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Biosynthesized Quantum Dot Size Cu Nanocatalyst: Peroxidase Mimetic and Aqueous Phase Conversion of Fructose

机译:生物合成的量子点大小Cu纳米催化剂:果糖的过氧化物酶模拟和水相转化

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摘要

Environmentally benign, stable quantum dot size spherical Cu particles with an average size of-4.5 nm, as measured via transmission electron microscope, were coherently tailored exploiting renewable ethno-pharmacological Oxalis corniculata plant extract as both reducing plus capping agent. The reliable green aqueous synthesis approach completely excluded the usage of inert atmosphere and harmful chemicals including organic solvents. The ensuing cost effective Cu nanoparticles exhibited excellent intrinsic peroxidase like activity and superior nanozyme behaviour compare to earlier reports with Km value of 0.01426 M and rmax equal to 0.1399 Mmin-1 toward the oxidation of peroxidase substrate H2O2 in presence of ophenylenediamine, a paradigm reaction. Significantly, the asprepared Cu particles have been proven to be a novel catalyst for feasible selective aqueous phase conversion of fructose to levulinic acid with a maximum yield of-22.38% at 90°C in the absenteeism of prominent side product(s), auxiliaries and high temperature reaction condition. Lewis acid property and large surface area of the generated nanoscale particles attributed to their excellent catalytic potential introducing a new avenue in the continuous demand for better sensing, biomedical applications and cleaner energy production.
机译:通过透射电子显微镜测量的环境良性,稳定的量子点大小的球形Cu颗粒是平均尺寸为-4.5 nm的,是一致量身定制的,可利用可再生的族裔药物corticulata corticulata植物提取物,因为既减少了加盖加盖剂。可靠的绿色水合成方法完全排除了惰性气氛和包括有机溶剂在内的有害化学物质的使用。随之而来的成本效益CU纳米颗粒表现出极好的内在过氧化物酶,例如活性和纳米核行为,与早期的报告相比,KM值为0.01426 m,而RMAX等于0.1399 mmin-1,在ophenymine aparadigmmine,paradAdigm Recions的存在下,对过氧化物酶底物H2O2的氧化为0.1399 mmin-1。值得注意的是,已证明质量的Cu颗粒是可行选择性水相的新型催化剂,在90°C下,在90°C的最大产量为22.38%的情况下,在不知不觉的情况下,显着的副产物,辅助剂,辅助和高温反应条件。刘易斯酸的特性和生成的纳米级颗粒的大表面积归因于其出色的催化潜力,该催化潜力引入了一种新的途径,以持续进行更好的感测,生物医学应用和清洁能源产生。

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