Cu2O nanocrystals: Unveiling facet-dependent catalysis in phenylacetylene homocoupling

Satyaranjan Jena , Arnab Ghosh , Novuhulu Rhakho , Ramesh B. Dateer , Akshaya K. Samal
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Abstract

We report a one-pot synthesis method to synthesize Cu2O nanocubes (NCs) and octahedra (Oh) using mild reducing agents such as ascorbic acid (L-AA), and D-glucose, respectively. The shape-dependent nanostructures of Cu2O have been characterized using various spectroscopic and microscopic techniques exhibiting an average size of 450 and 650 nm for Cu2O NCs and Oh, respectively which is influenced by their size and presence of various facets. X-ray diffraction (XRD) patterns reveal the crystalline nature of Cu2O nanostructures. The synthesized Cu2O NCs and Oh were investigated for their catalytic potential in phenylacetylene homocoupling organic reaction. The aryl alkyne homocoupling reaction demonstrates excellent efficacy under optimized reaction conditions. This work highlights the potential of (111)-bound Cu2O Oh in achieving high organocatalytic activity for aryl alkyne homocoupling transformations. Furthermore, Cu2O Oh demonstrated efficacy in catalyzing a wide range of substituted aryl alkynes under optimized reaction conditions, underscoring the importance of facet engineering in nanocatalysts for organic coupling reactions. The study found that Cu2O Oh exhibited enhanced catalytic efficiency, achieving a yield of 95.6 %, which is significantly higher than the 54.3 % yield obtained with Cu2O NCs. This superior performance of Cu2O Oh is attributed to the high catalytic activity of the (111) facets.
Cu2O纳米晶体:揭示苯乙炔均偶联的面依赖催化作用
我们报道了用抗坏血酸(L-AA)和d -葡萄糖等温和还原剂一锅合成Cu2O纳米立方体(nc)和八面体(Oh)的方法。利用各种光谱和显微技术表征了Cu2O的形状依赖纳米结构,结果表明,Cu2O NCs和Oh的平均尺寸分别为450和650 nm,这受其尺寸和各个方面的存在的影响。x射线衍射(XRD)图揭示了Cu2O纳米结构的结晶性质。研究了合成的Cu2O NCs和Oh在苯乙炔均偶联有机反应中的催化性能。在优化后的反应条件下,芳炔均偶联反应效果良好。这项工作强调了(111)结合的Cu2O Oh在实现芳基炔均偶联转化的高有机催化活性方面的潜力。此外,在优化的反应条件下,Cu2O Oh在催化多种取代芳基炔方面表现出了有效的效果,强调了小面工程在有机偶联反应纳米催化剂中的重要性。研究发现,Cu2O Oh的催化效率提高,产率达到95.6% %,显著高于Cu2O NCs的54.3% %。Cu2O Oh的优异性能归因于(111)切面的高催化活性。
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