Tuning the Electronic and Optical Properties of Graphene Quantum Dots via Cu Dimer Doping: A DFT Study

Authors

Hawraa Jaber Naser

Department of Physics, College of Science, University of Sumer, Rifai 64005 (Iraq)

Maryam Salman Sarbod

Department of Physics, College of Science, University of Sumer, Rifai 64005 (Iraq)

Fouad Nimr Ajeel

Department of Physics, College of Science, University of Sumer, Rifai 64005 (Iraq)

Article Information

DOI: 10.51584/IJRIAS.2025.10120034

Subject Category: Physics

Volume/Issue: 10/12 | Page No: 454-466

Publication Timeline

Submitted: 2025-12-24

Accepted: 2025-12-30

Published: 2026-01-06

Abstract

Graphene quantum dots (GQDs) are emerging as promising nanomaterials for next-generation energy devices due to their tunable electronic and optical properties. However, optimizing their band gap and charge transport remains a challenge. In this study, we employ density functional theory (DFT) to investigate the influence of Cu dimer doping on the structural, electronic, and optical characteristics of GQDs. Our results show that Cu₂ doping reduces the band gap significantly from 4.130 eV in pristine GQDs to as low as 1.059 eV enabling enhanced electrical conductivity and extended optical absorption into the infrared region. The Cu₂-2 configuration demonstrates the most favorable electronic delocalization and dipole behavior, highlighting its suitability for optoelectronic and energy-related applications. These modifications improve the material’s potential for use in solar energy harvesting, infrared photodetectors, and energy storage devices. This study demonstrates a viable pathway to engineer low-band-gap, highly conductive GQDs for wearable electronics.

Keywords

Graphene Quantum Dots, Cu Dimer

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References

1. N. Farooq et al., "Nanomaterial-based energy conversion and energy storage devices: a comprehensive review," New Journal of Chemistry, vol. 48, no. 19, pp. 8933-8962, 2024. [Google Scholar] [Crossref]

2. S. Tripathi et al., "Recent advances and perspectives of nanomaterials in agricultural management and associated environmental risk: a review," Nanomaterials, vol. 13, no. 10, p. 1604, 2023. [Google Scholar] [Crossref]

3. M. B. Kulkarni and N. Ayachit, "Energy conversion and storage devices," in Green Nanomaterials in Energy Conversion and Storage Applications: Apple Academic Press, 2024, pp. 75-93. [Google Scholar] [Crossref]

4. E. Roy, A. Nagar, A. Sharma, S. Roy, and S. Pal, "Graphene quantum dots and its modified application for energy storage and conversion," Journal of Energy Storage, vol. 39, p. 102606, 2021. [Google Scholar] [Crossref]

5. P. J. Sagayaraj et al., "Graphene quantum dots for photocatalytic CO2 reduction," Energy Technology, vol. 11, no. 11, p. 2300563, 2023. [Google Scholar] [Crossref]

6. T. F. Santos, D. F. Souza, E. V. Santos, B. R. Carvalho, and J. Nascimento, "Graphene and graphene quantum dots applied to batteries and supercapacitors," Nano Trends, p. 100077, 2025. [Google Scholar] [Crossref]

7. Q. Liu et al., "Graphene quantum dots for energy storage and conversion: from fabrication to applications," Materials Chemistry Frontiers, vol. 4, no. 2, pp. 421-436, 2020. [Google Scholar] [Crossref]

8. U. Masuda, S. Sahu, and L. N. Tripathi, "Recent progress and opportunities in 2D-material quantum dots: synthesis, doping, characterization, and applications," Physica Scripta, vol. 99, no. 7, p. 072002, 2024. [Google Scholar] [Crossref]

9. N. Zahir, P. Magri, W. Luo, J. J. Gaumet, and P. Pierrat, "Recent advances on graphene quantum dots for electrochemical energy storage devices," Energy & Environmental Materials, vol. 5, no. 1, pp. 201-214, 2022. [Google Scholar] [Crossref]

10. F. N. Ajeel and A. B. Ahmed, "Tuning the thermoelectric properties of graphene nanoribbons by vacancy defect with Ge-doping," Chemical Physics Impact, vol. 7, p. 100367, 2023. [Google Scholar] [Crossref]

