Anandhavalli Jeevarathinam, Arun Annamalai, Sundaravadivel Elumalai, Sambasivam Sangaraju, Fathy M. Hassan
Defect engineering has emerged as a transformative strategy for optimizing electrochemical energy storage materials. The crystal structure, electrical configuration, and ion transport channels of electrode materials may be systematically customized by deliberately introducing structural defects, such as vacancies, dopants, grain boundaries, dislocations, and heteroatom replacements. This paper emphasizes how the development of high performance supercapacitors and associated storage technologies is driven by defect induced improvements, such as advantageous band structure modification, increased electroactive surface areas, and rapid charge transfer. Special attention is given to new synthetic methods and sophisticated characterization techniques that enable accurate detection and defect formation. We also establish relationships among defect types, formation processes, and electrochemical characteristics, providing a comprehensive picture of carbons, MXenes, transition metal oxides, and hybrid systems. Data-driven predictive defect design, scalable synthesis pathways, and next-generation in situ/operando probes are some of the topics we cover in our last section on future research prospects. Defect engineering is positioned in this context as a paradigm-shifting methodology for creating next-generation energy storage electrodes rather than as a passive alteration.