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Статья

Sustainable Synthesis and Interfacial Engineering of Graphene Quantum Dot Photocatalysts for Advanced Water Purification

Kamel A. SalehFaculty of Allied Medical Sciences, Hourani Center for Applied Scientific Research Al‐Ahliyya Amman University Amman JordanPraharshkumar B. RajDepartment of Chemistry, Faculty of Science Gokul Global University Sidhpur Gujarat IndiaMasharipov Kamolbek Ko'palovichDepartment of Natural Science Mamun University Khiva UzbekistanHussein Khaled NwrDepartment of Medical Laboratory Technologies, College of Medical Technologies The Islamic University Najaf IraqOmayma Salim WaleedDepartment of Anesthesia Techniques, Health and Medical Techniques College Alnoor University Mosul IraqHarvinder Singh SohalDepartment of Chemistry, University Institute of Sciences Chandigarh University Mohali Punjab IndiaDivya SinghalDepartment of Chemistry & Biochemistry, Sharda School of Engineering & Sciences Sharda University Greater Noida IndiaTaraneh Hieunaz ChavoushiIslamic Azad University North Tehran Branch
2026en
ABI

Аннотация

ABSTRACT Graphene quantum dots (GQDs) are promising photocatalytic nanomaterials for sustainable water purification because of their tunable electronic structure, abundant active sites, and efficient interfacial charge‐transfer capability. This review critically examines sustainable synthesis and interface‐engineering strategies for GQD‐based photocatalysts, with emphasis on the structure–property relationships governing their performance. Biomass‐derived, hydrothermal, microwave‐assisted, and ultrasound‐mediated routes are evaluated in terms of structural control, environmental impact, reproducibility, and scalability. The roles of quantum confinement, defects, edge chemistry, and surface interactions in charge separation, reactive oxygen species generation, and pollutant degradation are also discussed. Unlike previous reviews that primarily catalogue synthesis methods or photocatalytic efficiencies, this work establishes an integrated synthesis–structure–interface–performance framework linking precursor selection, electronic structure, interfacial charge utilization, catalyst stability, and realistic water‐treatment deployment. Evidence from dye degradation, volatile organic compound removal, and complex aqueous remediation indicates that performance depends on the combined effects of adsorption, surface reactivity, and interfacial electron dynamics. Finally, life‐cycle sustainability, catalyst recovery, fouling, scalable production, and circular treatment integration are critically assessed to guide the practical advancement of GQD photocatalysts.

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