First-Principles Study of Fe₂O₃-Doped Graphene: Structural, Electronic, Magnetic and Optical Insights

Main Article Content

Hayder M. Hadi

Abstract

This study presents a comprehensive theoretical investigation into how iron (III) oxide (Fe₂O₃) doping alters the structural, electronic, optical, magnetic and thermodynamic properties of graphene. A finite-size C52 graphene cluster was used to simulate localised doping effects using Density Functional Theory (DFT) and Time-Dependent DFT (TD-DFT). The introduction of Fe₂O₃ significantly reduced the bandgap to ~1.6 eV and introduced mid-gap states, indicating enhanced semiconducting behaviour and reactivity, as confirmed by highest occupied molecular orbital and the lowest unoccupied molecular orbital (HOMO–LUMO) gap and density of states (DOS) analyses. Optical simulations revealed increased absorbance in the visible spectrum, with characteristic peaks at 310 nm and 395 nm linked to Fe-graphene hybrid orbitals. Magnetic property analysis revealed increased anisotropy and shielding near Fe and O atoms, indicating the formation of localised magnetic moments. Structurally, Fe–C and Fe–O bonds formed stably, with minimal lattice distortion. Vibrational and thermodynamic analyses confirmed increased thermal stability and lower formation enthalpy. The novelty of this work lies in employing a finite-cluster DFT/TD-DFT model that captures localised Fe–O–C interactions and anisotropic magnetic behaviour, which are often overlooked in periodic systems. This integrated approach simultaneously explains the structural, electronic, and optical coupling mechanisms in Fe₂O₃-doped graphene, providing molecular-level insights consistent with experimental observations but previously unquantified theoretically. These findings highlight the potential of Fe₂O₃-doped graphene in optoelectronic devices, photocatalysis, spintronics and energy-related applications.

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First-Principles Study of Fe₂O₃-Doped Graphene: Structural, Electronic, Magnetic and Optical Insights. (2026). Journal of Physical Science, 37(2), 51-71. https://doi.org/10.21315/jps2026.37.2.4
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References

Thakur, S. et al. (2018). A DFT study of structural, electronic and optical properties of heteroatom doped monolayer graphene. Optik, 168, 228–236. https://doi.org/10.1016/j.ijleo.2018.04.099

Shih, P. H. et al. (2020). Electronic and optical properties of doped graphene. Phys. E, 118, 113894. https://doi.org/10.1016/j.physe.2019.113894

Rini, A. S. et al. (2023). Synthesis and characterisation of ZnO/Ag nanocomposites prepared via green method using pineapple peel extract for photocatalytic enhancement in degrading methylene blue dye solutions. J. Phys. Sci., 34(2), 59–73. https://doi.org/10.21315/jps2023.34.2.5

Dai, X. S. et al. (2019). DFT study on electronic and optical properties of graphene modified by phosphorus. Mater. Res. Express, 6(8), 085605. https://doi.org/10.1088/2053-1591/ab29bc

Hussein, H. G. & Salih, R. O. (2023). Density functional theory study of the interaction between a nitrogen-boron-doped graphene nanosheet. Passer J. Basic Appl. Sci., 5(2), 218–223. https://doi.org/10.24271/PSR.2023.384804.1249

Sahoo, R. R. et al. (2021). Stability, phase and absorption analysis of 4-alkenyl bicyclohexylnitrile: Thermodynamic and spectroscopic approaches. J. Phys. Sci., 32(1), 27–38. https://doi.org/10.21315/jps2021.32.1.3

Feng, J. et al. (2018). Theoretical study on the optical and electronic properties of graphene quantum dots doped with heteroatoms. Phys. Chem. Chem. Phys., 20(22), 15244–15252. https://doi.org/10.1039/c8cp01403e

Kumar, S. et al. (2021). DFT study on the structural, optical and electronic properties of platinum group doped graphene. Mater. Today Commun., 26, 101755. https://doi.org/10.1016/j.mtcomm.2020.101755

Raheem, A. H. A. et al. (2025). Development of graphene oxide/iron oxide nanocomposite preparation from Myrtus communis extract by two methods for the gas sensor application. Diam. Relat. Mater., 153, 112101. https://doi.org/10.1016/j.diamond.2025.112101

Noor, R. et al. (2025). Investigating the synergetic effects of Fe₂O₃ with variable graphene oxide concentration for supercapacitors. J. Electron. Mater., 54(12), 11026–11038. https://doi.org/10.1007/s11664-025-12441-1

