Rima Heider Al Omari, Magdi E. A. Zaki, G. Padma Priya, Amaal Mohammed Ali, Yesudass Sasikumar, Ahmed Aldulaimi, Renu Sharma, Sobhi M. Gomha, Shaima Messa
Quantum confinement profoundly influences the catalytic and electronic behavior of perovskite quantum dots (PQDs), opening new frontiers for advanced lithium-based energy storage. This review systematically explores how size-dependent d-band modulation, defect-induced mid-gap states, and built-in electric fields govern the catalytic efficiency, charge transfer, and ion dynamics within PQD interfaces. By integrating density functional theory (DFT) insights with recent experimental findings, it elucidates confinement-driven mechanisms that enhance polysulfide conversion, suppress dendrite growth, and improve the exciton-to-charge conversion efficiency. As the first comprehensive study focusing on quantum confinement-induced catalysis of PQDs in lithium battery systems, this work bridges fundamental physics with electrochemical functionality. Emerging directions – including photocatalytic lithium‒sulfur (Li‒S) batteries, high-entropy electrolytes, and sustainable Pb recycling – have been critically evaluated in terms of performance and environmental impact. Finally, challenges in stability, toxicity, and scalability are discussed, with perspectives on AI-guided predictive design toward multifunctional, sustainable PQD-based energy devices.