My research focuses on the development of advanced nanomaterials for electrochemical energy storage and energy conversion. I am particularly interested in understanding the relationship between material structure, surface chemistry, electrochemical properties, and device performance.
Electrochemical Energy Storage
Development of advanced electrode materials and electrolytes for high-performance supercapacitors and next-generation energy-storage devices.
Supercapacitors
Design of manganese oxide-, nickel-based, and nanostructured electrode materials to improve energy density, power capability, rate performance, and long-term cycling stability.
Electrocatalysis
Investigation of transition-metal-based electrocatalysts for oxygen evolution reaction (OER) and other electrochemical energy-conversion reactions.
Nanomaterials & 2D Materials
Development and structural engineering of nanomaterials, layered materials, and heterostructures for energy-storage and electrocatalytic applications.
Structure - Property Relationships
Understanding how crystallinity, morphology, composition, surface chemistry, and structural evolution influence electrochemical activity and stability.