Single-Phase Solid-Solution Reaction Facilitated Sodium-Ion Storage in Indium-Substituted Monoclinic Sodium-Iron Phosphomolybdate Cathodes
Article
Article Title | Single-Phase Solid-Solution Reaction Facilitated Sodium-Ion Storage in Indium-Substituted Monoclinic Sodium-Iron Phosphomolybdate Cathodes |
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ERA Journal ID | 3432 |
Article Category | Article |
Authors | Pinjari, Sharad Dnyanu, Mudavath, Purandas, Dutta, Ravi Chandra, Pal, Ipsita, Kundu, Dipan, Parshanaboina, Saikumar, Singh, Anand Kumar, Nanjundan, Ashok Kumar and Gaddam, Rohit Ranganathan |
Journal Title | Small |
Journal Citation | 21 (18) |
Article Number | 2501004 |
Number of Pages | 16 |
Year | 2025 |
Publisher | John Wiley & Sons |
Place of Publication | Germany |
ISSN | 1613-6810 |
1613-6829 | |
Digital Object Identifier (DOI) | https://doi.org/10.1002/smll.202501004 |
Web Address (URL) | https://onlinelibrary.wiley.com/doi/10.1002/smll.202501004 |
Abstract | Despite being a compelling alternative to the existing lithium-ion battery technology, the unavailability of cathodes with high energy density and capacity poses a key challenge toward the wider adaption of sodium-ion batteries (NIB). In this regard, iron-rich NASICONs have triggered significant attention owing to a greater abundance of Fe and higher operating voltages of Fe2+/Fe3+ redox-couple. A major roadblock in such cathodes stems from the voltage hysteresis at higher current rates. Herein, a NASICON-type NaFe2-xInx(PO4)(MoO4)2 (NFIPM) cathode is reported that shows a stable single-phase solid-solution reaction with significantly attenuated overpotential. Indium is strategically incorporated at the iron sites, expanding the lattice space to facilitate enhanced sodium-ion diffusion and also reducing the energy bandgap of NFIPM. Magnetic susceptibility (M-T) and Electron Paramagnetic Resonance (EPR) measurements reveal an increased spin state of iron following indium substitution. First principle calculations also confirm the lowering of the Na+ migration energy barrier post indium doping. The optimized NFIPM10 shows a specific capacity of 111.85 mAh g−1 at 0.1 C with remarkable cycling stability of up to 800 cycles at 2C. In situ X-ray diffraction confirms reversible structural stability of NFIPM during (de)sodiation, emphasizing the role of strategic doping in enhancing sodium-ion storage. |
Keywords | cathode |
Contains Sensitive Content | Does not contain sensitive content |
ANZSRC Field of Research 2020 | 340299. Inorganic chemistry not elsewhere classified |
401605. Functional materials | |
400404. Electrochemical energy storage and conversion | |
Byline Affiliations | Indian Institute of Science Education and Research, India |
Indian Institute of Technology Dharwad, India | |
University of Queensland | |
University of New South Wales | |
National University of Singapore | |
School of Engineering | |
Centre for Future Materials |
https://research.usq.edu.au/item/zx122/single-phase-solid-solution-reaction-facilitated-sodium-ion-storage-in-indium-substituted-monoclinic-sodium-iron-phosphomolybdate-cathodes
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Small - 2025 - Pinjari - Single‐Phase Solid‐Solution Reaction Facilitated Sodium‐Ion Storage in Indium‐Substituted.pdf | ||
License: CC BY-NC-ND 4.0 | ||
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