REFERENCES

1. Rajagopalan R, Tang Y, Ji X, Jia C, Wang H. Advancements and challenges in potassium ion batteries: a comprehensive review. Adv Funct Mater 2020;30:1909486.

2. Liu Q, Wang H, Jiang C, Tang Y. Multi-ion strategies towards emerging rechargeable batteries with high performance. Energy Stor Mater 2019;23:566-86.

3. Wang B, Zhang Z, Yuan F, et al. An insight into the initial Coulombic efficiency of carbon-based anode materials for potassium-ion batteries. Chem Eng J 2022;428:131093.

4. Liu S, Kang L, Henzie J, et al. Recent advances and perspectives of battery-type anode materials for potassium ion storage. ACS Nano 2021;15:18931-73.

5. Wu H, Hou C, Shen G, et al. MoS2/C/C nanofiber with double-layer carbon coating for high cycling stability and rate capability in lithium-ion batteries. Nano Res 2018;11:5866-78.

6. Wang X, Tian J, Cheng X, Na R, Wang D, Shan Z. Chitosan-induced synthesis of hierarchical flower ridge-like MoS2/N-doped carbon composites with enhanced lithium storage. ACS Appl Mater Interfaces 2018;10:35953-62.

7. Zhao LP, Meng WS, Wang HY, Qi L. MoS2-C composite as negative electrode material for sodium-ion supercapattery. Acta Phys Chim Sin 2017; 33:787-94.

8. Sun W, Hu Z, Wang C, et al. Effects of carbon content on the electrochemical performances of MoS2-C nanocomposites for Li-ion batteries. ACS Appl Mater Interfaces 2016;8:22168-74.

9. Wang L, Zhang H, Wang Y, et al. Unleashing ultra-fast sodium ion storage mechanisms in interface-engineered monolayer MoS2/C interoverlapped superstructure with robust charge transfer networks. J Mater Chem A 2020;8:15002-11.

10. Li Y, Jiang S, Qian Y, et al. 2D interspace confined growth of ultrathin MoS2-intercalated graphite hetero-layers for high-rate Li/K storage. Nano Res 2021;14:1061-8.

11. Jia B, Yu Q, Zhao Y, et al. Bamboo-like hollow tubes with MoS2/N-doped-C interfaces boost potassium-ion storage. Adv Funct Mater 2018;28:1803409.

12. Guo J, Sun X, Shen K, et al. Controllable synthesis of tunable few-layered MoS2 chemically bonding with in situ conversion nitrogen-doped carbon for ultrafast reversible sodium and potassium storage. Chem Eng J 2020;393:124703.

13. Luo B, Wu P, Zhang J, et al. Van der Waals heterostructure engineering by 2D space-confinement for advanced potassium-ion storage. Nano Res 2021;14:3854-63.

14. Zheng N, Jiang G, Chen X, Mao J, Zhou Y, Li Y. Rational design of a tubular, interlayer expanded MoS2-N/O doped carbon composite for excellent potassium-ion storage. J Mater Chem A 2019;7:9305-15.

15. Cao L, Zhang B, Xia H, et al. Hierarchical chrysanthemum-like MoS2/Sb heterostructure encapsulated into N-doped graphene framework for superior potassium-ion storage. Chem Eng J 2020;387:124060.

16. Cui Y, Liu W, Feng W, et al. Controlled design of well-dispersed ultrathin MoS2 nanosheets inside hollow carbon skeleton: toward fast potassium storage by constructing spacious “houses” for K ions. Adv Funct Mater 2020;30:1908755.

17. Lee JS, Park J, Baek KW, et al. Coral-like porous microspheres comprising polydopamine-derived N-doped C-coated MoSe2 nanosheets composited with graphitic carbon as anodes for high-rate sodium- and potassium-ion batteries. Chem Eng J 2023;456:141118.

18. Luo L, Dai J, Xia L, et al. An ultra-thin interlayer bimetallic sulfide for enhancing electrons transport of supercapacitor electrode. J Energy Stor 2022;55:105528.

19. Yuan F, Zhang D, Li Z, et al. Unraveling the intercorrelation between micro/mesopores and K migration behavior in hard carbon. Small 2022;18:e2107113.

20. Luo Z, Wang Y, Wang X, et al. Simultaneously engineering electron conductivity, site density and intrinsic activity of MoS2 via the cation and anion codoping strategy. ACS Appl Mater Interfaces 2019;11:39782-8.

21. Bai J, Zhao B, Zhou J, et al. Glucose-induced synthesis of 1T-MoS2/C hybrid for high-rate lithium-ion batteries. Small 2019;15:e1805420.

22. Wang J, Luo C, Gao T, Langrock A, Mignerey AC, Wang C. An advanced MoS2 /carbon anode for high-performance sodium-ion batteries. Small 2015;11:473-81.

23. Zhao X, Huang Y, Liu X, Yu M, Zong M, Li T. Magnetic nanorods/carbon fibers heterostructures coated with flower-like MoS2 layers for superior microwave absorption. Carbon 2023;213:118265.

24. Liu Y, Fan L, Jiao L. Graphene intercalated in graphene-like MoS2: a promising cathode for rechargeable Mg batteries. J Power Sources 2017;340:104-10.

