ACS Applied Materials & Interfaces · 2021 · 107 citations · 57 references
Sodium-ion batteries (SIBs) can develop cost-effective and safe energy storage technology for substantial energy storage demands. In this work, we have developed manganese oxide (α-MnO<sub>2</sub>) nanorods for SIB applications. The crystal structure, which is crucial for high-performance energy storage, is examined systematically for the metal oxide cathode. The intercalation of sodium into the α-MnO<sub>2</sub> matrix was studied using the theoretical density functional theory (DFT) studies. The DFT studies predict Na ions' facile diffusion kinetics through the MnO<sub>2</sub> lattice with an attractively low diffusion barrier (0.21 eV). When employed as a cathode material for SIBs, MnO<sub>2</sub> showed a moderate capacity (109 mAh·g<sup>-1</sup> at C/20 current rate) and superior life cyclability (58.6% after 800 cycles) in NaPF<sub>6</sub>/EC+DMC (5% FEC) electrolyte. It shows a much higher capacity of 181 mAh·g<sup>-1</sup> (C/20 current rate) in NaClO<sub>4</sub>/PC (5% FEC) electrolyte, though it suffers fast capacity fading (11.5% after 800 cycles). Our findings show that high crystallinity and hierarchical nanorod morphology of the MnO<sub>2</sub> are responsible for better cycling performance in conjunction with fast and sustained charge-discharge behaviors.
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Lithium metal anodes for rechargeable batteries
Wu Xu, Jiulin Wang, Fei Ding et al. · Energy & Environmental Science · 2013 · 4.5K citations
Shinichi Komaba, Wataru Murata, Toru Ishikawa et al. · Advanced Functional Materials · 2011 · 2K citations
Lithium‐ion Batteries, Engineering, Electrode-electrolyte Interface +21