首页> 外文期刊>ACS applied materials & interfaces >Simple Growth of Faceted Au-ZnO Hetero-nanostructures on Silicon Substrates (Nanowires and Triangular Nanoflakes): A Shape and Defect Driven Enhanced Photocatalytic Performance under Visible Light
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Simple Growth of Faceted Au-ZnO Hetero-nanostructures on Silicon Substrates (Nanowires and Triangular Nanoflakes): A Shape and Defect Driven Enhanced Photocatalytic Performance under Visible Light

机译:在硅基底(纳米线和三角形纳米薄片)上简单生长多面的Au-ZnO杂纳米结构:可见光下形状和缺陷驱动的增强光催化性能

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A simple single-step chemical vapor deposition (CVD) method has been used to grow the faceted Au-ZnO hetero-nanostructures (HNs) either with nanowires (NWs) or with triangular nanoflakes (TNFs) on crystalline silicon wafers with varying oxygen defect density in ZnO nanostructures. This work reports on the use of these nanostructures on substrates for photodegradation of rhodamine B (RhB) dyes and phenol under the visible light illumination. The photoluminescence measurements showed a substantial enhancement in the ratio of defect emission to band-edge emission for TNF (ratio approximate to 7) compared to NW structures (ratio <= 0.4), attributed to the presence of more oxygen defects in TNF sample. The TNF structures showed 1 order of magnitude enhancement in photocurrent density and an order of magnitude less charge-transfer resistance (R-ct) compared to NWs resulting high-performance photocatalytic activity. The TNFs show enhanced photocatalytic performance compared to NWs. The observed rate constant for RhB degradation with TNF samples is 0.0305 min(-1), which is approximate to 5.3 times higher compared to NWs case with 0.0058 min(-1). A comparison has been made with bulk ZnO powders and ZnO nanostructures without Au to deduce the effect of plasmonic nanoparticles (Au) and the shape of ZnO in photocatalytic performance. The results reveal the enhanced photocatalytic capability for the triangular nanoflakes of ZnO toward RhB degradation with good reusability that can be attracted for practical applications.
机译:已经使用一种简单的单步化学气相沉积(CVD)方法在具有变化的氧缺陷密度的晶体硅晶片上使用纳米线(NW)或三角形三角形薄片(TNF)来生长刻面的Au-ZnO异质纳米结构(HN)。在ZnO纳米结构中。这项工作报道了在底物上使用这些纳米结构在可见光照射下若丹明B(RhB)染料和苯酚的光降解。与NW结构(比率<= 0.4)相比,光致发光测量显示TNF的缺陷发射与带状边缘发射之比(比率近似为7)显着提高,这归因于TNF样品中存在更多的氧缺陷。与NWs相比,TNF结构显示出光电流密度提高了1个数量级,而电荷转移阻力(R-ct)减小了一个数量级,从而产生了高性能的光催化活性。与NWs相比,TNFs显示出增强的光催化性能。观察到的TNF样品对RhB降解的速率常数为0.0305 min(-1),比NWs的0.0058 min(-1)高约5.3倍。对块状ZnO粉末和不含Au的ZnO纳米结构进行了比较,以推导出等离子体纳米颗粒(Au)的作用和ZnO的形状对光催化性能的影响。结果表明,ZnO三角纳米片对RhB降解的光催化能力增强,具有良好的可重复使用性,可被实际应用吸引。

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