Acta Phys. -Chim. Sin. ›› 2025, Vol. 41 ›› Issue (9): 100106.doi: 10.1016/j.actphy.2025.100106
• ARTICLE • Previous Articles Next Articles
Qianli Ma, Tianbing Song, Tianle He, Xirong Zhang, Huanming Xiong*(
)
Received:2025-04-16
Revised:2025-05-13
Accepted:2025-05-22
Published:2025-07-04
Contact:
Email: hmxiong@fudan.edu.cn (Huanming Xiong)
Supported by:Qianli Ma, Tianbing Song, Tianle He, Xirong Zhang, Huanming Xiong. Sulfur-doped carbon dots: a novel bifunctional electrolyte additive for high-performance aqueous zinc-ion batteries[J]. Acta Phys. -Chim. Sin. 2025, 41(9), 100106. doi: 10.1016/j.actphy.2025.100106
Fig 2
Various spectra and electrochemical tests for the ZS-CD electrolyte system. (a) 2H NMR spectra of H2O from 2 mol∙L−1 ZnSO4, 2 mol∙L−1 ZnSO4 with 0.4 mg∙mL−1 CDs and 0.4 mg∙mL−1CDs. (b) FTIR spectra for 2 mol∙L−1 ZnSO4, 2 mol∙L−1 ZnSO4 with 0.4 mg∙mL−1 CDs and 2 mol∙L−1 ZnSO4 with 1 mg∙mL−1 CDs. (c) Binding energies of Zn2+ absorbed on different function groups by DFT calculations; (d) LSV curves at scan rate of 1 mV∙s−1 reflecting HER and OER performance of the system; (e) Tafel plots representing corrosion behaviors; (f) CA curves indicating Zn2+ diffusion process of Zn electrode in ZS and ZS-CD0.4 electrolytes."
Fig 4
Morphology characterization of Zn electrode. (a) XRD patterns of Zn electrode after 50 and 100 cycles in ZS and ZS-CD0.4 electrolyte, respectively. (b) XRD patterns of Zn electrode at different cycling stages (0, 10, 20, 50, and 100 cycles) in ZS-CD0.4 electrolyte. SEM image and EDS mapping of Zn electrode after 50 cycles in (c) ZS and (d) ZS-CD0.4 electrolyte. (e) Schematic illustration of the bifunctional mechanism of CDs."
Fig 5
Electrochemical performances of Zn||Cu half cells, Zn||NVO full cells and Zn||MnO2 full cells with different electrolytes. Comparison of (a) coulombic efficiency measurements and (b, c) the corresponding voltage profiles at selected cycles of Zn||Cu cells. Electrochemical performances of Zn||NVO cells: (d) CV curves at a scan rate of 0.5 mV∙s−1; (e) rate capability under different current densities and (f) long-term cycling performance and corresponding CE at a current density of 3 A∙g−1. Electrochemical performances of Zn||MnO2 cells: (g) CV curves at a scan rate of 0.5 mV∙s−1; (h) rate capability under different current densities and (i) long-term cycling performance and corresponding CE at a current density of 0.2 A∙g−1."
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