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控制高水溶性萘二酰亚胺衍生物的π-π相互作用,用于中性 pH 值水系氧化还原流电池。

Controlling π-π Interactions of Highly Soluble Naphthalene Diimide Derivatives for Neutral pH Aqueous Redox Flow Batteries.

机构信息

Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

Advanced Battery Center, KAIST Institute for NanoCentury, Daejeon, 34141, Republic of Korea.

出版信息

Adv Mater. 2023 Mar;35(13):e2210859. doi: 10.1002/adma.202210859. Epub 2023 Feb 17.

Abstract

Organic redox-active molecules are a promising platform for designing sustainable, cheap, and safe charge carriers for redox flow batteries. However, radical formation during the electron-transfer process causes severe side reactions and reduces cyclability. This problem is mitigated by using naphthalene diimide (NDI) molecules and regulating their π-π interactions. The long-range π-stacking of NDI molecules, which leads to precipitation, is disrupted by tethering four ammonium functionalities, and the solubility approaches 1.5 m in water. The gentle π-π interactions induce clustering and disassembling of the NDI molecules during the two-electron transfer processes. When the radical anion forms, the antiferromagnetic coupling develops tetramer and dimer and nullifies the radical character. In addition, short-range-order NDI clusters at 1 m concentration are not precipitated but inhibit crossover. They are disassembled in the subsequent electron-transfer process, and the negatively charged NDI core strongly interacts with ammonium groups. These behaviors afford excellent RFB performance, demonstrating 98% capacity retention for 500 cycles at 25 mA cm and 99.5% Coulombic efficiency with 2 m electron storage capacity.

摘要

有机氧化还原活性分子是设计可持续、廉价和安全的氧化还原流电池电荷载体的有前途的平台。然而,电子转移过程中自由基的形成会导致严重的副反应并降低循环稳定性。通过使用萘二酰亚胺 (NDI) 分子并调节其 π-π 相互作用可以缓解这个问题。NDI 分子的长程 π-堆积导致沉淀,通过连接四个铵官能团可以破坏这种堆积,并且在水中的溶解度接近 1.5m。在两电子转移过程中,温和的 π-π 相互作用诱导 NDI 分子的聚集和解体。当形成自由基阴离子时,反铁磁耦合会形成四聚体和二聚体,并消除自由基特征。此外,在 1m 浓度下的短程有序 NDI 簇不会沉淀但会抑制跨越。它们在随后的电子转移过程中解体,带负电荷的 NDI 核心与铵基团强烈相互作用。这些行为提供了出色的 RFB 性能,在 25mA cm 的电流密度下进行 500 次循环时保留了 98%的容量,并且在 2m 的电子存储容量下具有 99.5%的库仑效率。

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