REFERENCES

1. Jafarzadeh Ghoushchi S, Manjili S, Mardani A, Saraji MK. An extended new approach for forecasting short-term wind power using modified fuzzy wavelet neural network: a case study in wind power plant. Energy 2021;223:120052.

2. Li J, Chen S, Wu Y, Wang Q, et al. How to make better use of intermittent and variable energy? Renew Sustain Energy Rev 2021;137:110626.

3. Ghaedi A, Gorginpour H. Generated power enhancement of the barrage type tidal power plants. Ocean Engineering 2021;226:108787.

4. Dicorato M, Forte G, Pisani M, Trovato M. Planning and operating combined wind-storage system in electricity market. IEEE Trans Sustain Energy 2012;3:209-17.

5. Wang P, Zhu C. Summary of lead-acid battery management system. IOP Conf Ser: Earth Environ Sci 2020;440:022014.

6. Browne MP, Sofer Z, Pumera M. Layered and two dimensional metal oxides for electrochemical energy conversion. Energy Environ Sci 2019;12:41-58.

7. Joshi T, Eom K, Yushin G, Fuller TF. Effects of dissolved transition metals on the electrochemical performance and SEI growth in lithium-ion batteries. J Electrochem Soc 2014;161:A1915.

8. Shukla AK, Ramasse QM, Ophus C, Duncan H, Hage F, Chen G. Unravelling structural ambiguities in lithium- and manganese-rich transition metal oxides. Nat Commun 2015;6:8711.

9. Liao Y, Chen P, Sun I. Electrochemical study and recovery of Pb using 1:2 choline chloride/urea deep eutectic solvent: a variety of Pb species PbSO4, PbO2, and PbO exhibits the analogous thermodynamic behavior. Electrochimica Acta 2016;214:265-75.

10. Qiu R, Lin M, Qin B, Xu Z, Ruan J. Environmental-friendly recovery of non-metallic resources from waste printed circuit boards: a review. J Clean Prod 2021;279:123738.

11. Bashir S, Adeel M, Gulshan AB, et al. Effects of organic and inorganic passivators on the immobilization of cadmium in contaminated soils: a review. Environmental Engineering Science 2019;36:986-98.

12. Weinert JX, Burke AF, Wei X. Lead-acid and lithium-ion batteries for the Chinese electric bike market and implications on future technology advancement. J Power Sources 2007;172:938-45.

13. Zou C, Zhang L, Hu X, Wang Z, Wik T, Pecht M. A review of fractional-order techniques applied to lithium-ion batteries, lead-acid batteries, and supercapacitors. J Power Sources 2018;390:286-96.

14. Ryu H, Sun HH, Myung S, Yoon CS, Sun Y. Reducing cobalt from lithium-ion batteries for the electric vehicle era. Energy Environ Sci 2021;14:844-52.

15. Huang T, Lu D, Ma L, Xi X, Liu R, Wu D. A hit-and-run strategy towards perylene diimide/reduced graphene oxide as high performance sodium ion battery cathode. Chem Eng J 2018;349:66-71.

16. Schon TB, McAllister BT, Li PF, Seferos DS. The rise of organic electrode materials for energy storage. Chem Soc Rev 2016;45:6345-404.

17. Huskinson B, Marshak MP, Suh C, et al. A metal-free organic-inorganic aqueous flow battery. Nature 2014;505:195-8.

18. Wang M, Zhang F, Lee C, Tang Y. Low-cost metallic anode materials for high performance rechargeable batteries. Adv Energy Mater 2017;7:1700536.

19. Kim DJ, Yoo D, Otley MT, et al. Rechargeable aluminium organic batteries. Nat Energy 2019;4:51-9.

20. Dai G, He Y, Niu Z, et al. A dual-ion organic symmetric battery constructed from phenazine-based artificial bipolar molecules. Angew Chem 2019;131:10007-11.

21. Tie Z, Liu L, Deng S, Zhao D, Niu Z. Proton insertion chemistry of a Zinc-organic battery. Angew Chem Int Ed Engl 2020;59:4920-4.

22. Yue F, Tie Z, Deng S, Wang S, Yang M, Niu Z. An ultralow temperature aqueous battery with proton chemistry. Angew Chem 2021;133:14001-5.

23. Raw material purchase website. Spot supply of p-Chloranil: Available from: https://china.guidechem.com/trade/pdetail1654985.html [Last accessed on 26 Oct 2021].

24. Raw material price news. On September 14, 2021, the price of lead was restored in the domestic market. Available from: https://qian.mymetal.net/m/21/0914/11/888208DBE89B0345.html [Last accessed on 26 Oct 2021].

25. Raw material purchase website. Spot supply of lithium cobalt oxide. Available from: https://detail.1688.com/offer/651805024176.html?spm=a261b.12436309.ul20190116.102.17c753829yccbS [Last accessed on 26 Oct 2021].

26. Guo Z, Ma Y, Dong X, Huang J, Wang Y, Xia Y. An environmentally friendly and flexible aqueous zinc battery using an organic cathode. Angew Chem 2018;130:11911-5.

27. Nguyen TP, Easley AD, Kang N, et al. Polypeptide organic radical batteries. Nature 2021;593:61-6.

28. Eder S, Yoo DJ, Nogala W, et al. Switching between local and global aromaticity in a conjugated macrocycle for high-performance organic sodium-ion battery anodes. Angew Chem Int Ed Engl 2020;59:12958-64.

29. Cong G, Wang W, Lai NC, Liang Z, Lu YC. A high-rate and long-life organic-oxygen battery. Nat Mater 2019;18:390-6.

30. Tong Z, Tian S, Wang H, Shen D, Yang R, Lee C. Tailored redox kinetics, electronic structures and electrode/electrolyte interfaces for fast and high energy-density potassium-organic battery. Adv Funct Mater 2019;30:1907656.

31. Yang X, Hu Y, Dunlap N, et al. A Truxenone-based covalent organic framework as an all-solid-state lithium-ion battery cathode with high capacity. Angew Chem Int Ed Engl 2020;59:20385-9.

32. Wang H, Li Q, Wu Q, et al. Conjugated microporous polymers with bipolar and double redox-active centers for high-performance dual-ion, organic symmetric battery. Adv Energy Mater 2021;11:2100381.

33. Tie Z, Niu Z. Design strategies for high-performance aqueous Zn/organic batteries. Angew Chem Int Ed Engl 2020;59:21293-303.

34. Sun T, Du H, Zheng S, Shi J, Tao Z. High power and energy density aqueous proton battery operated at -90 °C. Adv Funct Mater 2021;31:2010127.

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/