Ebru Doğan, Iqra Moeez, Rawdah Whba, Sadan Ozcan, Mitat Akkoç, Emine Altin, Messaoud Harfouche, Aydin Aktas, Fatih Bulut, Muhammad Arshad, İsmaıl Özdemır, Şaban Patat, Kyung Yoon Chung, Sevda Sahinbay, Serdar Altın
The development of cost-effective, high-performance sodium-ion batteries (SIBs) is essential for large-scale energy storage systems. In this study, low-cost SIBs are fabricated using P2-type Na 0.67 Mn 0.9 Ni 0.1 O 2 as the cathode and hard carbon (HC) derived from lavender flower waste as the anode. The synthesis of both electrode materials from widely accessible precursors ensures scalability and environmental sustainability. To address the sodium deficiency of HC, three different presodiation strategies—electrochemical, chemical, and direct contact—are systematically investigated, and the electrochemical performances of the full cells are compared. This evaluation reveals significant variations in the initial capacity, capacity retention, Coulombic efficiency, and rate performance. Although the direct-contact method delivers the highest initial capacity, electrochemical presodiation delivers superior long-term cycling stability and enhanced energy density. This comprehensive comparison of the electrochemical performance emphasizes the vital role of presodiation in enhancing the full-cell efficiency, while highlighting the potential methods for developing cost-effective and sustainable SIBs. We developed cost-effective sodium-ion batteries using Na 0.67 MnNiO 2 as the cathode and lavender flower waste-derived hard carbon as the anode and also compared its performance with various presodiation strategies, including direct-contact, electrochemical, and chemical methods. • Cost-effective, high-performance sodium-ion batteries (SIBs) are desired. • We fabricate low-cost SIBs and investigate presodiation methods. • The electrodes use accessible precursors, ensuring scalability and sustainability. • Direct contact presodiation provides the highest initial full-cell capacity. • Electrochemical presodiation provides superior cycling stability and energy density.