11. F. N. Ajeel and A. B. Ahmed, "Influence of the boron doping and Stone–Wales defects on the thermoelectric performance of graphene nanoribbons," The European Physical Journal B, vol. 96, no. 10, p. 127, 2023. [Google Scholar] [Crossref]

12. P. Sharma, P. Yadav, A. Kumar, and H. Mudila, "Exploration of graphene quantum dots: Design, properties, energy storage and conversion," Journal of Power Sources, vol. 630, p. 236177, 2025. [Google Scholar] [Crossref]

13. L. Tang, R. Ji, X. Li, K. S. Teng, and S. P. Lau, "Energy-level structure of nitrogen-doped graphene quantum dots," Journal of materials chemistry C, vol. 1, no. 32, pp. 4908-4915, 2013. [Google Scholar] [Crossref]

14. S. A. Prabhu, V. Kavithayeni, R. Suganthy, and K. Geetha, "Graphene quantum dots synthesis and energy application: a review," Carbon Letters, vol. 31, no. 1, pp. 1-12, 2021. [Google Scholar] [Crossref]

15. G. Arora, N. S. Sabran, B. Zhang, and H. Jun, "Enhanced energy storage in electric double-layer capacitors using boron-doped graphene and upcycled carbon quantum dots derived from spent coffee grounds as electrode materials," Chemical Physics Impact, vol. 10, p. 100838, 2025. [Google Scholar] [Crossref]

16. S. A. Ansari, "Graphene quantum dots: novel properties and their applications for energy storage devices," Nanomaterials, vol. 12, no. 21, p. 3814, 2022. [Google Scholar] [Crossref]

17. P. Cui and Y. Xue, "Sulfication-induced non-radiative electron-hole recombination dynamics in graphene quantum dots for tuning photocatalytic performance," Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, vol. 287, p. 122117, 2023. [Google Scholar] [Crossref]

18. X. Niu, Y. Li, H. Shu, and J. Wang, "Revealing the underlying absorption and emission mechanism of nitrogen doped graphene quantum dots," Nanoscale, vol. 8, no. 46, pp. 19376-19382, 2016. [Google Scholar] [Crossref]

19. Y. A. Kumar et al., "Recent advancement in quantum dot-based materials for energy storage applications: a review," Dalton Transactions, vol. 52, no. 25, pp. 8580-8600, 2023. [Google Scholar] [Crossref]

20. W. Liu et al., "Graphene quantum dots‐based advanced electrode materials: design, synthesis and their applications in electrochemical energy storage and electrocatalysis," Advanced Energy Materials, vol. 10, no. 29, p. 2001275, 2020. [Google Scholar] [Crossref]

21. G. Tatrari, M. Karakoti, M. Pathak, A. Dandapat, T. Rath, and N. G. Sahoo, "Quantum dots based materials for new generation supercapacitors application: a recent overview," in Mater. Res. Forum LLC, 2021, vol. 96, p. 215. [Google Scholar] [Crossref]

22. S. Srivastava, V. Malik, and M. Vishnoi, "Study on effects of quantum dots in optoelectronics and hydrogen evolution: A review," Materials Today: Proceedings, vol. 45, pp. 5672-5677, 2021. [Google Scholar] [Crossref]

23. M. Al Murisi et al., "New insights on applications of quantum dots in fuel cell and electrochemical systems," International Journal of Hydrogen Energy, vol. 52, pp. 694-732, 2024. [Google Scholar] [Crossref]

24. Z. Liu et al., "Theoretical investigation of red-shifted emission of graphitic boron doping in graphene quantum dots," Diamond and Related Materials, vol. 142, p. 110815, 2024. [Google Scholar] [Crossref]

25. S. K. Khamees, F. N. Ajeel, K. H. Mohsin, and M. N. Mutier, "Influence of B, Si, Ge, and As impurities on the electronic properties of graphene quantum dot: A density functional theory study," Nano Trends, vol. 7, p. 100049, 2024. [Google Scholar] [Crossref]

