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Статья

Interfacial chemistry and radiation-resistant surface engineering of CsPbBr <sub>3</sub> quantum dots for energy conversion applications

Chou-Yi HsuDepartment of Pharmacy, Chia Nan University of Pharmacy and ScienceShaikh Hasibul MajidManager, Renewable Energy and Environmental Technology Center, University: University of TabukIhsan A. OmranDepartment of Medical Analysis, Medical Laboratory Technique College, The Islamic UniversityI.B. SapaevScientific Researcher, Western Caspian UniversitySubbulakshmi GanesanDepartment of Chemistry and Biochemistry, School of Sciences, JAIN (Deemed to be University)Anupam AgarwalDepartment of Chemistry & Biochemistry, Sharda School of Engineering & Science, Sharda UniversityRenu SharmaDepartment of Chemistry, University Institute of Sciences, Chandigarh UniversityC. P. SuryaDepartment of Chemistry, Sathyabama Institute of Science and TechnologyMuhammad Shahid IqbalDepartment of Clinical Pharmacy, College of Pharmacy, Prince Sattam Bin Abdulaziz UniversitySharmin SmaeilpourYoung Researchers and Elite Club, Tehran Branch, Islamic Azad University
2026en
ABI

Аннотация

The development of radiation-tolerant halide perovskite nanomaterials is essential for next-generation nuclear energy conversion systems operating under extreme environments. This review presents the first comprehensive and integrated analysis of the interfacial chemistry and surface engineering of all-inorganic CsPbBr3 quantum dots (QDs) specifically designed for nuclear battery applications. We discuss how ligand coordination, inorganic encapsulation (SiO2, Al2O3) and dopant incorporation (Mn2 +, Eu3 +) influence the chemical stability, defect passivation and radioluminescence efficiency of CsPbBr3 QDs under ionising radiation. Particular attention is given to the relationship between interfacial bonding, quantum confinement and radiation-induced degradation mechanisms. These insights provide a chemistry-driven understanding of how controlled surface modification can yield radiation-hardened perovskite nanostructures with enhanced charge transport and optical performance, establishing a pathway toward durable and efficient nuclear battery and radioluminescent energy devices.

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