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The synthesis of metallic nanoparticles inside live plants

机译:活植物内金属纳米粒子的合成

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There is increasing commercial demand for nanoparticles because of their wide applicability in a growing number of fields, e.g. electronics, catalysis, chemistry, energy, and medicine. Metallic nanoparticles are traditionally synthesized by wet chemical techniques, where the chemicals used are quite often toxic and flammable. In this work, we describe a cost effective and environmentally sound technique for the synthesis of metallic nanoparticles using live plants. We have adopted the generic term, phytosynthesis to describe this process. Nanoparticles of common heavy metal ions, e.g. Ag, Cu, Co, Zn and Ni, were synthesized by exposing plants to aqueous metal salt solutions. These experiments were used to evaluate the potential of two known hyperaccumulator species Brassica juncea, Helianthus annus and Medicago sativa for producing nanoparticles. The influence of exposure time, substrate metal ion concentration and chelating agent addition were all investigated. Brassica juncea was found to be the best plant for sequestering metals from aqueous solutions and depositing them as intracellular nanoparticles. Metal concentrations were determined by atomic absorption and inductively coupled plasma spectroscopy. Transmission electron microscopy was used to measure the size and shape of the nanoparticles formed.
机译:由于它们在越来越多的田地中,纳米颗粒对纳米颗粒的商业需求增加了越来越多的商业需求。电子,催化,化学,能量和药物。金属纳米颗粒传统上通过湿化学技术合成,其中使用的化学品通常毒性和易燃。在这项工作中,我们使用活植物描述了一种用于合成金属纳米颗粒的成本效益和环境的技术。我们已经采用了通用术语,植物合成来描述这一过程。纳米颗粒的普通重金属离子,例如普通重金属离子。通过将植物暴露于金属盐溶液中,合成Ag,Cu,Co,Zn和Ni。这些实验用于评估两种已知的高累积物种Brassica Juncea,Helianthus Annus和Medicago Sativa的潜力,用于生产纳米颗粒。曝光时间,衬底金属离子浓度和螯合剂的影响全部研究。发现Brassica Juncea是来自水溶液中金属的最佳植物,并将其作为细胞内纳米颗粒沉积。通过原子吸收和电感耦合等离子体光谱法测定金属浓度。透射电子显微镜用于测量形成的纳米颗粒的尺寸和形状。

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