Chen Qiliang, Guo Wei, Fu Yongzhu
College of Chemistry, Zhengzhou University, Zhengzhou, 450001, P. R. China.
Adv Sci (Weinh). 2022 Jan;9(1):e2104036. doi: 10.1002/advs.202104036. Epub 2021 Nov 10.
Electrochemical techniques have been recognized as an environmentally friendly and sustainable synthetic way to form organodisulfides. However, searching for optimum conditions which suffers from time/material-consuming caused by the uncertainty of reactant consumption has hindered its rapid and large-scale development. Inspired by advanced nonaqueous redox flow batteries (NARFBs) technology, it is proposed a smart flow electrosynthesis (SFE) method of organodisulfides that the voltage curve of NARFBs can be utilized as a precise indicator to reflect the desired information about reactants and distinguish the end point of reaction automatically. This electrochemical method also exhibits certain universality and scalability. Additionally, organodisulfides generated in electrolytes can be used as active species for NARFBs without further purification, and their electrochemical properties are easily adjusted by changing raw materials, which effectively alleviate the waste in complex synthesis steps for optimizing and designing active materials separately. An organodisulfide dervied from isopropyl alcohol and carbon disulfide shows excellent cycling life (1000 cycles) with low capacity fade rate (0.024% per cycle). Taking advantages of the inherent NARFBs, this work not only proves a SFE strategy, but also supplies a green and low-cost molecular engineering scheme for designing electroactive materials for energy storage.
电化学技术已被公认为是一种形成有机二硫化物的环境友好且可持续的合成方法。然而,由于反应物消耗的不确定性导致寻找最佳条件既耗时又耗材料,这阻碍了其快速大规模发展。受先进的非水氧化还原液流电池(NARFBs)技术启发,提出了一种有机二硫化物的智能流动电合成(SFE)方法,即可以将NARFBs的电压曲线用作精确指标,以反映有关反应物的所需信息并自动区分反应终点。这种电化学方法还具有一定的通用性和可扩展性。此外,电解质中生成的有机二硫化物无需进一步纯化即可用作NARFBs的活性物质,并且通过改变原材料可以轻松调节其电化学性质,这有效地减少了分别优化和设计活性材料的复杂合成步骤中的浪费。一种由异丙醇和二硫化碳衍生的有机二硫化物表现出优异的循环寿命(1000次循环),容量衰减率低(每循环0.024%)。利用NARFBs的固有优势,这项工作不仅证明了一种SFE策略,还为设计用于储能的电活性材料提供了一种绿色且低成本的分子工程方案。