Defect-engineered graphitic carbon nitride on carbon cloth supports for the photoelectrocatalytic degradation of organophosphate pesticides†

Giacomo Marchiori, Roberta Seraglia, Gian Andrea Rizzi, Chiara Maccato, Mattia Benedet, Emanuela Callone, Sandra Dirè, Alberto Gasparotto and Davide Barreca
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Abstract

The effective degradation of persistent aqueous pollutants, such as fenitrothion (FNT), a widely used organophosphate pesticide, represents a major urgency for the protection of human health and the environment. In this regard, this study is focused on the fabrication of green photoelectrocatalysts based on graphitic carbon nitride (gCN), capable of generating hydrogen peroxide (H2O2) to trigger electro-Fenton processes for FNT degradation. In particular, electrophoretic deposition of gCN onto carbon cloth (CC) substrates was performed starting from gCN powders designed via thermal condensation of urea mixed with acetylacetone (AcAc). The resulting defect engineering promoted an improved gCN light harvesting capability and an enhanced separation of photogenerated charge carriers. The obtained supported materials featured an attractive electrochemical reactivity and operational stability, opening the door to their possible real-world end-use. The present work illustrates, as a proof-of-concept, the potential of gCN-based photoelectrocatalysts in water treatment technologies, offering a sustainable solution in a greener perspective to mitigate the environmental impact of hazardous pollutants.

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碳布上的缺陷工程石墨氮化碳支架用于光电催化降解有机磷农药†
有效降解持久性水性污染物,如广泛使用的有机磷农药杀虫磷(FNT),是保护人类健康和环境的一项重大紧迫任务。在这方面,本研究的重点是基于石墨氮化碳(gCN)的绿色光电催化剂的制造,该催化剂能够产生过氧化氢(H2O2)来触发电fenton过程以降解FNT。特别是,通过尿素与乙酰丙酮(AcAc)混合热缩合设计的gCN粉末,进行了gCN在碳布(CC)衬底上的电泳沉积。由此产生的缺陷工程促进了改进的gCN光收集能力和增强的光生载流子分离。获得的支撑材料具有吸引人的电化学反应性和操作稳定性,为其可能的实际最终用途打开了大门。目前的工作表明,作为概念验证,基于gcn的光电催化剂在水处理技术中的潜力,从更环保的角度提供了可持续的解决方案,以减轻有害污染物对环境的影响。
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Solid-supported polymer-lipid hybrid membrane for bioelectrochemistry of a membrane redox enzyme. Back cover The first year of RSC Applied Interfaces: a retrospective A phosphite derivative with stronger HF elimination ability as an additive for Li-rich based lithium-ion batteries at elevated temperatures† Multilevel azopolymer patterning from digital holographic lithography
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