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Interrogation of 2,2′-Bipyrimidines as Low-Potential Two-Electron Electrolytes

机译:2,2'-双嘧啶的询问为低电位二电子电解质

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摘要

As utilization of renewable energy sources continues to expand, the need for new grid energy storage technologies such as redox flow batteries (RFBs) will be vital. Ultimately, the energy density of a RFB will be dependent on the redox potentials of the respective electrolytes, their solubility, and the number of electrons stored per molecule. With prior literature reports demonstrating the propensity of nitrogen-containing heterocycles to undergo multielectron reduction at low potentials, we focused on the development of a novel electrolyte scaffold based upon a 2,2′-bipyrimidine skeleton. This scaffold is capable of storing two electrons per molecule while also exhibiting a low (~-2.0 V vs Fc/Fc~+) reduction potential. A library of 24 potential bipyrimidine anolytes were synthesized and systematically evaluated to unveil structure-function relationships through computational evaluation. Through analysis of these relationships, it was unveiled that steric interactions disrupting the planarity of the system in the reduced state could be responsible for higher levels of degradation in certain anolytes. The major decomposition pathway was ultimately determined to be protonation of the dianion by solvent, which could be reversed by electrochemical or chemical oxidation. To validate the hypothesis of strain-induced decomposition, two new electrolytes with minimal steric encumbrance were synthesized, evaluated, and found to indeed exhibit higher stability than their sterically hindered counterparts.
机译:随着可再生能源的利用率继续扩大,需要对氧化还原电池(RFB)等新网格能量存储技术将是至关重要的。最终,RFB的能量密度将取决于各个电解质,它们的溶解度和每分子存储的电子数量的氧化还原电位。对于先前的文献报告,证明含氮杂环的倾向以在低电位下进行多电元件,我们专注于基于2,2'-双嘧啶骨架的新型电解质支架的发展。该支架能够每分子存储两个电子,同时也表现出低(约-2.0V与Fc / Fc〜+)降低电位。合成并系统地评估了24个潜在的双金酰胺阳离子的文库,以通过计算评估揭示结构功能关系。通过分析这些关系,推出了破坏系统中系统平面性的空间相互作用可能是对某些阳离子中较高水平的降解程度的原因。主要分解途径最终确定通过溶剂的脱膜的质子化,这可以通过电化学或化学氧化反转。为了验证应变诱导的分解的假设,合成了两种具有最小血管障碍物的新电解质,评价,发现其实际上表现出比其空间受阻的对应物更高的稳定性。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2021年第2期|992-1004|共13页
  • 作者单位

    Department of Chemistry University of Utah Salt Lake City Utah 84112 United States Joint Center for Energy Storage Research Argonne Illinois 60439 United States;

    Department of Chemistry University of Utah Salt Lake City Utah 84112 United States Joint Center for Energy Storage Research Argonne Illinois 60439 United States;

    Department of Chemistry University of Utah Salt Lake City Utah 84112 United States Joint Center for Energy Storage Research Argonne Illinois 60439 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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