First-principles calculations on mechanical and electronic properties of C72 nanocage under high pressure

被引:13
作者
Arjun, P. [1 ]
Nagarajan, V. [2 ]
Chandiramouli, R. [2 ]
机构
[1] SASTRA Deemed Univ, Sch Mech Engn, Thanjavur 613401, India
[2] SASTRA Deemed Univ, Sch Elect & Elect Engn, Thanjavur 613 401, India
来源
MATERIALS TODAY COMMUNICATIONS | 2024年 / 38卷
关键词
C72; nanocage; Elastic constants; Cauchy pressure; Young 's modulus; High pressure; CARBON; C-60; ALLOTROPES;
D O I
10.1016/j.mtcomm.2023.108010
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We report the mechanical and electronic attributes of C72 nanocage under uniaxial pressure, within the range from 0 to 60 GPa. We explored the mechanical properties based on the first-principles calculations, such as hardness, bulk modulus, shear modulus, and Young's modulus. The results infer the adaptability and responsiveness of C72 towards mechanical stimuli and confirm its structural robustness. The structural stability of C72 is confirmed with formation energy whose value is observed to be -0.849 eV/atom at 0 GPa. Also, we examined the ductility and brittle properties using Poisson's ratio, Cauchy pressure, and Pugh's criterion under high pressure. Besides, we also explored the electronic properties of C72 with regard to its band structure and energy band gap under various pressures. The energy band gap of C72 is found to be 0.358 eV, which exhibits a semiconductor nature. The outcome gives insights on the electronic and mechanical properties of C72 nanocage under high pressure, which can be fine-tuned for potential applications in hydrogen storage and electronic device technologies.
引用
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页数:7
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共 48 条
  • [1] Electrochemical sensing behavior of graphdiyne nanoflake towards uric acid: a quantum chemical approach
    Asif, Misbah
    Sajid, Hasnain
    Ayub, Khurshid
    Gilani, Mazhar Amjad
    Akhter, Mohammed Salim
    Mahmood, Tariq
    [J]. JOURNAL OF MOLECULAR MODELING, 2021, 27 (09)
  • [2] Mechanical properties of bulk carbon nanomaterials
    Baimova, Yu. A.
    Murzaev, R. T.
    Dmitriev, S. V.
    [J]. PHYSICS OF THE SOLID STATE, 2014, 56 (10) : 2010 - 2016
  • [4] BEYOND C-60 - THE HIGHER FULLERENES
    DIEDERICH, F
    WHETTEN, RL
    [J]. ACCOUNTS OF CHEMICAL RESEARCH, 1992, 25 (03) : 119 - 126
  • [5] Dresselhaus M.S., 1996, Carbon Nanotub., P756, DOI [10.1016/b978-012221820-0/50019-8, DOI 10.1016/B978-012221820-0/50019-8]
  • [6] PHYSICS OF CARBON NANOTUBES
    DRESSELHAUS, MS
    DRESSELHAUS, G
    SAITO, R
    [J]. CARBON, 1995, 33 (07) : 883 - 891
  • [7] EWING DW, 1992, NATO ADV SCI I C-MAT, V374, P561
  • [8] Four Carbon Allotropes Form COT Structures
    Fan, Qingyang
    Liu, Heng
    Jiang, Li
    Zhang, Wei
    Yu, Xinhai
    Yun, Sining
    [J]. ACS APPLIED ELECTRONIC MATERIALS, 2022, 4 (05) : 2353 - 2363
  • [9] The era of carbon allotropes
    Hirsch, Andreas
    [J]. NATURE MATERIALS, 2010, 9 (11) : 868 - 871
  • [10] Three-dimensional honeycomb carbon: Junction line distortion and novel emergent fermions
    Hu, Junping
    Wu, Weikang
    Zhong, Chengyong
    Liu, Ning
    Ouyang, Chuying
    Yang, Hui Ying
    Yang, Shengyuan A.
    [J]. CARBON, 2019, 141 : 417 - 426