Sammanfattning
To produce high-performance anode materials for lithium/sodium batteries via sustainable strategies is still one of the most essential tasks in battery research. A biomass-based carbon-tin oxide composite (BC/SnO2) is prepared through pyrolysis of birch tree waste using phosphoric acid as an activator and its electrochemical performance as a sustainable anode material in lithium-ion batteries (LIBs) and sodium-ion batteries (NIBs) is tested. The physicochemical characterization results proved that SnO2 has a remarkable impact on BC/SnO2 porosity, morphology, and physicochemical features. Due to these favorable properties, the BC/SnO2 anode exhibited far better performance for LIBs and NIBs than bare carbon (BC). Against Li metal, the BC/SnO2 anode delivered a specific capacity of 319 mA h g-1 while BC delivered only 93.2 mA h g-1 (at 1C) at the end of 120 cycles. The BC/SnO2 composite showed excellent rate performances at different current densities, exhibiting a capacity of 453 mA h g-1 at the end of 120 cycles. Upon testing against sodium metal, the BC/SnO2 composite exhibited better cycling stability than BC (233 mA h g-1 compared with 165 mA h g-1) at 100 mA g-1 for 120 cycles. A theoretical investigation of the interactions between BC and SnO2 was performed using the semi-empirical GFN1-xTB method. The stability of the mixed system at high temperatures was confirmed using molecular dynamic simulations. Finally, we analyzed the electronic properties of the BC/SnO2 composite and drew conclusions about the electrical conductivity. Therefore, our research strategy helps to produce sustainable high-specific capacity anode materials from biomass resources for building cost-effective metal-ion batteries.
| Originalspråk | Engelska |
|---|---|
| Sidor (från-till) | 14000-14014 |
| Antal sidor | 15 |
| Tidskrift | Physical Chemistry Chemical Physics |
| Volym | 27 |
| Nummer | 26 |
| DOI | |
| Status | Publicerad - 2025 |
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Publisher Copyright:© 2025 The Royal Society of Chemistry.
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