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Field-Assisted Splitting of Pure Water Based on Deep-Sub-Debye-Length Nanogap Electrochemical Cells

机译:基于深层德义纳米孔电化学电化学电化学的纯水辅助分裂

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摘要

Owing to the low conductivity of pure water, using an electrolyte is common for achieving efficient water electrolysis. In this paper, we have fundamentally broken through this common sense by using deep-sub-Debye-length nanogap electrochemical cells to achieve efficient electrolysis of pure water (without any added electrolyte) at room temperature. A field-assisted effect resulted from overlapped electrical double layers can greatly enhance water molecules ionization and mass transport, leading to electron-transfer limited reactions. We have named this process "virtual breakdown mechanism" (which is completely different from traditional mechanisms) that couples the two half-reactions together, greatly reducing the energy losses arising from ion transport. This fundamental discovery has been theoretically discussed in this paper and experimentally demonstrated in a group of electrochemical cells with nanogaps between two electrodes down to 37 nm. On the basis of our nanogap electrochemical cells, the electrolysis current density from pure water can be significantly larger than that from 1 mol/L sodium hydroxide solution, indicating the much better performance of pure water splitting as a potential for on-demand clean hydrogen production.
机译:由于纯水的导电性低,使用电解质对于实现有效的水电解是常见的。在本文中,我们通过使用深脱德英长的纳米粥电化学电化学电化学电化学细胞基本上通过这种常识进行了常识,以在室温下实现纯净水(没有任何添加的电解质)的有效电解。由重叠的电双层产生的现场辅助效果可以大大提高水分子电离和质量传输,导致电子转移有限的反应。我们已经将此过程命名为“虚拟击穿机制”(完全不同于传统机制),使两个半反应融合在一起,大大降低了离子运输产生的能量损失。本文理论上讨论了这一基本发现,并在一组电化学电池组中进行了实验,其中纳米电池在两个电极之间至37nm之间。在我们的纳米剧性电化学电池的基础上,来自纯水的电解电流密度可以显着大于1mol / L氢氧化钠溶液,表明纯净水分裂性能大得多,作为按需洗净氢气的潜力。

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