ,4 ]
Pinilla, Sergio [3 ,4 ]
Zhang, Yonglai [1 ,2 ]
Qi, Fangwei [9 ]
Nicolosi, Valeria [3 ,4 ]
Xu, Yuxi [1 ,2 ]
机构
[1] Westlake Univ, Sch Engn, Hangzhou 310024, Zhejiang, Peoples R China
[2] Westlake Inst Adv Study, Inst Adv Technol, Hangzhou 310024, Zhejiang, Peoples R China
[3] Trinity Coll Dublin, Ctr Res Adapt Nanostruct & Nanodevices CRANN, Sch Chem, Dublin 2, Ireland
[4] Trinity Coll Dublin, Adv Mat Bioengn Res Ctr AMBER, Dublin 2, Ireland
[5] Nanyang Technol Univ, Sch Chem & Biomed Engn, 50 Nanyang Ave, Singapore 639798, Singapore
[6] Drexel Univ, AJ Drexel Nanomat Inst, Philadelphia, PA 19104 USA
[7] Drexel Univ, Dept Mat Sci & Engn, Philadelphia, PA 19104 USA
[8] Shanghai Inst Technol, Sch Chem & Environm Engn, Shanghai 201418, Peoples R China
[9] Jiangxi Univ Sci & Technol, Inst Bioaddit Mfg, Nanchang 330013, Jiangxi, Peoples R China
基金
中国国家自然科学基金;
关键词
2D materials; 3D architectures; energy storage and conversion; MXene devices; MXene nanosheets; porous materials; TITANIUM CARBIDE MXENE; SODIUM-ION BATTERIES; GRAPHENE OXIDE; 2-DIMENSIONAL MATERIALS; TI3C2TX MXENE; HIGH-CAPACITY; ANODE MATERIALS; HIGH-POWER; LI-S; INTERCALATION MECHANISM;
D O I
10.1002/adfm.202000842
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
2D transition metal carbides and/or nitrides (MXenes), by virtue of high electrical conductivity, abundant surface functional groups and excellent dispersion in various solvents, are attracting increasing attention and showing competitive performance in energy storage and conversion applications. However, like other 2D materials, MXene nanosheets incline to stack together via van der Waals interactions, which lead to limited number of active sites, sluggish ionic kinetics, and finally ordinary performance of MXene materials/devices. Constructing 2D MXene nanosheets into 3D architectures has been proven to be an effective strategy to reduce restacking, thus providing larger specific surface area, higher porosity, and shorter ion and mass transport distance over normal 1D and 2D structures. In this review, the commonly used strategies for manufacturing 3D MXene architectures (3D MXenes and 3D MXene-based composites) are summarized, such as template, assembly, 3D printing, and other methods. Special attention is also given to the structure-property relationships of 3D MXene architectures and their applications in electrochemical energy storage and conversion, including supercapacitors, rechargeable batteries, and electrocatalysis. Finally, the authors propose a brief perspective on future opportunities and challenges for 3D MXene architectures/devices.
引用
收藏
页数:22
相关论文
共 50 条
  • [31] A binder jet 3D printed MXene composite for strain sensing and energy storage application
    Li, Terek
    Chen, Tianhao
    Shen, Xuechen
    Shi, HaoTian Harvey
    Jabari, Elahe
    Naguib, Hani E.
    NANOSCALE ADVANCES, 2022, 4 (03): : 916 - 925
  • [32] Mineral-Templated 3D Graphene Architectures for Energy-Efficient Electrodes
    Zhang, Mingchao
    Chen, Ke
    Wang, Chunya
    Jian, Muqiang
    Yin, Zhe
    Liu, Zhenglian
    Hong, Guo
    Liu, Zhongfan
    Zhang, Yingying
    SMALL, 2018, 14 (22)
  • [33] 3D Foam-Based MXene Architectures: Structural and Electrolytic Engineering for Advanced Potassium-Ion Storage
    Zhang, Peng
    Peng, Yanmeng
    Zhu, Qizhen
    Soomro, Razium Ali
    Sun, Ning
    Xu, Bin
    ENERGY & ENVIRONMENTAL MATERIALS, 2024, 7 (04)
  • [34] 3D Foam-Based MXene Architectures:Structural and Electrolytic Engineering for Advanced Potassium-Ion Storage
    Peng Zhang
    Yanmeng Peng
    Qizhen Zhu
    Razium Ali Soomro
    Ning Sun
    Bin Xu
    Energy&EnvironmentalMaterials, 2024, 7 (04) : 64 - 73
  • [35] Functionalization Strategies of MXene Architectures for Electrochemical Energy Storage Applications
    Liu, Shude
    Zhang, Huilin
    Chen, Jieming
    Peng, Xue
    Chai, Yafei
    Shao, Xian
    He, Yi
    Wang, Xiaoqiang
    Ding, Bin
    ENERGIES, 2025, 18 (05)
  • [36] Anti-Swelling 3D Nanohydrogel for Efficient Osmotic Energy Conversion
    Lin, Cuncai
    Jia, Wenkai
    Chang, Leqi
    Ren, Guijing
    Hu, Shuhong
    Sui, Xin
    Gao, Longcheng
    Sui, Kunyan
    Jiang, Lei
    ADVANCED FUNCTIONAL MATERIALS, 2025, 35 (10)
  • [37] 3D Macroscopic Architectures from Self-Assembled MXene Hydrogels
    Shang, Tongxin
    Lin, Zifeng
    Qi, Changsheng
    Liu, Xiaochen
    Li, Pei
    Tao, Ying
    Wu, Zhitan
    Li, Dewang
    Simon, Patrice
    Yang, Quan-Hong
    ADVANCED FUNCTIONAL MATERIALS, 2019, 29 (33)
  • [38] 3D macroscopic graphene oxide/MXene architectures for multifunctional water purification
    Ming, Xin
    Guo, Ankang
    Zhang, Qian
    Guo, Zhenzhen
    Yu, Fang
    Hou, Baofei
    Wang, Yu
    Homewood, Kevin Peter
    Wang, Xianbao
    CARBON, 2020, 167 : 285 - 295
  • [39] Enhancing MXene-based supercapacitors: Role of synthesis and 3D architectures
    Wen Siong Poh
    Wen Jie Yiang
    Wee-Jun Ong
    Pau Loke Show
    Chuan Yi Foo
    Journal of Energy Chemistry, 2024, 91 (04) : 1 - 26
  • [40] 2D Superlattices for Efficient Energy Storage and Conversion
    Xiong, Pan
    Sun, Bing
    Sakai, Nobuyuki
    Ma, Renzhi
    Sasaki, Takayoshi
    Wang, Shijian
    Zhang, Jinqiang
    Wang, Guoxiu
    ADVANCED MATERIALS, 2020, 32 (18)