DR. MUHAMMAD ZULHADI ISKANDAR BIN RADZI
Universiti Malaya Power Energy Dedicated Advanced Centre
Universiti Malaya Power Energy Dedicated Advanced Centre
zi.radzium.edu.myView CV | |
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Biography | |
Dr. Zulhadi Iskandar Radzi (ZI Radzi) is a battery scientist and Senior Lecturer at the UM Power Energy Dedicated Advanced Centre (UMPEDAC), Universiti Malaya. He earned his PhD in Energy Conversion & Management from Universiti Malaya in 2024, where his research centered on manganese based cathode nanomaterials for lithium ion batteries, synthesized through low carbon footprint methods and engineered for fast charging and high power applications. Building on this foundation, his current work advances energy storage systems, nanomaterials, and sustainable battery manufacturing, with particular focus on electrode engineering, pouch cell development, and pilot scale production. Before entering academia, he developed his career at the International Battery Center Sdn Bhd (IBC), a pioneering Malaysian start up in battery energy storage established in partnership with NanoMalaysia Berhad. Rising to the role of Chief Operating Officer, he and the leadership team guided the transition of laboratory innovations into pilot and pre commercial production, drove the development of pouch cells, designed stationary battery packs, and introduced lean manufacturing practices. They also ensured compliance with international safety standards, including IEC 62133 and UN38.3, positioning IBC as a benchmark for Malaysia’s growing battery industry. Dr. Zulhadi’s contributions include three patents in advanced battery technologies that focused on sustainable solutions for electrode manufacturing. Alongside his patents, he has built a solid record of peer reviewed publications that strengthen his academic profile. Positioned at the intersection of academia and industry, he continues to champion Malaysia’s energy transition while enhancing the nation’s presence in the global battery ecosystem. |
Publication
Finance
Influence of calcination temperature on the structural properties of hydrothermally synthesized LiMn<sub>1.5</sub>Ni<sub>0.5</sub>O<sub>4</sub> cathode material: a comparative study for calculating crystallite size and lattice strain
Review of spinel LiMn2O4 cathode materials under high cut-off voltage in lithium-ion batteries: Challenges and strategies
Structural, electrical and electrochemical characterization of hybrid morphological LiNi0.5Mn1.5O4 cathode material
Improved cycling stability of V2O5 modified spinel LiMn2O4 cathode at high cut-off voltage for lithium-ion batteries
Layered and Spinel Structures as Lithium-Intercalated Compounds for Cathode Materials