25. Wu K, Cao X, Li M, Lei B, Zhan J, Wu M. Bottom-up synthesis of MoS2/CNTs hollow polyhedron with 1T/2H hybrid phase for superior potassium-ion storage. Small 2020;16:e2004178.

26. Ma G, Zhou Y, Wang Y, Feng Z, Yang J. N, P-codoped graphene supported few-layered MoS2 as a long-life and high-rate anode materials for potassium-ion storage. Nano Res 2021;14:3523-30.

27. He Y, Liu M, Huang Z, et al. Effect of solid electrolyte interface (SEI) film on cyclic performance of Li4Ti5O12 anodes for Li ion batteries. J Power Sources 2013;239:269-76.

28. Pramudita JC, Sehrawat D, Goonetilleke D, Sharma N. An initial review of the status of electrode materials for potassium-ion batteries. Adv Energy Mater 2017;7:1602911.

29. Su X, Yu L, Cheng G, et al. Controllable hydrothermal synthesis of Cu-doped δ-MnO2 films with different morphologies for energy storage and conversion using supercapacitors. Appl Energy 2014;134:439-45.

30. Zhu Y, Wang M, Zhang Y, Wang R, Zhang Y, Wang C. Nitrogen/oxygen dual-doped hierarchically porous carbon/graphene composite as high-performance anode for potassium storage. Electrochim Acta 2021;377:138093.

31. Liu Z, Han K, Li P, et al. Tuning metallic Co0.85Se quantum dots/carbon hollow polyhedrons with tertiary hierarchical structure for high-performance potassium ion batteries. Nanomicro Lett 2019;11:96.

32. Hosaka T, Matsuyama T, Kubota K, Yasuno S, Komaba S. Development of KPF6/KFSA binary-salt solutions for long-life and high-voltage K-ion batteries. ACS Appl Mater Interfaces 2020;12:34873-81.

33. Zhu X, Sun D, Luo B, Hu Y, Wang L. A stable high-power Na2Ti3O7/LiNi0.5Mn1.5O4 Li-ion hybrid energy storage device. Electrochim Acta 2018;284:30-7.

34. Zhu X, She Q, Wang M, et al. Synchronous densification and conductivity modulation of nano-titanate for pseudocapacitive Li-ion storage. Adv Funct Mater 2024;34:2311025.

35. Augustyn V, Simon P, Dunn B. Pseudocapacitive oxide materials for high-rate electrochemical energy storage. Energy Environ Sci 2014;7:1597-614.

36. Dees DW, Kawauchi S, Abraham DP, Prakash J. Analysis of the galvanostatic intermittent titration technique (GITT) as applied to a lithium-ion porous electrode. J Power Sources 2009;189:263-8.

37. Zhou J, Liu Y, Zhang S, Zhou T, Guo Z. Metal chalcogenides for potassium storage. InfoMat 2020;2:437-65.

38. Li B, Zhao J, Zhang Z, et al. Electrolyte-regulated solid-electrolyte interphase enables long cycle life performance in organic cathodes for potassium-ion batteries. Adv Funct Mater 2019;29:1807137.

39. Wang H, Zhai D, Kang F. Solid electrolyte interphase (SEI) in potassium ion batteries. Energy Environ Sci 2020;13:4583-608.

40. Deng L, Zhang Y, Wang R, et al. Influence of KPF6 and KFSI on the performance of anode materials for potassium-ion batteries: a case study of MoS2. ACS Appl Mater Interfaces 2019;11:22449-56.

41. Peng Y, Zhou W, Wang Z, et al. Regulating anion chemistry with F-containing bonds enable superior potassium ions storage in hard carbon. Energy Stor Mater 2023;62:102942.

42. Wang Z, Luo K, Wu J, et al. Rejuvenating propylene carbonate-based electrolytes by regulating the coordinated structure toward all-climate potassium-ion batteries. Energy Environ Sci 2024;17:274-83.

43. Allgayer F, Maibach J, Jeschull F. Comparing the solid electrolyte interphases on graphite electrodes in K and Li half cells. ACS Appl Energy Mater 2022;5:1136-48.

44. Liu P, Wang Y, Hao H, et al. Stable potassium metal anodes with an all-aluminum current collector through improved electrolyte wetting. Adv Mater 2020;32:e2002908.

45. Gabryelczyk A, Ivanov S, Bund A, Lota G. Taguchi method in experimental procedures focused on corrosion process of positive current collector in lithium-ion batteries. Electrochim Acta 2020;360:137011.

46. Zhang L, Chai L, Zhang L, et al. Synergistic effect between lithium bis(fluorosulfonyl)imide (LiFSI) and lithium bis-oxalato borate (LiBOB) salts in LiPF6-based electrolyte for high-performance Li-ion batteries. Electrochim Acta 2014;127:39-44.

Energy Materials
ISSN 2770-5900 (Online)
Follow Us

Portico

All published articles are preserved here permanently:

https://www.portico.org/publishers/oae/

Portico

All published articles are preserved here permanently:

https://www.portico.org/publishers/oae/