大量の有孔電極を用いた電気化学的なオゾン生成のための毛細血管効果による水解析
Chen Zhang1,2, Yingfeng Xu1,2, Ping Lu1
1State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences , Shanghai 200050, PR China.
Journal of the American Chemical Society
|November 4, 2017
まとめ
この研究は,気性オゾン生成の強化のための新しい毛細血管効果による電解戦略を導入しています. この方法は,酸素の進化を抑制し,オゾン収量を改善するためにユニークなアノド設計を使用し,コロナ放電の代替案を提供します.
科学分野:
- 電気化学
- 材料科学
背景:
- 電気化学的酸素進化反応 (OER) は,水解の効率を阻害する重要な過剰電位を必要とします.
- 電気化学的なオゾン生産 (EOP) はコロナ排出の代替手段ですが,OERの競争とオゾン脱出で課題に直面しています.
研究 の 目的:
- ガス状オゾン生成の強化のための毛細血管効果を有効にする電解戦略を開発する.
- 競合する酸素進化反応 (OER) を抑制し,オゾン収量を改善する.
主な方法:
- β-PbO2のキューボイドを積んだ多孔性鉛製の部分浸水アノードを使用する.
- 毛細血管の圧力とアノド構造がオゾン生成に及ぼす影響を調査する.
主要な成果:
- 固体アノドまたは通常の浸水と比較して,電気触媒による気体オゾン生成が著しく増加した.
- 毛細血管の圧力による"分子酸素ロック効果"を特定した.
- EOPを好む異常なO3の中間物質の生成を観察した.
結論:
- 毛細血管効果による電解戦略は,多孔性アノドを使用して,ガス状オゾン生成を増加させるのに有効です.
- 改善されたEOPメカニズムには"分子酸素ロック効果"とO3の中間生成が不可欠です.
- このアプローチは,水の電解によるオゾン生成の有望な代替手段です.
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