1 Department of Mechanical Engineering, Akwa Ibom State University, Mkpat Enin, Nigeria.
2 Department of Physics, Tezpur University, India.
3 Department of Mechanical Engineering, University of Ilorin, Nigeria.
4 Department of Biological Sciences, University of Camerino, Italy.
5 Department of Electrical/Electronics Engineering, Nile University of Nigeria, Abuja.
6 Department of Physics, Lagos State University, Ojo, Lagos, Nigeria.
7 Department of Physics, North Carolina Agricultural and Technical State University, USA
World Journal of Advanced Engineering Technology and Sciences, 2025, 16(03), 470-498
Article DOI: 10.30574/wjaets.2025.16.3.1358
Received on 15 August 2025; revised on 22 September 2025; accepted on 24 September 2025
As the global demand for sustainable energy storage escalates, sodium-ion batteries (SIBs) have emerged as a promising alternative to lithium-ion systems, leveraging the abundance and low cost of sodium. This review illuminates the transformative potential of hybrid anode systems, which integrate advanced materials such as carbon-based structures, metals, alloys, and transition metal oxides to overcome the limitations of conventional SIB anodes. By synergistically combining multiple sodium storage mechanisms—intercalation, alloying, and conversion—these systems achieve remarkable specific capacities, enhanced rate capabilities, and prolonged cycling stability, positioning them as cornerstones for next-generation SIBs. The exploration of synthesis techniques, including electrospinning and ball milling, alongside structural optimizations like core-shell and porous architectures, reveals pathways to mitigate challenges such as volume expansion and unstable solid electrolyte interphase formation. The critical role of electrolytes and binders in stabilizing electrochemical performance is also examined, underscoring their impact on coulombic efficiency and long-term durability. Despite these advances, hurdles in scalability, cost, and environmental sustainability persist, necessitating innovative solutions like bio-derived materials and machine learning-driven design. This review synthesizes these insights, offering a comprehensive roadmap for researchers and industry stakeholders to advance hybrid anode technology. By addressing current challenges and embracing emerging trends, hybrid anodes hold the promise of propelling SIBs toward widespread adoption, fueling a sustainable energy future with robust, high-performance storage solutions.
Sodium-Ion Batteries; Hybrid Anodes; Advanced Materials; Electrochemical Performance; Carbon-Based Composites; Alloying Materials; Transition Metal Oxides; Sustainable Energy Storage
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Ezekiel Ezekiel Smart, Ibrahim Lawal Abdullahi, Muhammad Bolakale Salman, Fawaz Olabanji Nasir, Jude Ifeanyichukwu Ishiwu, Caleb Omata Ilabija and Damola Habeeb Adebayo. Hybrid sodium-ion battery anode systems: integrating advanced materials for high-performance storage. World Journal of Advanced Engineering Technology and Sciences, 2025, 16(03), 470-498. Article DOI: https://doi.org/10.30574/wjaets.2025.16.3.1358.