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Direct anodic hydrochloric acid and cathodic caustic production during water electrolysis

机译:水电解过程中直接阳极盐酸和阴极苛性碱生成

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摘要

Hydrochloric acid (HCl) and caustic (NaOH) are among the most widely used chemicals by the water industry. Direct anodic electrochemical HCl production by water electrolysis has not been successful as current commercially available electrodes are prone to chlorine formation. This study presents an innovative technology simultaneously generating HCl and NaOH from NaCl using a Mn0.84Mo0.16O2.23 oxygen evolution electrode during water electrolysis. The results showed that protons could be anodically generated at a high Coulombic efficiency (i.e. >= 95%) with chlorine formation accounting for 3 similar to 5% of the charge supplied. HCl was anodically produced at moderate strengths at a CE of 65 +/- 4% together with a CE of 89 +/- 1% for cathodic caustic production. The reduction in CE for HCl generation was caused by proton cross-over from the anode to the middle compartment. Overall, this study showed the potential of simultaneous HCl and NaOH generation from NaCl and represents a major step forward for the water industry towards on-site production of HCl and NaOH. In this study, artificial brine was used as a source of sodium and chloride ions. In theory, artificial brine could be replaced by saline waste streams such as Reverse Osmosis Concentrate (ROC), turning ROC into a valuable resource.
机译:盐酸(HCl)和苛性碱(NaOH)是水工业中使用最广泛的化学品。由于当前市售的电极容易形成氯,因此通过水电解直接生产阳极电化学HCl尚不成功。这项研究提出了一项创新技术,即在水电解过程中使用Mn0.84Mo0.16O2.23析氧电极同时从NaCl中生成HCl和NaOH。结果表明,可以以高库仑效率(即≥95%)阳极产生质子,氯的形成占3,类似于所提供电荷的5%。阳极产生的HCl强度中等,CE为65 +/- 4%,而阴极苛性碱的CE为89 +/- 1%。 HCl生成的CE降低是由于质子从阳极到中间部分的穿越。总的来说,这项研究表明了从氯化钠中同时产生HCl和NaOH的潜力,这代表了自来水行业向HCl和NaOH现场生产迈出的重要一步。在这项研究中,人造盐水被用作钠和氯离子的来源。从理论上讲,人造盐水可用诸如反渗透浓缩液(ROC)之类的盐水废物流代替,从而使ROC成为宝贵的资源。

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