MXene-based 3D porous macrostructures for electrochemical energy storage

被引:56
|
作者
Tontini, G. [1 ]
Greaves, M. [1 ]
Ghosh, S. [1 ]
Bayram, V. [1 ]
Barg, S. [1 ]
机构
[1] Univ Manchester, Dept Mat, Fac Sci & Engn, Manchester, Lancs, England
来源
JOURNAL OF PHYSICS-MATERIALS | 2020年 / 3卷 / 02期
基金
英国工程与自然科学研究理事会;
关键词
MXenes; 3D architectures; 2D metal carbides; energy storage; batteries; supercapacitors; 2d materials; TITANIUM CARBIDE MXENE; TI3C2TX MXENE; ELECTRODE MATERIALS; CHARGE-STORAGE; ANODE MATERIAL; LITHIUM; PERFORMANCE; SUPERCAPACITOR; CAPACITY; HYBRIDS;
D O I
10.1088/2515-7639/ab78f1
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
2D transition metal carbides and nitrides (MXenes) have shown outstanding potential as electrode materials for energy storage applications due to a combination of metallic conductivity, wide interlayer spacing, and redox-active, metal oxide-like surfaces capable of exhibiting pseudocapacitive behavior. It is well known that 2D materials have a strong tendency to restack and aggregate, due to their strong van der Waals interactions, reducing their surface availability and inhibiting electrochemical performance. In order to overcome these problems, work has been done to assemble 2D materials into 3D porous macrostructures. Structuring 2D materials in 3D can prevent agglomeration, increase specific surface area and improve ion diffusion, whilst also adding chemical and mechanical stability. Although still in its infancy, a number of papers already show the potential of 3D MXene architectures for energy storage, but the impact of the processing parameters on the microstructure of the materials, and the influence this has on electrochemical properties is still yet to be fully quantified. In some situations the reproducibility of works is hindered by an oversight of parameters which can, directly or indirectly, influence the final architecture and its properties. This review compiles publications from 2011 up to 2020 about the research developments in 3D porous macrostructures using MXenes as building blocks, and assesses their application as battery and supercapacitor electrodes. Recommendations are also made for future works to achieve a better understanding and progress in the field.
引用
收藏
页数:31
相关论文
共 50 条
  • [31] 3D printing technologies for electrochemical energy storage
    Zhang, Feng
    Wei, Min
    Viswanathan, Vilayanur V.
    Swart, Benjamin
    Shao, Yuyan
    Wu, Gang
    Zhou, Chi
    NANO ENERGY, 2017, 40 : 418 - 431
  • [32] 3D Printed Micro-Electrochemical Energy Storage Devices
    Khan, Abdul Jabbar
    Mateen, Abdul
    Khan, Shaukat
    He, Liang
    Wang, Wenwu
    Numan, Arshid
    Peng, Kui-Qing
    Malik, Iftikhar Ahmed
    Hussain, Ijaz
    Zhao, Guowei
    BATTERIES & SUPERCAPS, 2023, 6 (08)
  • [33] MXene-Based Energy Devices: From Progressive to Prospective
    Kazim, Samrana
    Huang, Chun
    Hemasiri, Naveen Harindu
    Kulkarni, Ashish
    Mathur, Sanjay
    Ahmad, Shahzada
    ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (50)
  • [34] Role of MXene surface terminations in electrochemical energy storage: A review
    Bao, Zhuoheng
    Lu, Chengjie
    Cao, Xin
    Zhang, Peigen
    Yang, Li
    Zhang, Heng
    Sha, Dawei
    He, Wei
    Zhang, Wei
    Pan, Long
    Sun, Zhengming
    CHINESE CHEMICAL LETTERS, 2021, 32 (09) : 2648 - 2658
  • [35] MXene-based soft robots with multi-stimulus response and energy storage
    Tang, Xiaoyan
    Huang, Qiantao
    Pang, Di
    Wang, Yuchuan
    Li, Honglin
    Tang, Yan
    Ye, Lijuan
    Zhang, Hong
    Li, Wanjun
    CHEMICAL ENGINEERING JOURNAL, 2025, 510
  • [36] Tailoring MXene-Based Materials for Sodium-Ion Storage: Synthesis, Mechanisms, and Applications
    Lei, Yao-Jie
    Yan, Zi-Chao
    Lai, Wei-Hong
    Chou, Shu-Lei
    Wang, Yun-Xiao
    Liu, Hua-Kun
    Dou, Shi-Xue
    ELECTROCHEMICAL ENERGY REVIEWS, 2020, 3 (04) : 766 - 792
  • [37] 2D MXene-based supercapacitors: A promising path towards high-performance energy storage
    Kumar, Yedluri Anil
    Raorane, Chaitany Jayprakash
    Hegazy, H. H.
    Ramachandran, Tholkappiyan
    Kim, Seong Cheol
    Moniruzzaman, Md
    JOURNAL OF ENERGY STORAGE, 2023, 72
  • [38] 3D printed functional nanomaterials for electrochemical energy storage
    Zhu, Cheng
    Liu, Tianyu
    Qian, Fang
    Chen, Wen
    Chandrasekaran, Swetha
    Yao, Bin
    Song, Yu
    Duoss, Eric B.
    Kuntz, Joshua D.
    Spadaccini, Christopher M.
    Worsley, Marcus A.
    Li, Yat
    NANO TODAY, 2017, 15 : 107 - 120
  • [39] 3D MXene Architectures for Efficient Energy Storage and Conversion
    Li, Ke
    Liang, Meiying
    Wang, Hao
    Wang, Xuehang
    Huang, Yanshan
    Coelho, Joao
    Pinilla, Sergio
    Zhang, Yonglai
    Qi, Fangwei
    Nicolosi, Valeria
    Xu, Yuxi
    ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (47)
  • [40] Impact of 3D printed MXene electrodes on energy storage: Different dimensionalities, electrochemistry and performance optimization of printable MXene ink
    Maity, Chandan Kumar
    De, Shrabani
    De Adhikari, Amrita
    Kumari, Annu
    Verma, Kartikey
    Moniruzzaman, Md
    Sahoo, Sumanta
    ENERGY STORAGE MATERIALS, 2024, 73