Recent computational insights into hydrogen storage by MXene-based materials and shedding light on the storage mechanism

被引:7
|
作者
Kopac, Turkan [1 ]
机构
[1] Zonguldak Bulent Ecevit Univ, Dept Chem, TR-67100 Zonguldak, Turkiye
关键词
Hydrogen storage; MXenes; Dewar -Kubas interaction; Functional groups; First; -principles; Machine learning; EXCELLENT CATALYTIC-ACTIVITY; LEARNING BASED PREDICTION; SORPTION CHARACTERISTICS; ELECTRONIC-PROPERTIES; 2-DIMENSIONAL TI2C; METAL-HYDRIDES; SIGMA-BOND; NITRIDE; PERFORMANCE; DIHYDROGEN;
D O I
10.1016/j.est.2024.112807
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
MXenes, a novel class of low-dimensional materials, have garnered increasing interest due to their potential use in solid-state hydrogen storage. The hydrogen storage performance of these versatile 2D materials is promising due to their high specific surface area, ability to capture intercalators, and compositional variability. The surface chemistry of these materials plays a crucial role in enhancing their hydrogen storage performance. This article reviews recent research trends and advancements that have investigated the hydrogen storage characteristics of MXenes through theoretical calculations and computational findings on hydrogen storage in porous MXenes, including the mechanism of hydrogen storage, the role of structures, and potential future directions for research. This study elucidates the mechanism of hydrogen storage in MXenes, highlighting the prevalent interactions between them. MXenes offer both chemical and physical adsorption of hydrogen, and the MXene phase offers various methods for binding hydrogen, including Kubas-type adsorption of H2 molecules, which is particularly appealing for reversible hydrogen storage under ambient conditions. The interlayer distance and TM components of MXenes allow for the controlled adjustment of the sorption energy of hydrogen, making this a promising direction for future research. While MXene-based materials have shown encouraging results, the validity of the outcomes is contingent upon the quality of the models and the approximations used. Experimental verification of the theoretical predictions is necessary to confirm the accuracy of the results and assess the practical feasibility of the proposed material for hydrogen storage. It is recommended that further studies concentrate on optimizing storage parameters, developing practical hydrogen storage systems, and evaluating environmental consequences.
引用
收藏
页数:24
相关论文
共 50 条
  • [41] Recent development of three-dimension printed graphene oxide and MXene-based energy storage devices
    Yu, Liang-Hao
    Tao, Xin
    Feng, Shang-Ru
    Liu, Jin-Tao
    Zhang, Lin-Lin
    Zhao, Guang-Zhen
    Zhu, Guang
    TUNGSTEN, 2024, 6 (01) : 196 - 211
  • [42] Recent Progress and New Horizons in Emerging Novel MXene-Based Materials for Energy Storage Applications for Current Environmental Remediation and Energy Crises
    Khan, Karim
    Tareen, Ayesha Khan
    Iqbal, Muhammad
    Zhang, Ye
    Mahmood, Asif
    Mahmood, Nasir
    Shi, Zhe
    Ma, Chunyang
    Rosin, J. R.
    Zhang, Han
    ELECTROCHEMICAL ENERGY REVIEWS, 2024, 7 (01)
  • [43] Recent development of three-dimension printed graphene oxide and MXene-based energy storage devices
    Liang-Hao Yu
    Xin Tao
    Shang-Ru Feng
    Jin-Tao Liu
    Lin-Lin Zhang
    Guang-Zhen Zhao
    Guang Zhu
    Tungsten, 2024, 6 : 196 - 211
  • [44] Recent advances in Mg-based hydrogen storage materials
    Zhang, Qiuyu
    Du, Sichuan
    Ma, Zhewen
    Lin, Xi
    Zou, Jianxin
    Zhu, Wen
    Ren, Li
    Li, Yinghui
    CHINESE SCIENCE BULLETIN-CHINESE, 2022, 67 (19): : 2158 - 2171
  • [45] The mechanism of hydrogen storage in carbon materials
    Li, Yan
    Zhao, Donglin
    Wang, Yuntao
    Xue, Risheng
    Shen, Zengmin
    Li, Xingguo
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2007, 32 (13) : 2513 - 2517
  • [46] MXene-based phase change materials for multi-source driven energy storage, conversion and applications
    Weng, Mengman
    Lin, Jiahui
    Yang, Yuanjun
    Su, Jingtao
    Huang, Jintao
    Lu, Xiang
    Sheng, Xinxin
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2024, 272
  • [47] MXene-Based Fibers, Yarns, and Fabrics for Wearable Energy Storage Devices
    Levitt, Ariana
    Zhang, Jizhen
    Dion, Genevieve
    Gogotsi, Yury
    Razal, Joselito M.
    ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (47)
  • [48] Surface Modified MXene-Based Nanocomposites for Electrochemical Energy Conversion and Storage
    Yu, Hong
    Wang, Yonghui
    Jing, Yao
    Ma, Jianmin
    Du, Cheng-Feng
    Yan, Qingyu
    SMALL, 2019, 15 (25)
  • [49] Understanding MXene-Based "Symmetric" Supercapacitors and Redox Electrolyte Energy Storage
    Tian, Yapeng
    Yang, Chenhui
    Luo, Yangyang
    Zhao, Hongyang
    Du, Yaping
    Kong, Ling Bing
    Que, Wenxiu
    ACS APPLIED ENERGY MATERIALS, 2020, 3 (05) : 5006 - 5014
  • [50] Computational design of superior hydrogen storage materials
    Li, Ming
    Li, Yafei
    Zhou, Zhen
    Chen, Zhongfang
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2009, 238