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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Conversion of [0001] Textured ZnO Nanofilm into [0110] Directed Nanowires Driven by CO Adsorption: In Situ Carbothermal Synthesis and Complementary First Principles Thermodynamics Simulations
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Conversion of [0001] Textured ZnO Nanofilm into [0110] Directed Nanowires Driven by CO Adsorption: In Situ Carbothermal Synthesis and Complementary First Principles Thermodynamics Simulations

机译:由CO吸附驱动的[0001]织构的ZnO纳米膜到[0110]定向纳米线的转化:原位碳热合成和互补的第一原理热力学模拟

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An in situ carbothermal process has been utilized to successfully convert sputtered (0001) oriented ZnO nanofilm into large scale [0110] directed nanowires at 800-900 °C in a tubular reaction chamber. To understand the conversion process and unravel the driving force behind this growth phenomenon, a comparative study has been carried out on the thermal annealing processes of ZnO nanofilms under different gas flows (with or without Ar flow) and atmosphere (with or without graphite source input) controls. It is found that the graphite source and Ar flow are both necessary to induce theconversion of ZnO (0001) oriented nanofilm into ZnO nanowires grown along [0110]. By heating the graphite source, aC-or CO-rich reducing atmosphere was generated and carried downstream by Ar flow during the conversion process, which proved to be the key. Complementary first principles computations suggest that changes in the ordering of surface energies in the presence of CO occur. As compared with the clean facets with an order of {1010}, {1120}, and {0001} from most to least stable, upon CO adsorption at high temperatures (900 °C), the {1120} and {0001} surfaces become more stable as compared to {1010}. This provides a strong thermodynamic driving force for the growth of nanowires along (1010) directions.
机译:在管式反应室内,在800-900°C的温度下,原位碳热工艺已成功地将溅射(0001)取向的ZnO纳米膜成功转化为大规模的[0110]定向纳米线。为了了解转化过程并揭示这种生长现象背后的驱动力,已对不同气体流量(有或没有氩流)和大气(有或没有石墨源输入)下ZnO纳米膜的热退火过程进行了比较研究。 )控件。发现石墨源和氩气流都是诱导ZnO(0001)取向的纳米膜转变为沿[0110]生长的ZnO纳米线所必需的。通过加热石墨源,生成了富含C或CO的还原气氛,并在转化过程中被Ar流带到下游,这被证明是关键。互补的第一原理计算表明,在存在CO的情况下,表面能的顺序发生了变化。与{1010},{1120}和{0001}从最稳定到最不稳定的清洁小平面相比,在高温(900°C)下CO吸附后,{1120}和{0001}表面变成比{1010}更稳定。这为纳米线沿(1010)方向的生长提供了强大的热力学驱动力。

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