26. F. N. Ajeel, M. N. Mutier, K. H. Mohsin, S. K. Khamees, A. M. Khudhair, and A. B. Ahmed, "Theoretical Study on Electronic Properties of BN Dimers Doped Graphene Quantum dots," BioNanoScience, pp. 1-9, 2024. [Google Scholar] [Crossref]

27. F. N. Ajeel, K. H. Mohsin, H. G. Shakier, S. K. Khamees, and M. N. Mutier, "Theoretical insights into tunable electronic properties of graphene quantum dots through ZnO doping," Chemical Physics Impact, vol. 7, p. 100305, 2023. [Google Scholar] [Crossref]

28. F. N. Ajeel, S. K. Khamees, K. H. Mohsin, and M. N. Mutier, "Effect of AlN dimers on the electronic properties of graphene quantum dot: DFT investigations," Chemical Physics Impact, vol. 7, p. 100364, 2023. [Google Scholar] [Crossref]

29. F. N. Ajeel, Y. W. Ouda, and S. A. Abdullah, "Graphene nanoflakes as a nanobiosensor for amino acid profiles of fish products: Density functional theory investigations," Drug Invention Today, vol. 12, no. 12, 2019. [Google Scholar] [Crossref]

30. A. M. Khudhair, K. H. Bardan, A. Almusawe, and F. N. Ajeel, "Enhancement the electronic and optical properties for the dye Disperse Orange 13 and using in the solar cell device," in IOP Conference Series: Materials Science and Engineering, 2020, vol. 928, no. 7: IOP Publishing, p. 072031. [Google Scholar] [Crossref]

31. D. Maity, R. Sharma, K. R. Sahoo, A. Lal, R. Arenal, and T. N. Narayanan, "Tuning the electronic structure of monolayer Mo S 2 towards metal like via vanadium doping," Physical Review Materials, vol. 8, no. 8, p. 084002, 2024. [Google Scholar] [Crossref]

32. F. N. Ajeel, M. H. Mohammed, and A. M. Khudhair, "Electronic, thermochemistry and vibrational properties for single-walled carbon nanotubes," Nanoscience & Nanotechnology-Asia, vol. 8, no. 2, pp. 233-239, 2018. [Google Scholar] [Crossref]

33. N. M. El-Sayed, H. Elhaes, A. Ibrahim, and M. A. Ibrahim, "Investigating the electronic properties of edge glycine/biopolymer/graphene quantum dots," Scientific Reports, vol. 14, no. 1, p. 21973, 2024. [Google Scholar] [Crossref]

34. F. N. Ajeel, M. N. Mutier, K. H. Mohsin, S. K. Khamees, A. M. Khudhair, and A. B. Ahmed, "Theoretical Study on Electronic Properties of BN Dimers Doped Graphene Quantum dots," BioNanoScience, vol. 14, no. 2, pp. 1110-1118, 2024. [Google Scholar] [Crossref]

35. A. Vig, E. Doan, and K. Yang, "First-Principles Investigation of Size Effects on Cohesive Energies of Transition-Metal Nanoclusters," Nanomaterials, vol. 13, no. 16, p. 2356, 2023. [Google Scholar] [Crossref]

36. L. Glasser and D. A. Sheppard, "Cohesive energies and enthalpies: Complexities, confusions, and corrections," Inorganic chemistry, vol. 55, no. 14, pp. 7103-7110, 2016. [Google Scholar] [Crossref]

37. L. Michal et al., "Long-Range Magnetic Order in Nickel Hydroxide-Functionalized Graphene Quantum Dots," The journal of physical chemistry letters, vol. 13 49, pp. 11536-11542, 2022-12-07 2022, doi: 10.1021/acs.jpclett.2c02964. [Google Scholar] [Crossref]

38. A. Rad and K. Ayub, "Nonlinear optical and electronic properties of Cr-, Ni-, and Ti- substituted C20 fullerenes: A quantum-chemical study," Materials Research Bulletin, vol. 97, pp. 399-404, 2018, doi: 10.1016/J.MATERRESBULL.2017.09.036. [Google Scholar] [Crossref]

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