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首页> 外文期刊>Applied Sciences >Zinc Oxide Nanorod Surface-Enhanced Raman Scattering Substrates without and with Gold Nanoparticles Fabricated through Pulsed-Laser-Induced Photolysis
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Zinc Oxide Nanorod Surface-Enhanced Raman Scattering Substrates without and with Gold Nanoparticles Fabricated through Pulsed-Laser-Induced Photolysis

机译:氧化锌纳米棒表面增强拉曼散射基材没有通过脉冲激光诱导的光解制的金纳米粒子

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We fabricated surface-enhanced Raman scattering (SERS) substrates using gold nanoparticle (AuNP)-decorated zinc oxide (ZnO) nanorods (NRs). Prior to decoration with AuNPs, ZnO NRs on the glass substrate fabricated using the sol–gel method could enhance the SERS signal for detecting 10 ?5 M rhodamine 6G (R6G). Microscopic analysis revealed that the thermal-annealing process for fabricating the seed layers of ZnO facilitated the growth of ZnO NRs with the highly preferred c-axis (002) orientation. A decrease in the diameter of ZnO NRs occurred because of the use of annealed seek layers further increased the surface-to-volume ratio of ZnO NRs, resulting in an increase in the SERS signal for R6G of 10 ?5 M. To combine the localized surface plasmon resonance (LSPR) mode with the charge transfer (CT) mode, ZnO NRs were decorated with AuNPs through pulsed-laser-induced photolysis (PLIP). However, the preferred vertical (002) orientation of ZnO NRs was prone to the aggregation of AuNPs, which hindered the SERS signal. The experimental results revealed that ZnO NRs with the crystalline structure of horizontal (100) and (101) orientations facilitated the growth of homogeneous, independent and isolated AuNPs which serves as “hot spots” for SERS signal of detecting R6G at a low concentration of 10 ?9 M. Comparing to previous fabrication of SERS substrate, our method has advantage to fabricate AuNP-decorated ZnO NR in a short time. Moreover, the optimization of the SERS behaviors for different fabrication conditions of AuNPs using the PLIP method was investigated in detail.
机译:我们使用金纳米颗粒(AUNP) - 氧化锌(ZnO)纳米棒(NRS)制造了表面增强的拉曼散射(SERS)基材。在用AUNPS装饰之前,使用溶胶 - 凝胶法制造的玻璃基板上的ZnO NR可以增强SERS信号,用于检测10?5 m rhodamine 6g(R6g)。显微镜分析显示,用于制造ZnO种子层的热退火方法促进了ZnO NRS的生长,具有高度优选的C轴(002)取向。由于使用退火搜索层而发生ZnO NRS的直径的减小进一步增加了ZnO NRS的表面对体积比,导致SERS信号增加10?5米的柱信号。结合局部表面等离子体谐振(LSPR)模式具有电荷转移(CT)模式,通过脉冲激光诱导的光解(PLIP)用AUNPS装饰ZnO NR。然而,ZnO NRS的优选垂直(002)取向容易达到AUNP的聚集,这阻碍了SERS信号。实验结果表明,具有水平(100)和(101)取向的晶体结构的ZnO NR促进了均匀,独立和分离的AUNP的生长,其用于以低浓度检测R6G的SERS信号的“热点”与先前的Sers基材制造相比,我们的方法有利于在短时间内制造AUNP装饰的ZnO NR。此外,详细研究了使用PLIP方法对不同制造条件的SERs行为的优化。

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