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Mechanism for the photocatalytic destruction of cyanide species

机译:氰化物物种光催化破坏的机制

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All cyanide species are considered toxic and can be found predominantly in industrial effluents generated by metallurgical operations. For example, cyanide's strong affinity for metals makes it favorable as an agent for metal finishing andtreatment and as a lixivant for metal leaching, particularly gold. These technologies are environmentally sound but require safeguards to prevent water contamination. Various methods of cyanide remediation by separation and destruction are available, butcertain methods are more effective than others depending on the cyanide species being remediated. Photolytic destruction is regarded as the one technique that is independent of the cyanide species involved. The destruction of various cyanide species byseveral photolytic techniques has been investigated for the past few years. A literature survey suggests heterogeneous photocatalysis with anatase (TiO{sub}2) should behave similarly to homogeneous photolysis with hydrogen peroxide (H{sub}2O{sub}2) sinceproposed reaction mechanisms for both processes involve hydroxyl radicals. However, experimental evidence on a suite of cyanide species suggests otherwise. A new mechanism for the photocatalytic destruction of cyanides, especially SAD species, istherefore proposed.
机译:所有氰化物物种都被认为是毒性的,并且可以主要在冶金作业产生的工业污水中发现。例如,氰化物对金属的强浓度使其有利地作为金属精加工和处理的药剂,作为金属浸出,特别是金的李氏菌属。这些技术是环保的,但需要保障措施来防止污染。通过分离和破坏的各种氰化物修复方法可获得,但根据正在修复的氰化物物种,但含量比其他方法更有效。光解破坏被认为是独立于所涉及的氰化物物种的一种技术。在过去几年中已经研究了大量的光溶解技术的各种氰化物物种的破坏。文献调查表明,与锐钛矿(TiO {Sub} 2)的异质光催化应该与均匀的过氧化氢(H {} 2O} 2)类似地表现出类似的两种方法的反应机制涉及羟基。但是,关于氰化物种套件的实验证据表明另有说明。一种新的光催化破坏氰化物,尤其是伤心的物种,是提出的。

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