Full-hexacyanometallate aqueous redox flow batteries exceeding 1.5 V in an aqueous solution

Aqueous redox flow batteries (RFBs) have attracted significant attention as energy storage systems by virtue of their inexpensive nature and long-lasting features. Although all-vanadium RFBs exhibit long lifetimes, the cost of vanadium resources fluctuates considerably, and is generally expensive. I...

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Main Authors: Jang, Ji-Eun, Kim, Ryeong-ah, Jayasubramaniyan, S., Lee, Chanhee, Choi, Jieun, Lee, Youngdae, Kang, Sujin, Ryu, Jaechan, Lee, Seok Woo, Cho, Jaephil, Lee, Dong Woog, Song, Hyun-Kon, Choe, Wonyoung, Seo, Dong-Hwa, Lee, Hyun-Wook
其他作者: School of Electrical and Electronic Engineering
格式: Article
語言:English
出版: 2024
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在線閱讀:https://hdl.handle.net/10356/174197
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機構: Nanyang Technological University
語言: English
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總結:Aqueous redox flow batteries (RFBs) have attracted significant attention as energy storage systems by virtue of their inexpensive nature and long-lasting features. Although all-vanadium RFBs exhibit long lifetimes, the cost of vanadium resources fluctuates considerably, and is generally expensive. Iron–chromium RFBs take advantage of utilizing a low-cost and large abundance of iron and chromite ore; however, the redox chemistry of CrII/III generally involves strong Jahn–Teller effects. Herein, this work introduces a new Cr-based negolyte coordinated with strong-field ligands capable of mitigating strong Jahn–Teller effects, thereby facilitating low redox potential, high stability, and rapid kinetics. The balanced full-cell configuration features a stable lifetime of 500 cycles with energy density of 14 Wh L−1. With an excessive posolyte, the full-cell can attain a high energy density of 38.6 Wh L−1 as a single electron redox process. Consequently, the proposed system opens new avenues for the development of high-performance RFBs.