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在多孔碳酸钙模板上形成氧化铜纳米结构用于水处理。

Formation of Copper Oxide Nanotextures on Porous Calcium Carbonate Templates for Water Treatment.

机构信息

Department of Chemistry, Ben-Gurion University of the Negev, Beer-Sheva 8410501, Israel.

Ilse Katz Institute for Nanoscale Science and Technology, Ben-Gurion University of the Negev, Beer-Sheva 8410501, Israel.

出版信息

Molecules. 2021 Oct 7;26(19):6067. doi: 10.3390/molecules26196067.

Abstract

The necessity of providing clean water sources increases the demand to develop catalytic systems for water treatment. Good pollutants adsorbers are a key ingredient, and CuO is one of the candidate materials for this task. Among the different approaches for CuO synthesis, precipitation out of aqueous solutions is a leading candidate due to the facile synthesis, high yield, sustainability, and the reported shape control by adjustment of the counter anions. We harness this effect to investigate the formation of copper oxide-based 3D structures. Specifically, the counter anion (chloride, nitrate, and acetate) affects the formation of copper-based hydroxides and the final structure following their conversion into copper oxide nanostructures over porous templates. The formation of a 3D structure is obtained when copper chloride or nitrate reacts with a scaffold (marine-based calcium carbonate template) without external hydroxide addition. The transformation into copper oxides occurs after calcination or reduction of the obtained Cu(OH)X (X = Cl or NO) while preserving the porous morphology. Finally, the formed @CuO structure is examined for water treatment to remove heavy metal cations and degrade organic contaminant molecules.

摘要

提供清洁水源的必要性增加了对水处理催化系统开发的需求。良好的污染物吸附剂是关键成分之一,氧化铜是这项任务的候选材料之一。在氧化铜的合成方法中,由于其合成简单、产率高、可持续性以及通过调整抗衡阴离子来报告的形状控制,沉淀法从水溶液中沉淀出来是一种领先的方法。我们利用这种效应来研究基于氧化铜的 3D 结构的形成。具体来说,抗衡阴离子(氯离子、硝酸根离子和醋酸根离子)影响铜基氢氧化物的形成,以及在多孔模板上将其转化为氧化铜纳米结构后最终结构的形成。当铜盐(氯化物或硝酸盐)与支架(基于海洋的碳酸钙模板)反应而不添加外部氢氧化物时,会形成 3D 结构。在煅烧或还原所得到的 Cu(OH)X(X = Cl 或 NO)时发生向氧化铜的转化,同时保持多孔形态。最后,对形成的@CuO 结构进行水处理以去除重金属阳离子和降解有机污染物分子的测试。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ac8/8512094/dd3568c1a08e/molecules-26-06067-g001.jpg

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