Department of Materials Science and Engineering , University of Tennessee , Knoxville , Tennessee 37996 , United States.
Department of Chemistry and Biochemistry , University of Notre Dame , Notre Dame , Indiana 46556 , United States.
ACS Comb Sci. 2018 Nov 12;20(11):633-642. doi: 10.1021/acscombsci.8b00091. Epub 2018 Oct 18.
The Au-Al alloy system was investigated via a combinatorial thin film sputtering method for its potential as a plasmonic material. Au Al combinatorial libraries were cosputtered from Au and Al elemental targets and the composition, phase, and dielectric function of a ∼350 nm film was determined using energy dispersive spectroscopy (EDS), grazing incidence X-ray diffraction (GIXRD), and spectroscopic ellipsometry, respectively. The phase evolution and optical properties were analyzed after annealing various compositions under a vacuum. The phases present matched the expected phases based on the published Al-Au binary phase diagram at all compositions. Interestingly, the mixed phase Al-AuAl region showed the most optical tunability, where a maximum in the real part of the dielectric function progressively shifted to higher energy for increasing gold concentration. For almost pure AuAl, the imaginary component is largely reduced in the visible range and is comparable to that of pure Al in the UV region. A 20-nm-thick film with composition AuAl was studied using a (scanning) transmission electron microscope with an in situ laser heating system. The structures of the as-deposited and laser annealed films were determined using selected area diffraction and the bulk plasmon of AuAl and Al realized with electron energy loss spectroscopy. Last, the Au-rich solid solution region was investigated as a surface enhanced Raman spectroscopy (SERS) substrate using the benezenethiol (BT) molecule. Good SERS intensity was maintained up to 30% Al addition where enhancements of 10 to 10 were still observed.
采用组合式薄膜溅射方法研究了 Au-Al 合金体系,以评估其作为等离子体材料的潜力。通过共溅射 Au 和 Al 元素靶材制备了 Au-Al 组合库,并分别采用能量色散光谱(EDS)、掠入射 X 射线衍射(GIXRD)和光谱椭圆偏振法确定了约 350nm 厚薄膜的成分、相和介电函数。对不同成分的薄膜进行真空退火后,分析了其相演变和光学性能。所有成分下的相均与基于已发表的 Al-Au 二元相图的预期相匹配。有趣的是,混合相 Al-AuAl 区域表现出最大的光学可调谐性,介电函数实部的最大值随金浓度的增加逐渐向高能方向移动。对于几乎纯的 AuAl,在可见光范围内的虚部大大减小,在 UV 区域与纯 Al 的相当。对组成 AuAl 的 20nm 厚薄膜进行了研究,使用带有原位激光加热系统的(扫描)透射电子显微镜。采用选区衍射和电子能量损失光谱确定了沉积态和激光退火态薄膜的结构以及 AuAl 和 Al 的体等离子体。最后,研究了富 Au 固溶体区域作为表面增强拉曼光谱(SERS)衬底,使用苯硫醇(BT)分子。在添加 30% Al 时仍保持良好的 SERS 强度,增强倍数为 10 到 10。