Maleki-Ghaleh, Hossein and Moradpur-Tari, Ehsan and Shakiba, Mohammad and Ghasali, Ehsan and Dargahi, Ziba and Norouzi Arator, Danial and Behnamian, Yashar and Fallah, Ali and Zarrabi, Ali and Aghaie, Ermia and Yardani Sefidi, Pariya and Hosseini, Mir Ghasem and Akbari-Fakhrabadi, Ali and Omidvar, Hamid and Siadati, M. Hossein (2024) Highly efficient magnesium ferrite/graphene nano-heterostructure for visible-light photocatalytic applications: experimental and first-principles DFT studies. Sustainable Materials and Technologies, 42 . ISSN 2214-9929 (Print) 2214-9937 (Online)
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Official URL: https://dx.doi.org/10.1016/j.susmat.2024.e01159
Abstract
In this research study, the electronic structure of magnesium ferrite/graphene (MFO/Gr) nano-heterostructure for photocatalytic application was studied. The MFO nanoparticles with a median size of 85 nm were composited with Gr sheets using a photo-assisted reduction process. The XRD and SAED results, respectively, showed the spinal crystalline structure of MFO and the hexagonal structure of Gr in MFO/Gr nanocomposite. The XPS results revealed that the orbitals of MFO and Gr atoms interacted with each other, implying a Van der Waals heterojunction nanocomposite. The optical characteristics using UV–Vis diffuse reflectance spectrophotometry (UV–Vis DRS) and photoluminescence (PL) spectra demonstrated a lowering of MFO band gap from 2.05 to 1.84 eV by incorporation of Gr. Furthermore, the photoelectrocatalytic and photocatalytic dye degradation examinations showed a substantial impact of Gr on the photocatalytic activity of MFO nanoparticles: a 28-fold increase in the photocurrent and an 8-fold increase in the dye-degradation rate. The density functional theory (DFT) studies on MFO/Gr heterojunction revealed a considerable hybridization between Gr atoms orbitals (2p orbitals) and MFO atoms orbitals (Mg 3 s and Fe 3d orbitals) in the conduction band, which facilitate the transfer of photo-excited electrons from MFO to Gr. Also, the charge density difference at the MFO/Gr interface led to a polarized field at the interface, which is desirable for hindering photogenerated electron-hole recombination in the MFO/Gr nanocomposite. Along with the experimental results, the DFT results also revealed that the MFO/Gr nano-heterostructure is an excellent candidate for photocatalytic applications such as water splitting using sunlight to produce green hydrogen fuel.
Item Type: | Article |
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Uncontrolled Keywords: | Density functional theory; Magnesium ferrite/graphene; Nanocomposite; Photocatalyst; Water splitting |
Divisions: | Integrated Manufacturing Technologies Research and Application Center |
Depositing User: | Ali Fallah |
Date Deposited: | 14 Jan 2025 16:13 |
Last Modified: | 14 Jan 2025 16:13 |
URI: | https://research.sabanciuniv.edu/id/eprint/50567 |