The comparable study of isoelectronic-bodies of single-walled B/N nanotubes

Hua Zhao, Chunchua Tian, Suna Wang, Dezhi Sun, Chong Zhang

Article ID: 1416
Vol 5, Issue 1, 2022

VIEWS - 237 (Abstract) 209 (PDF)

Abstract


The structure, thermodynamic stability, ionization potential (IP) and electron affinity (EA) energy level difference (Eg) and tension of lowest unoccupied orbit (LUMO) and highest occupied orbit (HOMO) of armchair single wall carbon nanotubes (C-NTs), BN hybrid carbon nanotubes (BC2N-NTs) and all BN nanotubes (BN-NTs) were systematically studied with AM1 method in this paper. Calculation results show that when n value is constant, (n, n) C-NTs (n = 3,4,5,6) has the largest diameter and BN-NTs has the smallest diameter; (n, n) the values of Eg (HOMO-LUMO) and n of C-NTs and BC2N-NTs are related; POAV analysis shows that different hybrid atoms have different contributions to the hybrid mode of nanotube atoms and the tension of nanotubes.

Keywords


Carbon Nanotubes; BN Nanotubes; Energy Gaps (EHOMO-ELOMO); Hybrid Tension

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References


1. Lijima S. Helical microtubules of graphitic carbon. Nature 1991; 354: 56–58.

2. Bethune DS, Kiang CH, Vries MS, et al. Cobalt-catalysed growth of carbon nanotubes with single- atomatic-layer words walls. Nature 1993; 36: 605–607.

3. Ichihashi SI. Single-shell carbon nanotubes of 1-nm diameter. Nature 1993; 36: 603–604.

4. Satio R, Dresselhuas G, Dresselhuas MS. Physical properties of carbon nanotubes. London: Imperial College Press; 1998.

5. Dresselhuas MS, Dresselhuas G, Eklund PC. Science of fullerenes and carbon nanotubes. San Diego: Academic Press; 1996.

6. Odom TW, Huang J, Kim P, et al. Heteroatomic nanotubes with quasi-one-dimensional superlattice structure. Journal of Physical Chemistry B 2000; 104: 2794–2809.

7. Elena G, Gal’pern, Vladimir V, et al. Heteroatomic nanotubes with quasi-one-dimensional superlattice structure. Journal of Physical Chemistry B 1997; 101: 705–709.

8. Blasé X. Properties of composite BxCyNz nanotubes and related heterojunctions. Computational Materials Science 2000; 17: 107–114.

9. Jalili S, Akhavan M, Schofield J. Electronic and Structural Properties of BC3 Nanotubes with Defects. Journal of Physical Chemistry C 2012; 116: 13225–13230.

10. Zhang Z, Zheng W, Jiang Q. Hydrogen adsorption on Ce/BNNT systems: A DFT study. International Journal of Hydrogen Energy 2012; 37: 5090–5099.

11. Saikia N, Deka RC. First principles study on the boron–nitrogen domains segregated within (5, 5) and (8, 0) single-wall carbon nanotubes: Formation energy, electronic structure and reactivity. Computational & Theoretical Chemistry 2012; 996: 11–20.

12. Song G, Yin Y, Shao X. Preparation and optical properties of lanthanum doped ZnO Nanoparticles. Journal of Liaocheng University (Natural Science Edition) 2008; 21: 55–57.

13. Li Q, Xu H, Yuan S. Research progress of porous anodic alumina membrane. Journal of Liaocheng University(Natural Science Edition) 2001; 14: 41–43.

14. Frisch J, Frisch M, Trucks G, et al. Gaussian 98. Wallingford CT: Gaussian Inc; 1998.

15. Haddon RC, Scott LT. π-Orbital conjugation and rehybridization in bridged annulenes and deformed molecules in general: π-orbital axis vector analysis. Pure and Applied Chemistry 1986; 58: 137–142.

16. Zhang Y, Gu H, Suenaga K, et al. Heterogeneous growth of B-C-N nanotubes by laser ablation. Chemical Physics Letters 1997; 279: 264–269.

17. Suenagac K, Colliex C, Demoncy A, et al. Synthesis of nanoparticles and nanotubes with well-separated layers of boron nitride and carbon. Science 1997; 278: 653–655.

18. Liu A, Wentzcovitch R, Cohen M. Atomic arrangement and electronic structure of BC2N. Physical Review B: Condensed Matter 1989; 39: 1760–1765.

19. Miyamoto Y, Rubio A, Cohen M, et al. Chiral tubules of hexagonal BC2N. Physical Review B: Condensed Matter 1994; 50: 4976–4979.

20. Chen Z, Ma K, Zhao H, et al. Semi-empirical calculations on the BN substituted fullerenes C60-2x (BN) x (x = 1-3) –isoelectronic equivalents of C60. Thoechem 1999; 466: 127–135.

21. Mickelson W, Aloni S, HanW, et al. Packing C60 in boron nitride nanotubes. Science 2003; 300: 467–469.




DOI: https://doi.org/10.24294/can.v5i1.1416

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