Puspitasari, P. & Yazirin, C. (2020). Synthesis and characterization of Fe₂O₃ doped graphene by co-precipitation method. In Proc. 7th Int. Conf. Electr. Electron. Eng. (ICEEE), 343–346. https://doi.org/10.1109/ICEEE49618.2020.9102551

Ullah, S. et al. (2017). Rectangular and hexagonal doping of graphene with B, N, and O: A DFT study. RSC Adv., 7(26), 16064–16068. https://doi.org/10.1039/c6ra28837e

Pu, N. W. et al. (2018). Hydrothermal synthesis of N-doped graphene/Fe₂O₃ nanocomposite for supercapacitors. Int. J. Electrochem. Sci., 13(7), 6812–6823. https://doi.org/10.20964/2018.07.16

Wang, Y. et al. (2019). Theoretical studies on the structures and properties of doped graphenes with and without an external electrical field. RSC Adv., 9(21), 11939–11950. https://doi.org/10.1039/c9ra00326f

Tristant, D. et al. (2015). Theoretical study of graphene doping mechanism by iodine molecules. J. Phys. Chem. C, 119(21), 12071–12078. https://doi.org/10.1021/acs.jpcc.5b03246

Tyagi, J. et al. (2019). Graphene and doped graphene: A comparative DFT study. Adv. Mater. Lett., 10(7), 484–490. https://doi.org/10.5185/amlett.2019.2168

Nath, P. et al. (2014). Ab-initio calculation of electronic and optical properties of nitrogen and boron doped graphene nanosheet. Carbon, 73, 275–282. https://doi.org/10.1016/j.carbon.2014.02.064

Luo, Z. et al. (2024). Recent advances in iron oxide/graphene composites for flexible supercapacitors. J. Alloys Compd., 980, 173614. https://doi.org/10.1016/j.jallcom.2024.173614

Yasmin, S. et al. (2015). Determination of dopamine by dual doped graphene-Fe₂O₃ in presence of ascorbic acid. J. Electrochem. Soc., 162(14), B363–B369. https://doi.org/10.1149/2.0751514jes

Luo, Q. et al. (2022). Density functional theory study on the electronic, optical and adsorption properties of Ti-, Fe- and Ni-doped graphene. SSRN Electron. J., forthcoming. https://doi.org/10.2139/ssrn.4133356

Ahmed, R. M. et al. (2023). Influence of Fe₂O₃@reduced graphene oxide nanocomposite on the structural, morphological, and optical features of the polyvinyl alcohol films for optoelectronic applications. Phys. Scr., 98(5), 055928. https://doi.org/10.1088/1402-4896/accb15

Rangel-Vázquez, N. A. et al. (2025). DFT-based functionalisation of graphene with lithium-modified groups for enhanced hydrogen detection: Thermodynamic, electronic, and spectroscopic properties. Nanomater., 15(16), 1234. https://doi.org/10.3390/nano15161234

Zhao, P. et al. (2014). Facile hydrothermal fabrication of nitrogen-doped graphene/Fe₂O₃ composites as high-performance electrode materials for supercapacitor. J. Alloys Compd., 604, 87–93. https://doi.org/10.1016/j.jallcom.2014.03.106

Pan, Y. et al. (2026). Fe-based multi-interfacial engineering composites for broadband electromagnetic wave absorption. Nano Res., 19(2), 94908326. https://doi.org/10.26599/NR.2026.94908326

Shih, P. H. et al. (2019). Magneto-electronic and optical properties of Si-doped graphene. Carbon, 144, 608–614. https://doi.org/10.1016/j.carbon.2018.12.040

Ulian, G. & Valdrè, G. (2023). Facile band gap tuning in graphene–brucite heterojunctions. Sci. Rep., 13(1), 50037. https://doi.org/10.1038/s41598-023-50037-z

Abdelazeez, A. A. A. et al. (2023). Tuning the structural, electronic, and optical properties of monolayer graphene through heteroatom doping: A first-principles study with future light sensing applications. Photonics, 10(7), 838. https://doi.org/10.3390/photonics10070838

Zhan, M. et al. (2025). Graphene oxide research: Current developments and future directions. Nanomater., 15(7), 507. https://doi.org/10.3390/nano15070507

Su, X. et al. (2023). Theoretical study of the defects and doping in tuning the electrocatalytic activity of graphene for CO₂ reduction. Nanomater., 13(15), 2273. https://doi.org/10.3390/nano13152273

Rani, P. et al. (2014). DFT study of optical properties of pure and doped graphene. Phys. E, 62, 28–35. https://doi.org/10.1016/j.physe.2014.04.010

Polfus, J. M. & Jayasayee, K. (2019). Robust nanocomposites of α-Fe₂O₃ and N-doped graphene oxide: Interfacial bonding and chemisorption of H₂O. Carbon, 152, 497–502. https://doi.org/10.1016/j.carbon.2019.05.033

Frisch, M. J. et al. (2009). Gaussian 09, Revision D.01. Gaussian, Inc., Wallingford, CT, USA.

