• 대한전기학회
Mobile QR Code QR CODE : The Transactions of the Korean Institute of Electrical Engineers
  • COPE
  • kcse
  • 한국과학기술단체총연합회
  • 한국학술지인용색인
  • Scopus
  • crossref
  • orcid

References

1 
Liu, B., Li, “Recent Advances in Redox Flow Batteries Employing Metal Coordination Complexes as Redox-Active Species.” Electrochem. Energy Rev. 7, 7. 2024.DOI
2 
DeBruler, C. “Designer Two-Electron Storage Viologen Anolyte Materials for Neutral Aqueous Organic Redox Flow Batteries,” Chem vol. 3, pp. 961-978, 2017.URL
3 
Chakrabarti, M. H,, “Redox Flow Battery for Energy Storage.” Arabian Journal for Science and Engineering, vol. 38, pp. 723-739, 2013.URL
4 
Noack, J., “The Chemistry of Redox-Flow Batteries,” Angewandte Chemie-International Edition, vol. 54, pp. 9775 -9808, 2015.DOI
5 
Pan, F., “Redox Species of Redox Flow Batteries: A Review,” Molecules vol. 20, pp. 20499-20517, 2015.DOI
6 
Wang, N. X. “Electrochemical synthesis and characterization of branched viologen derivatives,” Electrochimica Acta vol. 154, pp. 361-369, 2015.DOI
7 
Atsushi Okazawa, “Iron-based catholytes for aqueous redox -flow batteries.” APL Mater. 1 November, 11 (11): 110901, 2023.DOI
8 
Zhenguo Yang, “Electrochemical Energy Storage for Green Grid,” Chemical Reviews 111 (5), pp. 3577-3613, 2011.DOI
9 
Bruce Dunn, “Electrical Energy Storage for the Grid: A Battery of Choices.” Science 334, pp. 928-935, 2011.DOI
10 
Wang, W., “Recent Progress in Redox Flow Battery Research and Development”. Adv. Funct. Mater., 23: pp. 970-986. 2013.URL
11 
Xiaoliang Wei,“Materials and Systems for Organic Redox Flow Batteries: Status and Challenges,” ACS Energy Letters 2 (9), pp. 2187-2204, 2017.DOI
12 
Sitao Li, “Improving the electrochemical characteristics and performance of a neutral all-iron flow battery by using the iron reduction bacteria,” Bioelectrochemistry, Volume 157, 2024.DOI
13 
Y. -F. Ho, "Improving the Structural Design of Flow Batteries Using Light-curable 3D Printing Technology," IEEE, 6th ICKII, pp. 726-730, 2023.DOI
14 
Xiaoqi Liu, “Low-cost all-iron flow battery with high performance towards long-duration energy storage,” Journal of Energy Chemistry, Volume 73, pp. 445-451, 2022.DOI
15 
Aurore Lê, “Highly soluble Fe(III)-triethanol amine complex relevant for redox flow batteries,” Electrochimica Acta, Volume 301, pp. 472-477, 2019.DOI
16 
Mingyu Shin, “Spectroscopic and electro chemical analyses elucidating capacity degradation mechanism of iron-ligand complex and air in all iron aqueous redox flow batteries,” Chemical Engineering Journal, Volume 471, 144682, 2023.DOI
17 
Sitao Li, “Using ferrous-oxidizing bacteria to enhance the performance of a pH neutral all-iron flow battery,” iScience, Volume 27, Issue 1, 108595, 2024.DOI
18 
Yuanfang Song, “Surface engineered carbon felt toward highly reversible Fe anode for all-iron flow batteries,” Chemical Engineering Journal, Volume 487, 150592, 2024.DOI
19 
Philipp Schröder, “Near to neutral pH all-iron redox flow battery based on environmentally compatible coordination compounds,” Electrochimica Acta, Volume 430, 141042, 2022.DOI
20 
Y.H. Wen, “A study of the Fe(III)/Fe(II)–triethanolamine complex redox couple for redox flow battery application,” Electrochimica Acta, Volume 51, Issue 18, pp. 3769-3775, 2006.DOI
21 
Mingyu Shin, “Aqueous redox flow battery using iron 2,2-bis(hydro xymethyl)-2,2′,2′-nitrilotriethanol complex and ferrocyanide as newly developed redox couple” International Journal of Energy Research, Volume 46, Issue6, pp. 8175-8185, 2022.DOI
22 
Mingyu Shin, “Electrolyte optimization of alkaline aqueous redox flow battery using iron-2,2- bis(hydroxy methyl)-2,2′,2′-nitrilotriethanol complex as active material for anolyte,” Chemical Engineering Journal, Volume 453, Part 1, 139738, 2023.DOI
23 
Krista L. Hawthorne, “Studies of Iron-Ligand Complexes for an All-Iron Flow Battery Application,”J. Electrochem. Soc. 161 A1662, 2014.URL
24 
Gong, Ke, “All-Soluble All-Iron Aqueous Redox -Flow Battery,” ACS Energy Letters, Volume 1, Issue 1, pp. 89 – 93, 2016.DOI
25 
B. S. Jayathilake, “Improvements to the Coulombic Efficiency of the Iron Electrode for an All-Iron Redox-Flow Battery,”J. Electrochem. Soc. 165 A1630, 2018.URL
26 
Huan Zhang, “Cost-effective iron-based aqueous redox flow batteries for large-scale energy storage application: A review,” Journal of Power Sources, Volume 493, 229445, 2021.DOI
27 
Yongbeom Kim, “Performance improvement of aqueous zinc-iron flow batteries through organic ligand complexation of Fe(II)/Fe(III),” Electro- chimica Acta, Volume354, 2020.DOI
28 
Zhang H, “Review of the Research Status of Cost -Effective Zinc–Iron Redox Flow Batteries”, Batteries. 8(11):202. 2022.DOI
29 
Gabriel M. Duarte, “Redox non-innocent bis(2,6-diimine -pyridine) ligand–iron complexes as anolytes for flow battery applications,” Dalton Trans., 46, pp. 16439-16445, 2017.URL
30 
Belongia, Shawn1, “Progresses and Perspectives of All‐Iron Aqueous Redox Flow Batteries” Advanced Functional Materials. Vol. 34 Issue 5, pp. 1-11, 2024.DOI