Capacity Enhancement and Structural Study of Fluorine-Doped Co-Free Li- and Mn-Rich Li1.2[Mn0.5Ni0.2Fe0.1]O2(1−x)F2x Layered Oxide Cathodes
Abstract
1. Introduction
2. Materials and Methods
2.1. Synthesis of MNF Powders
2.2. Structural (XRD), Morphological (SEM/EDS), and Surface Area (BET) Analysis
2.3. XPS Measurement
2.4. Coin Cell Fabrication
2.5. Electrochemistry Tests
2.6. Ex Situ XAS Measurement
3. Results and Discussion
3.1. Material Characterization
3.1.1. SEM/EDS Morphology Analysis
3.1.2. XRD Crystal Structure Analysis:
3.1.3. XPS Analysis
3.1.4. BET Analysis (Evaluation of N2 Adsorption Data)
3.2. Electrochemistry Results
3.2.1. CV Measurement
3.2.2. Electrochemical Cycling Performance
3.2.3. EIS Analysis
3.3. XAS Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| x | a (Å) | c (Å) | c/a | Volume (Å3) | LiM2O4 wt.fract. (%) | Crystallite Size (nm) | Surface Area (m2/g) | |
|---|---|---|---|---|---|---|---|---|
| 0.0 | 2.8794 (6) | 14.268 (2) | 4.9552 | 118.29 | - | 2.20 | 12.0 | 10.2 |
| 0.025 | 2.8802 (6) | 14.282 (2) | 4.9590 | 118.48 | - | 2.39 | 13.6 | - |
| 0.05 | 2.8708 (3) | 14.289 (1) | 4.9774 | 117.76 | 8 | 2.59 | 22.5 | 9.5 |
| 0.075 | 2.8682 (4) | 14.304 (2) | 4.9871 | 117.68 | 17 | 2.68 | 23.5 | - |
| 0.10 | 2.8624 (2) | 14.292 (1) | 4.9931 | 117.10 | 24 | 3.76 | 31.6 | 5.6 |
| x | 1st Discharge Capacity @C/10 (mAh/g) | 3rd Discharge Capacity @C/3 (mAh/g) | 100th Discharge Capacity @C/3 (mAh/g) | Capacity Retention (%) | V @ Cycle 3rd (V) | ΔV @ Cycle 100th (V) |
|---|---|---|---|---|---|---|
| 0 | 242 (4) | 149 (1) | 100 (1) | 67 | 2.63 | 0.20 |
| 0.025 | 301 (5) | 207 (2) | 123 (1) | 59 | 2.87 | 0.25 |
| 0.05 | 343 (3) | 252 (3) | 156 (2) | 62 | 2.95 | 0.24 |
| 0.075 | 352 (2) | 210 (2) | 136 (2) | 64 | 2.76 | 0.15 |
| 0.10 | 209 (4) | 130 (1) | 90 (1) | 69 | 2.77 | 0.11 |
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Kucuk, K.; Aryal, S.; Ashuri, M.; Esmaeilirad, M.; Kondori, A.; Su, N.; Timofeeva, E.V.; Segre, C.U. Capacity Enhancement and Structural Study of Fluorine-Doped Co-Free Li- and Mn-Rich Li1.2[Mn0.5Ni0.2Fe0.1]O2(1−x)F2x Layered Oxide Cathodes. Batteries 2026, 12, 126. https://doi.org/10.3390/batteries12040126
Kucuk K, Aryal S, Ashuri M, Esmaeilirad M, Kondori A, Su N, Timofeeva EV, Segre CU. Capacity Enhancement and Structural Study of Fluorine-Doped Co-Free Li- and Mn-Rich Li1.2[Mn0.5Ni0.2Fe0.1]O2(1−x)F2x Layered Oxide Cathodes. Batteries. 2026; 12(4):126. https://doi.org/10.3390/batteries12040126
Chicago/Turabian StyleKucuk, Kamil, Shankar Aryal, Maziar Ashuri, Mohammadreza Esmaeilirad, Alireza Kondori, Ning Su, Elena V. Timofeeva, and Carlo U. Segre. 2026. "Capacity Enhancement and Structural Study of Fluorine-Doped Co-Free Li- and Mn-Rich Li1.2[Mn0.5Ni0.2Fe0.1]O2(1−x)F2x Layered Oxide Cathodes" Batteries 12, no. 4: 126. https://doi.org/10.3390/batteries12040126
APA StyleKucuk, K., Aryal, S., Ashuri, M., Esmaeilirad, M., Kondori, A., Su, N., Timofeeva, E. V., & Segre, C. U. (2026). Capacity Enhancement and Structural Study of Fluorine-Doped Co-Free Li- and Mn-Rich Li1.2[Mn0.5Ni0.2Fe0.1]O2(1−x)F2x Layered Oxide Cathodes. Batteries, 12(4), 126. https://doi.org/10.3390/batteries12040126

