Evaluation of the Effect of Precursor NMC622@TiO2 Core-Shell Powders Using a Prelithiated Anode from Fig Seeds: Spotlight on Li-ion Full-Cell Performance
- Authors
- Whba, Rawdah; Dogan, Ebru; Moeez, Iqra; Bhatti, Ali Hussain Umar; Akbar, Muhammad; Chung, Kyung Yoon; Altin, Emine; Nurullah Ates, Mehmet; Altundag, Sebahat; Stoyanova, Radostina; Sahinbay, Sevda; Altin, Serdar
- Issue Date
- 2024-12
- Publisher
- American Chemical Society
- Citation
- ACS Applied Materials & Interfaces, v.16, no.51, pp.70442 - 70459
- Abstract
- In this study, innovative electrode materials for lithium-ion batteries (LIBs) were developed and characterized, demonstrating significant performance enhancements. Initially, NMC622@TiO2 was synthesized using a wet-chemical method with titanium(IV) ethoxide as the Ti source. Advanced structural investigations confirmed the successful formation of a core@shell structure with negligible cation mixing (Li+/Ni2+) at the NMC622 surface, contributing to enhanced electrochemical performance. Subsequently, carbon-based anode materials were produced from biomass, specifically figure seeds, and subjected to high-temperature heat treatment. The resulting powders exhibited dominant graphitic properties, evidenced by a Raman I D/I G ratio of 0.5. Electrochemical evaluations of both electrode materials were conducted using half-cell configurations. The optimization of the TiO2 coating process was assessed through half-cell performance metrics and diffusion rates calculated from galvanostatic intermittent titration technique (GITT) experiments. The final phase focused on full-cell design, employing a prelithiation strategy for anodes using a direct contact technique. Optimization of the prelithiation process led to the assembly of full cells combining NMC622/prelithiated figure-seed anodes and NMC622@TiO2/prelithiated figure-seed anodes. The results revealed that TiO2-coated NMC622, paired with prelithiated carbon anodes derived from figure seeds, delivered superior performance compared to uncoated NMC622 full cells. This study underscores the potential of biomass-derived carbon anodes and TiO2 coatings in enhancing the efficiency and performance of LIBs.
- Keywords
- ELECTROCHEMICAL PERFORMANCE; BATTERIES; TIO2; CARBON; ELECTRODES; NICKEL; LAYER; SEI; NMC; CATHODE MATERIAL; core-shell; prelithiation process; figureseeds; electrochemical performance; lithium-ion battery; electrodes; NMC622
- ISSN
- 1944-8244
- URI
- https://pubs.kist.re.kr/handle/201004/151470
- DOI
- 10.1021/acsami.4c11557
- Appears in Collections:
- KIST Article > 2024
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