He, L. et al. (2014). Enhanced visible activities of α-Fe₂O₃ by coupling N-doped graphene and mechanism insight. ACS Catal., 4(3), 990–998. https://doi.org/10.1021/cs401122e

Low, W. H. et al. (2019). A facile synthesis of graphene/Co₃V₂O₈ nanocomposites and their enhanced charge storage performance in electrochemical capacitors. J. Sci. Adv. Mater. Dev., 4(4), 515–523. https://doi.org/10.1016/j.jsamd.2019.10.001

Hu, C. et al. (2013). A brief review of graphene–metal oxide composites synthesis and applications in photocatalysis. J. Chin. Adv. Mater. Soc., 1(1), 21–39. https://doi.org/10.1080/22243682.2013.771917

Khan, M. et al. (2015). Graphene based metal and metal oxide nanocomposites: Synthesis, properties and their applications. J. Mater. Chem. A, 3(37), 18753–18808. https://doi.org/10.1039/c5ta02240a

Jana, A. et al. (2017). Synthesis of graphene-transition metal oxide hybrid nanoparticles and their application in various fields. Beilstein J. Nanotechnol., 8, 688–714. https://doi.org/10.3762/bjnano.8.74

Castro Neto, A. H. et al. (2009). The electronic properties of graphene. Rev. Mod. Phys., 81(1), 109–162. https://doi.org/10.1103/RevModPhys.81.109

Jung, N. et al. (2009). Charge transfer chemical doping of few layer graphenes: Charge distribution and band gap formation. Nano Lett., 9(12), 4133–4137. https://doi.org/10.1021/nl902362q

Li, L. et al. (2024). Amorphous Fe₂O₃ anchored on N-doped graphene with internal micro-channels as an active and durable anode for sodium-ion batteries. Nanomater., 14(11), 937. https://doi.org/10.3390/nano14110937

Wang, R., Xu, C., Sun, J. & Gao, L. (2014). Three-dimensional Fe₂O₃ nanocubes/nitrogen-doped graphene aerogels: Nucleation mechanism and lithium storage properties. Sci. Rep., 4, 7171. https://doi.org/10.1038/srep07171

Joucken, F. et al. (2019). Electronic properties of chemically doped graphene. Phys. Rev. Mater., 3(11), 110301. https://doi.org/10.1103/PhysRevMaterials.3.110301

Novoselov, K. S. et al. (2004). Electric field effect in atomically thin carbon films. Sci., 306(5696), 666–669. https://doi.org/10.1126/science.1102896

Zhu, Y. et al. (2010). Graphene and graphene oxide: Synthesis, properties, and applications. Adv. Mater., 22(35), 3906–3924. https://doi.org/10.1002/adma.201001068

Botsa, S. M. et al. (2025). Reduced graphene oxide-assisted TiO₂-Fe₂O₃ ternary nanocomposite for efficient visible-light driven photocatalysis of nitrobenzene and dye pollutants. Adv. Compos. Hybrid Mater., 8, 384. https://doi.org/10.1007/s42114-025-01431-w

Sohrabi, L. et al. (2022). The effect of Fe impurity on electronic and optical properties of graphene-like InAs: A DFT-based study. Indian J. Phys., 96(6), 1705–1714. https://doi.org/10.1007/s12648-021-02107-z

Wang, Z. et al. (2013). Facilely synthesized Fe₂O₃–graphene nanocomposite as novel electrode materials for supercapacitors with high performance. J. Alloys Compd., 552, 486–491. https://doi.org/10.1016/j.jallcom.2012.11.071

Khoshnam, M. et al. (2021). α-Fe₂O₃/graphene oxide powder and thin film nanocomposites as peculiar photocatalysts for dye removal from wastewater. Sci. Rep., 11(1), 20378. https://doi.org/10.1038/s41598-021-99849-x

Van Dao, D. et al. (2022). Hematite Fe₂O₃@nitrogen-doped graphene core-shell photocatalyst for efficient cephalexin degradation under visible light irradiation. Ceram. Int., 48(23), 34533–34542. https://doi.org/10.1016/j.ceramint.2022.08.037

Idisi, D. O. et al. (2023). Graphene oxide:Fe₂O₃ nanocomposites for photodetector applications: Experimental and ab initio density functional theory study. RSC Adv., 13(9), 6038–6050. https://doi.org/10.1039/d3ra00174a