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用于氧化还原液流电池的水溶性羟基萘醌的高效一锅法合成

Efficient One-Pot Synthesis of Water-Soluble Hydroxynaphthoquinones for Redox Flow Batteries.

作者信息

Bassil Patricia, Floner Didier, Guiheneuf Solène, Paquin Ludovic, Geneste Florence

机构信息

Univ Rennes, CNRS, ISCR, UMR 6226, F-35000 Rennes, France.

出版信息

ACS Appl Mater Interfaces. 2024 Jul 17;16(28):36373-36379. doi: 10.1021/acsami.4c05833. Epub 2024 Jul 9.

Abstract

Given the importance of energy storage and its hybridization with renewable technologies for the energy transition, the development of redox flow batteries (RFB) is receiving particular attention. Among the various emerging technologies, aqueous organic redox flow batteries (AORFBs) are of particular interest, as the objectives in terms of durability, cost, and safety can be achieved thanks to the possibilities offered by molecular engineering. While anthraquinones have been widely explored as negolytes, few works report the use of naphthoquinones. This work aims to exploit an innovative and cost-effective method for the one-pot synthesis of water-soluble naphthoquinones for application as a negolyte in redox flow batteries. As exemplified with alizarin, the energy of the naphthoquinone synthetic reaction in fuel cell mode can be recovered and the electrolyte solution used directly in redox flow batteries without purification. A 0.3 M naphthoquinone solution paired with 0.6 M ferrocyanide demonstrated good stability compared with other naphthoquinones, with a capacity fade rate of 0.017%/cycle (0.84%/day) over 320 cycles. Additionally, the system exhibited one of the highest energy efficiencies (82%) and a power density of 80-105 mW cm at 50% SOC. These first results are promising for further exploration of new water-soluble naphthoquinones efficiently synthesized from hydroxyanthraquinones for application in AORFBs.

摘要

鉴于能量存储及其与可再生技术的混合对于能源转型的重要性,氧化还原液流电池(RFB)的发展正受到特别关注。在各种新兴技术中,水系有机氧化还原液流电池(AORFBs)尤其令人感兴趣,因为借助分子工程提供的可能性,可以实现耐久性、成本和安全性方面的目标。虽然蒽醌已被广泛用作负极电解液,但很少有研究报道萘醌的应用。这项工作旨在开发一种创新且经济高效的方法,用于一锅法合成水溶性萘醌,以用作氧化还原液流电池中的负极电解液。以茜素为例,燃料电池模式下萘醌合成反应的能量可以回收,且电解液溶液无需纯化即可直接用于氧化还原液流电池。与其他萘醌相比,0.3 M萘醌溶液与0.6 M亚铁氰化物配对显示出良好的稳定性,在320次循环中的容量衰减率为0.017%/循环(0.84%/天)。此外,该系统在50%的荷电状态下表现出最高的能量效率之一(82%),功率密度为80 - 105 mW/cm²。这些初步结果对于进一步探索由羟基蒽醌高效合成的新型水溶性萘醌在AORFBs中的应用很有前景。

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