Electronic and charge density analysis of strained graphdiyne (GDY)

Authors

  • Aqsa Abbas Department of Chemistry, University of Agriculture Faisalabad, Faisalabad, Punjab, Pakistan.
  • Palwasha Tehseen Department of Chemistry, University of Agriculture Faisalabad, Faisalabad, Punjab, Pakistan. https://orcid.org/0009-0000-2379-1763
  • Abdul Rehman Tariq Department of Chemistry, University of Hull, United Kingdom.
  • Asma Zubair Department of Chemistry, University of Agriculture Faisalabad, Faisalabad, Punjab, Pakistan.
  • Maleeha Wajid Department of Chemistry, University of Agriculture Faisalabad, Faisalabad, Punjab, Pakistan.
  • Asmat Usama Gill Department of Chemistry, Government College University Faisalabad, Faisalabad, Punjab, Pakistan.

Keywords:

Graphdiyne, Density functional theory, Strain engineering, Electron localization function, Bandgap modulation, Charge density, Effective mass

Abstract

Graphdiyne (GDY) is a two-dimensional carbon allotrope consisting of both spand sp² hybridized carbon atoms connected through diacetylenic linkages. Its conjugated porous network provides a flexible electronic substance for flexible electronics. This paper attempts a complete first-principles study of strain gauged through density functional theory (DFT) from electronic and charge distribution paradigms. Band structure, Total and Partial Density of States (TDOS/PDOS), effective mass, and charge distributions (Bader) systems of strain gauges were analyzed alongside real-space localization (Electronic Localization Function, ELF) and other strain gauge divergent systems in charge density difference maps (DFT) for diagnostic strain modulation. This cross-validation used VASP, Quantum ESPRESSO, and CASTEP integrated with HSE06 hybrid functional single-point correction. There is a non-linear evolution of the gap with strain, passing a critical threshold gap will yield a gap of a semiconductor and a gap-less metal. There were also direction-dependent effective mass changes. Strain modulation, charge density, and band gap were also tiered in the ELF. These findings shed light on the atomic-level, mechanically tunable electronic characteristics of GDY and offer charge-structure pairs that can guide the design of devices and their applications in strain sensing. 

References

Cranford, S. W., and Buehler, M. J. (2011). Mechanical properties of graphdiyne: A first-principles study. Carbon, 49, 4111–4121. https://doi.org/10.1016/j.carbon.2011.05.024

Ding, Y., Li, X., and Zhang, Y. (2023). Recent advances in carbon nanotubes and nanofibers for nanoelectronics. Nano Today, 48, 102164.

Diederich, F., and Kivala, M. (2010). All-carbon scaffolds by rational design. Advanced Materials, 22, 803–812. https://doi.org/10.1002/adma.200902623

Dwivedi, N., Kumar, R., and Jain, A. (2021). Field emission performance of nanocarbon materials: A comparative review. Journal of Applied Physics, 129, 030902.

Fan, Z., Yan, J., Zhi, L., and Cheng, H.-M. (2015). Carbon-based materials for energy storage and environmental applications. Energy & Environmental Science, 8, 423–444.

Jin, H., Wang, J., and Zhang, L. (2019). Strain-tunable electronic structure of graphdiyne: A DFT investigation. Physical Chemistry Chemical Physics, 21, 17467–17474.

Kou, L., Chen, C., and Smith, S. C. (2016). Tuning electronic properties of graphdiyne through mechanical strain. Journal of Physical Chemistry C, 120, 14246–14253.

Li, G., Li, Y., Liu, H., Guo, Y., Li, Y., and Zhu, D. (2010). Architecture of graphdiyne nanoscale films. Chemical Communications, 46, 3256–3258. https://doi.org/10.1039/B922733D

Luo, G., Qian, Y., Liu, H., Zheng, J., Yu, G., and Li, Y. (2014). First-principles study of the electronic properties of graphdiyne and its derivatives. Journal of Materials Chemistry C, 2, 7353–7360.

Novoselov, K. S., Geim, A. K., Morozov, S. V., Jiang, D., Zhang, Y., Dubonos, S. V., Grigorieva, I. V., and Firsov, A. A. (2004). Electric field effect in atomically thin carbon films. Science, 306, 666–669. https://doi.org/10.1126/science.1102896

Novoselov, K. S., Jiang, D., Zhang, Y., and Geim, A. K. (2005). Two-dimensional atomic crystals. Proceedings of the National Academy of Sciences USA, 102, 10451–10453. https://doi.org/10.1073/pnas.0502848102

Selvam, S., Ramasamy, B., and Kim, H. J. (2021). Versatility of carbon-based nanostructures for catalysis and energy applications. Carbon Letters, 31, 123–138.

Younis, A., Lin, J., and Chu, D. (2019). 2D carbon-based materials as oxygen evolution reaction electrocatalysts. Applied Materials Today, 15, 226–242.

Zhang, S., Li, Q., Wang, Y., and Zhao, J. (2017). Carrier mobility and transport properties of graphdiyne. Nanoscale, 9, 7967–7973.

Published

2026-03-31

Issue

Section

Original Research Articles

How to Cite

Abbas, A., Tehseen, P., Tariq, A. R., Zubair, A., Wajid, M., & Gill, A. U. (2026). Electronic and charge density analysis of strained graphdiyne (GDY). Asian Journal of Science, Engineering and Technology (AJSET), 5(1), 101-110. https://ideapublishers.org/index.php/ajset/article/view/5.1.8

Similar Articles

1-10 of 23

You may also start an advanced similarity search for this article.