TY - JOUR
T1 - Revolutionary NiCo layered double hydroxide electrodes
T2 - Advances, challenges, and future prospects for high-performance supercapacitors
AU - Shah, Syed Shaheen
AU - Aziz, Md Abdul
AU - Ogawa, Takaya
AU - Zada, Laiq
AU - Marwat, Mohsin Ali
AU - Abdullah, Syed Muhammad
AU - Khan, Abdul Jabbar
AU - Usman, Muhammad
AU - Khan, Ibrahim
AU - Said, Zafar
AU - Oyama, Munetaka
N1 - Publisher Copyright:
© 2025 The Authors
PY - 2025/9
Y1 - 2025/9
N2 - The increasing global energy demand and transition to renewable sources emphasize the critical need for advanced energy storage technologies. Supercapacitors, with their high power density, rapid charge/discharge rates, and long cycle life, have emerged as a promising solution. Among various electrode materials, NiCo layered double hydroxides (NiCoLDHs) are particularly notable due to their tunable composition, large surface area, high electrical conductivity, multiple redox states, and exceptional redox activity. This review comprehensively explores the structural and electrochemical properties of NiCoLDHs, highlighting recent advancements in their development as revolutionary electrode materials for supercapacitors. Strategies for enhancing capacitance, such as doping with metals/non-metals, hybridization with carbon materials (e.g., graphene, carbon nanotubes, biomass-derived carbon), and integration with metal oxides, sulfides, selenides, MXenes, MOFs, and conducting polymers, are systematically discussed. Additionally, synthetic methodologies and their impact on electrochemical performance are explored. Current challenges, including scalable synthesis, structural stability, and enhanced energy and power densities, are addressed. Insights from computational modeling and density functional theory provide guidance for optimizing performance at commercial scales. This work provides an overview of advances in NiCoLDHs for next-generation, cost-effective, and sustainable energy storage devices.
AB - The increasing global energy demand and transition to renewable sources emphasize the critical need for advanced energy storage technologies. Supercapacitors, with their high power density, rapid charge/discharge rates, and long cycle life, have emerged as a promising solution. Among various electrode materials, NiCo layered double hydroxides (NiCoLDHs) are particularly notable due to their tunable composition, large surface area, high electrical conductivity, multiple redox states, and exceptional redox activity. This review comprehensively explores the structural and electrochemical properties of NiCoLDHs, highlighting recent advancements in their development as revolutionary electrode materials for supercapacitors. Strategies for enhancing capacitance, such as doping with metals/non-metals, hybridization with carbon materials (e.g., graphene, carbon nanotubes, biomass-derived carbon), and integration with metal oxides, sulfides, selenides, MXenes, MOFs, and conducting polymers, are systematically discussed. Additionally, synthetic methodologies and their impact on electrochemical performance are explored. Current challenges, including scalable synthesis, structural stability, and enhanced energy and power densities, are addressed. Insights from computational modeling and density functional theory provide guidance for optimizing performance at commercial scales. This work provides an overview of advances in NiCoLDHs for next-generation, cost-effective, and sustainable energy storage devices.
KW - Composite materials
KW - Electrochemical energy storage
KW - High energy density
KW - Layered double hydroxides
KW - Synthesis and applications
UR - http://www.scopus.com/inward/record.url?scp=105008385816&partnerID=8YFLogxK
U2 - 10.1016/j.mser.2025.101041
DO - 10.1016/j.mser.2025.101041
M3 - Review article
AN - SCOPUS:105008385816
SN - 0927-796X
VL - 166
JO - Materials Science and Engineering R: Reports
JF - Materials Science and Engineering R: Reports
M1 - 101041
ER -