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首页> 外文期刊>Nature reviews Cancer >Rapid and Scalable Synthesis of Cuprous Halide-Derived Copper Nano-Architectures for Selective Electrochemical Reduction of Carbon Dioxide
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Rapid and Scalable Synthesis of Cuprous Halide-Derived Copper Nano-Architectures for Selective Electrochemical Reduction of Carbon Dioxide

机译:快速且可扩展合成卤化亚铜衍生的铜纳米架构,用于二氧化碳的选择性电化学减少

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摘要

Electrochemical reduction of carbon dioxide (CO2) into value-added chemicals and fuels provides a promising pathway for environmental and energy sustainability. Copper (Cu) demonstrates a unique ability to catalyze the electrochemical conversion of CO2 into valuable multicarbon products. However, developing a rapid, scalable and cost-effective method to synthesize efficient and stable Cu catalysts with high selectivity toward multicarbon products at a low overpotential is still hard to achieve and highly desirable. In this work, we present a facile wet chemistry approach to yield well-defined cuprous halide (CuX, X = Cl, Br or I) microcrystals with different degrees of truncations at edges/vertices, which can be ascribed to the oxidative etching mechanism of halide ions. More importantly, the as-obtained cuprous halides can be electrochemically transformed into varied Cu nanoarchitectures, thus exhibiting distinct CO2 reduction behaviors. The CuI-derived Cu nanofibers composed of self-assembled nanoparticles are reported for the first time, which favor the formation of C2+3 products at a low overpotential with a particular selectivity toward ethane. In comparison, the Cu nanocubes evolved from CuCl are highly selective toward C-1 products. For CuBr-derived Cu nanodendrites, C-1 products are subject to form at a low overpotential, while C2+3 products gradually become dominant with a favorable formation of ethylene when the potential turns more negative. This work explicitly reveals the critical morphology effect of halide-derived Cu nanostructures on the CO2 product selectivity, and also provides an ideal platform to investigate the structure-property relationship for CO2 electroreduction.
机译:将二氧化碳(CO2)的电化学还原为增值化学品和燃料提供了对环境和能源可持续性的有希望的途径。铜(Cu)证明了催化CO 2的电化学转化为有价值的多糖产物的独特能力。然而,开发一种快速,可扩展且经济效益的方法,以合成具有高选择性的高效和稳定的Cu催化剂,在低过电位下具有高选择性的多种用途仍然难以实现和非常理想。在这项工作中,我们提出了一种容易湿化学方法,以产生具有不同处于边缘/顶点的不同截短的微晶来产生明确定义的卤化亚铜(CUX,X = CL,BR,BR,BR,BR或I),其可以归因于氧化蚀刻机构卤离子。更重要的是,可以将获得的亚卤化含量电化学转化为不同的Cu纳米建筑,因此表现出不同的CO 2减少行为。首次报道由自组装纳米颗粒组成的铜衍生的Cu纳米纤维,这有利于在低过电位下形成C2 + 3产物,其具有特定的选择性对乙烷。相比之下,从CuCl演化的Cu纳米孔对C-1产品具有高度选择性。对于CumR衍生的Cu nanodendrites,C-1产品受到低过电位的形式,而C2 + 3产物随着乙烯的良好形成,当电位变得更加阴性时,逐渐变得占主导地位。这项工作明确地揭示了卤化物衍生的Cu纳米结构对CO 2产品选择性的临界形态作用,并且还提供了研究CO2电氧化的结构性质关系的理想平台。

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