Acta Phys. -Chim. Sin. ›› 2024, Vol. 40 ›› Issue (2): 2303061.doi: 10.3866/PKU.WHXB202303061
Special Issue: Energy and Environmental Catalysis
• REVIEW • Previous Articles Next Articles
Tao Wang1, Qin Dong1, Cunpu Li1,2,*(
), Zidong Wei1,2,*(
)
Received:2023-03-31
Revised:2023-04-27
Accepted:2023-04-28
Published:2023-05-18
Contact:
Email: lcp@cqu.edu.cn (Cunpu Li)zdwei@cqu.edu.cn (Zidong Wei)
Supported by:Tao Wang, Qin Dong, Cunpu Li, Zidong Wei. Sulfur Cathode Electrocatalysis in Lithium-Sulfur Batteries: A Comprehensive Understanding[J]. Acta Phys. -Chim. Sin. 2024, 40(2), 2303061. doi: 10.3866/PKU.WHXB202303061
Fig 2
(a) Thermodynamic cycles for dissociation of Li2S6 in DME; (b) Dissociation and triple-ion association reactions of Li2S6 and corresponding equilibrium constants; (c) Simulated fraction of different sulfur species in electrolyte at different Li2S6 concentrations. (a) Adapted from Ref. 47. Copyright 2021, American Chemical Society. (b, c) Adapted from Ref. 48. Copyright 2022, Elsevier Inc."
Fig 3
(a) Binding energies for Li-S composites at four different lithation stages (S8, Li2S6, Li2S4, Li2S2) on different AMs we select; (b) Ratio for van der Waals interaction for five kinds of extracted AMs at four different lithation stages; (c) Optimized structures of different Metallic compound surfaced bound with Li2S molecule. (a, b) Adapted from Ref. 59. Copyright 2015, American Chemical Society. (c) Adapted from Ref. 60. Copyright 2017, American Chemical Society."
Fig 4
(a) A schematic showing the faster redox kinetics of LiPS on the NiCo2O4 surface; (b) Computed differential charge density of the Li2S4 adsorption on α-Fe2O3; Schematic diagrams of (c) H bond, in deoxyribonucleic acid (DNA), and (d) Li bond, in Li-S batteries. (a) Adapted from Ref. 69. Copyright 2019, Wiley-VCH. (b) Adapted from Ref. 70. Copyright 2017, Elsevier Inc. (c, d) Adapted from Ref. 73. Copyright 2020, Wiley-VCH."
Fig 5
(a) Proposed sulfur reduction reaction routes for the Li-S battery with the sulfur-vacancy heterojunction material; (b) Calculated adsorption energy of sulfur species on MoS2 and MoS2-MnO2 interfaces. (a) Adapted from Ref. 81. Copyright 2022, The Royal Society of Chemistry. (b) Adapted from Ref. 83. Copyright 2022, American Chemical Society."
Fig 7
(a) Initial discharge profiles of the flask cells with conventional (black) and 50 vol% DMDS-containing (red) electrolyte; (b) Chemical reaction equation of redox comediator with lithium polysulfides; (c) Schematic and molecular structure of G@ppy-por. (a) Adapted from Ref. 92. Copyright 2016, Wiley-VCH. (b) Adapted from Ref. 93. Copyright 2020, Elsevier Inc. (c) Adapted from Ref. 95. Copyright 2021, American Chemical Society."
Fig 8
(a) CV profiles of different electrodes at a scanrate of 0.05 mV∙s−1; (b) Tafel plots of peak ii; (c–e) CV curves within the voltage range of 1.6–2.8 V at different sweep rates: (c) CMG-L, (d) CMG-M, (e) CMG-H; (f) The NTR values of CMG-L, CMG-M and CMG-H at different sweep rates. (a, b) Adapted from Ref. 5. Copyright 2021, Wiley-VCH. (c–f) Adapted from Ref. 81. Copyright 2022, The Royal Society of Chemistry."
Fig 11
(a) Current profiles under PITT operation; (b) Enlarged view of the current response in the constant potential of 2.10 V, corresponding to a liquid/solid phase transition; (c) The maximum current response to voltage shifting from 2.25 to 2.20 V, and quantitative Li2S1/2 precipitation in the potential range of 2.10–2.05 V, respectively. (a–c) Adapted from Ref. 101. Copyright 2019, Wiley-VCH."
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