Stone-Wales defective C60 fullerene for hydrogen storage

被引:4
|
作者
EL-Barbary, A. A. [1 ]
Shabi, A. H. [1 ]
机构
[1] Jazan Univ, Coll Sci, Dept Phys Sci, Phys Div, POB 114, Jazan 45142, Saudi Arabia
关键词
Hydrogen storage; DFT; Adsorption isotherm; Desorption temperature; Intermediate hydrogen binding energy; Cavity of SW defectiveC60; DENSITY-FUNCTIONAL THEORY; WALLED CARBON NANOTUBES; BINDING-ENERGY; INDUCED ENHANCEMENT; CRYSTAL-STRUCTURE; POTENTIAL-ENERGY; C-60; FULLERENE; BOND LENGTHS; H-2; MOLECULE; THIN-FILMS;
D O I
10.1016/j.ijhydene.2024.05.240
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Hydrogen energy is one of promising non-polluting and renewable energy sources. In this paper, we present a first principal study of hydrogen storage in pure C60 fullerene cage and Stone-Wales (SW) defective C60 cages using density functional theory (DFT) with applying both the exchange functional B3LYP and the dispersion correction wb97xd at 6-31+g(d,2p) basis set. In addition, the counterpoise correction is applied, and the basis set superposition error is calculated. The calculations underscore that the hydrogenation binding energy of C60 cages occurs through an endothermal process for C60Hin with a hydrogen binding energy of 0.09 eV and through an exothermal process for C60Hout, C60SW66Hout, and C60SW65Hout, cages with hydrogen binding energies of -2.17 eV, -2.96 eV, and -2.20 eV, respectively. Remarkably, for the first time, the intermediate hydrogen binding energy is found inside C60SW66Hin fullerene, and C60SW65Hin fullerene cages with energies of -0.26 eV and -0.81 eV, respectively. The hydrogen adsorption inside the cavity of C60SW66 fullerene cage is thermodynamically possible below 289.8 K and entire pressure range considered. Our results highlight, for the first time, that the endohedral cavity of C60SW66 is a promising new medium for hydrogen storage due to its binding energies (-0.26 eV) and its hydrogen storage weight percentage (5.3%) that are close to the optimal conditions specified by DOE for commercial use. In addition, this study opens up a new discovery of Stone-Wales defective C60 fullerene for further endohedral cavity applications.
引用
收藏
页码:155 / 164
页数:10
相关论文
共 50 条
  • [21] Fusing C60 units without Stone–Wales bond rotations
    Gabin Treboux
    Shinichiro Nakamura
    Monatshefte für Chemie - Chemical Monthly, 2009, 140 : 839 - 843
  • [22] Preparation of endohedral complexes of molecular hydrogen-fullerene C60, together with hydrogenated C60
    Oksengorn, B
    COMPTES RENDUS CHIMIE, 2003, 6 (04) : 467 - 472
  • [23] Hydrogen storage in Li dispersed graphene with Stone-Wales defects: A first-principles study
    Kim, Dongseong
    Lee, Sangho
    Hwang, Yubin
    Yun, Kyung-Han
    Chung, Yong-Chae
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (25) : 13189 - 13194
  • [24] Voltammetric study of fullerene C60 and fullerene C60 nanotubes with sandwich method
    Zhang, Xuzhi
    Jiao, Kui
    Piao, Guangzhe
    Liu, Shufeng
    Li, Shaoxiang
    SYNTHETIC METALS, 2009, 159 (5-6) : 419 - 423
  • [25] Skeletal Rearrangements of the C240Fullerene: Efficient Topological Descriptors for Monitoring Stone-Wales Transformations
    Sabirov, Denis Sh.
    Ori, Ottorino
    MATHEMATICS, 2020, 8 (06)
  • [26] The interaction of Pd-doped fullerene of C60 with hydrogen
    Glazkov, V.P.
    Zhukov, V.P.
    Ivanova, V.N.
    Somenkov, V.A.
    Shilstein, S.S.
    Poverkhnost Rentgenovskie Sinkhronnye i Nejtronnye Issledovaniya, 2001, (06): : 52 - 55
  • [27] Quantum-Chemical Study of Structural Stone-Wales Defect in Functionalized Fullerene C20
    Salem, M. A.
    Grishakov, K. S.
    Gimaldinova, M. A.
    BULLETIN OF THE LEBEDEV PHYSICS INSTITUTE, 2018, 45 (08) : 227 - 229
  • [28] Encapsulation of molecular hydrogen in fullerene C60 by organic synthesis
    Prato, M
    Komatsu, K
    LETTERS IN ORGANIC CHEMISTRY, 2005, 2 (07) : 573 - 575
  • [29] On C60 fullerene photopolymerization
    Cataldo, F
    POLYMER INTERNATIONAL, 1999, 48 (02) : 143 - 149
  • [30] Reactivity of fullerene C60
    Shestakov, A. F.
    RUSSIAN JOURNAL OF GENERAL CHEMISTRY, 2008, 78 (04) : 811 - 821