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Long-Cycling Aqueous Organic Redox Flow Battery (AORFB) toward Sustainable and Safe Energy Storage

机译:长周期有机有机氧化还原液流电池(AORFB)致力于可持续和安全的储能

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摘要

Redox flow batteries (RFBs) are a viable technology to store renewable energy in the form of electricity that can be supplied to electricity grids. However, widespread implementation of traditional RFBs, such as vanadium and Zn--Br_2 RFBs, is limited due to a number of challenges related to materials, including low abundance and high costs of redox-active metals, expensive separators, active material crossover, and corrosive and hazardous electrolytes. To address these challenges, we demonstrate a neutral aqueous organic redox flow battery (AORFB) technology utilizing a newly designed cathode electrolyte containing a highly water-soluble ferrocene molecule. Specifically, water-soluble (ferrocenylmethyl)trimethylammonium chloride (FcNCl, 4.0 M in H_2O, 107.2 Ah/L, and 3.0 M in 2.0 NaCl, 80.4 Ah/L) and N~1-ferrocenylmethyl-N~1,N~1,N~2,N~2,N~2-pentamethylpropane-1,2-diaminium dibromide, (FcN_2Br_2, 3.1 M in H_2O, 83.1 Ah/L, and 2.0 M in 2.0 M NaCl, 53.5 Ah/L) were synthesized through structural decoration of hydrophobic ferrocene with synergetic hydrophilic functionalities including an ammonium cation group and a halide anion. When paired with methyl viologen (MV) as an anolyte, resulting FcNCl/MV and FcN_2Br_2/MV AORFBs were operated in noncorrosive neutral NaCl supporting electrolytes using a low-cost anion-exchange membrane. These ferrocene/MV AORFBs are characterized as having high theoretical energy density (45.5 Wh/L) and excellent cycling performance from 40 to 100 mA/cm~2. Notably, the FcNCl/MV AORFBs (demonstrated at 7.0 and 9.9 Wh/L) exhibited unprecedented long cycling performance, 700 cycles at 60 mA/cm~2 with 99.99% capacity retention per cycle, and delivered power density up to 125 mW/cm~2. These AORFBs are built from earth-abundant elements and are environmentally benign, thus representing a promising choice for sustainable and safe energy storage.
机译:氧化还原液流电池(RFB)是一种可行的技术,以电能的形式存储可再生能源,可以将其提供给电网。但是,由于与材料相关的许多挑战,包括低丰度和高成本的氧化还原活性金属,昂贵的隔板,活性材料交叉以及成本低廉等传统RFB的广泛实施受到限制,例如钒和Zn-Br_2 RFB。腐蚀性和有害电解质。为了解决这些挑战,我们展示了一种中性含水有机氧化还原液流电池(AORFB)技术,该技术利用新设计的包含高度水溶性二茂铁分子的阴极电解质。具体而言,是水溶性(二茂铁基甲基)三甲基氯化铵(FcNCl,H_2O中为4.0 M,107.2 Ah / L,2.0 NaCl中为3.0 M,80.4 Ah / L)和N〜1-二茂铁基甲基-N〜1,N〜1,通过以下步骤合成了N〜2,N〜2,N〜2-五甲基丙烷-1,2-二溴化二铵(FcN_2Br_2,H_2O中的3.1 M,83.1 Ah / L,2.0M NaCl中的2.0 M,53.5 Ah / L)。具有协同亲水功能(包括铵阳离子基团和卤化物阴离子)的疏水二茂铁的结构修饰。当与甲基紫精(MV)作为阳极液配对时,所得的FcNCl / MV和FcN_2Br_2 / MV AORFBs使用低成本的阴离子交换膜在无腐蚀的中性NaCl支撑电解质中运行。这些二茂铁/ MV AORFBs具有较高的理论能量密度(45.5 Wh / L)和40至100 mA / cm〜2的优异循环性能。值得注意的是,FcNCl / MV AORFB(以7.0和9.9 Wh / L的速度演示)表现出空前的长循环性能,在60 mA / cm〜2的条件下可进行700次循环,每个循环的容量保持率达99.99%,功率密度高达125 mW / cm 〜2。这些AORFB由丰富的地球构成,并且对环境无害,因此是可持续和安全储能的有希望的选择。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2017年第3期|1207-1214|共8页
  • 作者单位

    The Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322-1400, United States;

    The Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322-1400, United States;

    The Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322-1400, United States;

    The Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322-1400, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:07:51

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