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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >In situ formation of chiral core-shell nanostructures with raspberry-like gold cores and dense organic shells using catechin and their catalytic application
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In situ formation of chiral core-shell nanostructures with raspberry-like gold cores and dense organic shells using catechin and their catalytic application

机译:儿茶素原位形成具有覆盆子状金核和致密有机壳的手性核壳纳米结构及其催化应用

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摘要

Chiral core-shell nanostructures containing raspberry-like gold cores and well-defined dense organic shells are synthesized by an in situ method using a natural antioxidant catechin as the reducing agent. This method is flexible and enables control over the shell thickness by adjusting the molar ratio of catechin to HAuCl4. Transmission electron microscopic analysis shows the formation of core-shell nanostructures with somewhat raspberry-shaped gold cores. The proposed mechanism explains that catechin reduces Au~(3+) to metallic Au to gold nanostructures and gets oxidized to different oligomeric products that are adsorbed in situ and assembled through H-bonding and form a thick organic shell around the generated gold nanostructures. Each of these oxidized forms of catechin is well-characterized by FTIR, ESI-MS, and MALDI-TOF-MS spectroscopies. This reaction follows a radical pathway as confirmed by electron paramagnetic resonance spectroscopy. Due to the presence of a compact and dense shell, the rate of gold core dissolution sharply decreases compared to that of the dissolution of monolayer protected Au nanoparticles when etched with KCN solution. The optical activity of the core-shell nanostructure is the result of the interaction between chiral shells and gold cores as observed by circular dichroism (CD) spectroscopy. The chiral core-shell Au nanostructures exhibit a CD band at the plasmon resonance frequency (~596 nm). Finally, these chiral core-shell nanostructures are used as an effective catalyst in the borohydride reduction of p-nitrophenol.
机译:通过使用天然抗氧化剂儿茶素作为还原剂的原位方法合成了包含树莓状金核和定义明确的致密有机壳的手性核壳纳米结构。这种方法很灵活,可以通过调节儿茶素与HAuCl4的摩尔比来控制壳的厚度。透射电子显微镜分析显示了具有树莓形金核的核-壳纳米结构的形成。所提出的机理解释了儿茶素将Au〜(3+)还原为金属Au转化为金纳米结构,并被氧化成不同的低聚产物,这些产物原位吸附并通过H键组装,并在生成的金纳米结构周围形成厚有机壳。儿茶素的这些氧化形式均通过FTIR,ESI-MS和MALDI-TOF-MS光谱学得到了很好的表征。如电子顺磁共振波谱证实的,该反应遵循自由基途径。由于存在致密且致密的外壳,与用KCN溶液蚀刻时,单层保护的Au纳米颗粒的溶解速率相比,金芯的溶解速率急剧降低。核-壳纳米结构的光学活性是通过圆二色性(CD)光谱观察到的手性壳和金核之间相互作用的结果。手性核-壳金纳米结构在等离振子共振频率(〜596 nm)处具有CD谱带。最后,这些手性核-壳纳米结构被用作对硝基苯酚的硼氢化物还原中的有效催化剂。

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