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Development and characterization of nanocomposites with gold nanoparticles embedded in the nanostructured silicon substrate.

机译:纳米复合材料的开发和表征,其中金纳米颗粒嵌入纳米结构的硅基底中。

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In the present work an alternative nanoparticle synthesis technique was developed, where the nanoparticles nucleate and grow inside the pores of the nanostructured porous silicon (NPS). Employing green method for the nanoparticle synthesis, yeast extract is used as a reducing agent. The porous layers were prepared by electrochemical etching of Boron-doped (100) Si substrate (0.01-0.02Ohm·cm). The NPS support was immersed into the reactive colloid for different times, then withdrawn, cleaned and dried. SEM and XRD measurements were carried out to characterize the NPS substrate and the immobilized catalyst nanoparticles. EDX mapping shows a homogeneous deposition of nanoparticles on the porous support. The average particle size, calculated from XRD diffractograms (using the Scherrer's formula), was found between 6 to 10 nm. This method provides a good incorporation and distribution of nanoparticles, also an alternative environment-friendly technique to develop catalytic devices fabricated on silicon substrate with an additional advantage of being integrated with the silicon based microelectronic circuits.
机译:在本工作中,开发了另一种纳米粒子合成技术,其中纳米粒子在纳米结构多孔硅(NPS)的孔内成核并生长。采用绿色方法合成纳米颗粒,酵母提取物被用作还原剂。多孔层是通过对硼掺杂的(100)Si衬底(0.01-0.02Ohm·cm)进行电化学蚀刻而制备的。将NPS载体浸入反应性胶体中不同时间,然后取出,清洗并干燥。进行SEM和XRD测量以表征NPS底物和固定的催化剂纳米颗粒。 EDX图谱显示纳米颗粒在多孔载体上的均匀沉积。由XRD衍射图(使用Scherrer公式)计算得出的平均粒径在6至10 nm之间。该方法提供了良好的纳米颗粒结合和分布,这也是开发在硅基底上制造的催化装置的另一种环境友好技术,具有与基于硅的微电子电路集成的额外优势。

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