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Two Electron Utilization Liquid Anolyte Molecule for High Energy Density

机译:两种电子利用液体阳极电解质分子用于高能量密度

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For the purpose of the high energy density of redox flow battery (RFB), the solubility of redox active molecule, which is in competition with concentration of high molarity supporting electrolyte, should be as high as possible. If redox active molecule itself is liquid so that utilized as solo solvent or dissolve the salt, the highest energy density can be achieved. Herein, we report liquid redox molecule 1-butyl-1'-hexyl'-4,4'-bipyridinium bis(trifluoromethanesulfonyl)imide, [C_4C_6bpy][TFSI]_2 as promising anolyte for high energy density RFB. [C_4C_6bpy][TFSI]_2 has the remarkably low melting point of 18.1°C, which not only enable keep in liquid state for a relatively long range of temperature, but also indicate the high usability as liquid anolyte. In non-aqueous system, [C_4C_6bpy][TFSI]_2 can take advantage of either one electron or two electron storage of viologen moiety and provide - 1.06 V (vs Ag/Ag~+) potential at second redox reaction. Using a highly conductive LiTFSI/ACN supporting electrolyte, [C_4C_6bpy][TFSI]_2 showed almost overlapped cycles for continuously recorded 200 cyclic voltammetry cycles, meaning that excellent electrochemical stability. Liquid molecule [C_4C_6bpy] [TFSI]_2 that featured with liquid nature that enable high concentration of the redox active molecule and two reversible redox reaction in nonaqueous system give a great potential to achieve high energy density RFB as promising anolyte candidate.
机译:出于氧化还原电池(RFB)的高能量密度,氧化还原活性分子的溶解度与高摩尔支撑电解质的浓度竞争,应尽可能高。如果氧化还可活性分子本身是液体,因此用作溶剂溶剂或溶解盐,可以实现最高能量密度。在此,我们将液体氧化还原分子1-丁基-1'-己基-4,4'-双吡啶(三氟甲磺酰基)酰亚胺(三氟甲磺酰基)酰亚胺,[C_4C_6BPY] [TFSI] _2作为高能量密度RFB的有前途的阳极电解液。 [C_4C_6BPY] [TFSI] _2具有18.1°C的显着低熔点,其不仅使得保持在液态状态,对于相对长的温度,而且还表明液体阳极电解液的高可用性。在非水体系中,[C_4C_6BPY] [TFSI] _2可以利用Viologen部分的一个电子或两种电子存储,并在第二氧化还原反应下提供-1.06V(Vs Ag / Ag +)电位。使用具有高导电LITFSI / ACN支撑电解质,[C_4C_6BPY] [TFSI] _2显示几乎重叠的循环,用于连续记录200循环伏安法循环,这意味着出色的电化学稳定性。液体分子[C_4C_6BPY] [TFSI] _2具有能够高浓度的氧化还原活性分子和两个可逆氧化还原反应在非水体系中的可逆氧化还原反应具有较大的潜力,以实现高能量密度RFB作为有前途的阳极物候选者。

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