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Role of Oxygen and Halogen Functionalization in Tuning the Surface Properties of Zr3C2T2 MXene for Lithium Storage: A
Hui Li1, Zhengyang Xie1, Tianwei Gao1
1School of Materials Science and Engineering, Chang'an University, Xi'an 710064, China.
Abstract:
We constructed computational models of bare Zr3C2 and surface-functionalized Zr3C2T2 (T = O, S, F, Cl), and utilized first-principles calculations to systematically explore the effects of these surface-functionalized groups on the structural stability, electronic properties, and lithium storage performance of Zr3C2T2. Compared to halogen functional groups (e.g., F, Cl), the structure and electronic properties of Zr3C2 are more profoundly influenced by oxygen group functional elements (O, S). The formation energy of Zr3C2T2 (T = O, S) functionalized by the same periodic oxygen group elements is lower than that of Zr3C2T2 (T = F, Cl) functionalized by the same periodic halogens. Regarding electronic properties, the oxygen and sulfur functional groups have strong hybridization with Zr3C2 in the valence band and generate a new band structure, which makes the DOS move toward the conduction band. The adsorption energy calculations reveal that lithium ions exhibit stable adsorption on bare Zr3C2 and O/S-functionalized Zr3C2T2 surfaces, whereas no stable adsorption occurs on Zr3C2F2 or Zr3C2Cl2. In terms of adsorbing lithium atoms, bare Zr3C2 tends to adsorb at the HCP position, while Zr3C2O2 and Zr3C2S2 tend to adsorb at the CCP position. First-principles calculations indicate distinct theoretical lithium storage capacities for Zr3C2-based materials: monolayer adsorption yields capacities of 180.13 mAh/g (bare Zr3C2), 162.64 mAh/g (Zr3C2O2), and 148.20 mAh/g (Zr3C2S2); bilayer adsorption significantly increases these values to 360.25, 325.29, and 296.41 mAh/g, respectively.
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