Electrochemical generation of hydrogen peroxide from dissolved oxygen in acidic solutions

化学 电解质 限制电流 过氧化氢 电化学 无机化学 阴极 电解 阴极保护 氧气 电流密度 体积流量 惰性 分析化学(期刊) 电极 色谱法 热力学 有机化学 物理 物理化学 量子力学
作者
Zhimin Qiang,Jih-Hsing Chang,Chin‐Pao Huang
出处
期刊:Water Research [Elsevier]
卷期号:36 (1): 85-94 被引量:448
标识
DOI:10.1016/s0043-1354(01)00235-4
摘要

Hydrogen peroxide (H2O2) was electro-generated in a parallel-plate electrolyzer by reduction of dissolved oxygen (DO) in acidic solutions containing dilute supporting electrolyte. Operational parameters such as cathodic potential, oxygen purity and mass flow rate, cathode surface area. pH, temperature, and inert supporting electrolyte concentration were systematically investigated as to improve the Faradic current efficiency of H2O2 generation. Results indicate that significant self-decomposition of H2O2 only occurs at high pH (> 9) and elevated temperatures (> 23 degrees C). Results also indicate that the optimal conditions for H2O2 generation are cathodic potential of -0.5 V vs. saturated calomel electrode (SCE), oxygen mass flow rate of 8.2 x 10(-2) mol/min, and pH 2. Under the optimal conditions, the average current density and average current efficiency are 6.4A/m2 and 81%, respectively. However, when air is applied at the optimal flow rate of oxygen, the average current density markedly decreases to 2.1 A/m2, while the average current efficiency slightly increases to 90%. The limiting current density is 6.4 A/m2, which is independent of cathode geometry and surface area. H2O2 generation is favored at low temperatures. In the concentration range studied (0.01-0.25 M), the inert supporting electrolyte (NaClO4) affects the total potential drop of the electrolyzer, but does not affect the net generation rate of H2O2.
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