论文标题
银金属合金与核壳纳米颗粒:对等离子增强和光热应用的影响
Silver-Gold Bimetallic Alloy versus Core-Shell Nanoparticles: Implications for Plasmonic Enhancement and Photothermal Applications
论文作者
论文摘要
双金属等离子体纳米颗粒可以根据成分的变化来调整光学响应和化学稳定性。当前的数值模拟研究比较了球形和各向异性(纳米元素和纳米棒)形状的AG-AU合金,Ag@au core-shell和Au@ag@ag@ag core-shell双金属纳米颗粒。通过研究球形和各向异性(在近红外区域中具有LSPR)形状,可以将有或没有带频带间过渡的病例解耦。明确的比较是由数值模型促进的,这些模型通过仔细验证和对文献中报道的Au-Ag合金的光学常数的支持。尽管Au-Ag核壳和合金纳米颗粒均表现出纯Ag和Au纳米颗粒之间的中间光学响应,但光谱特征存在明显的差异。同样,由于前一种情况,由于没有AU间的频带过渡,双金属构成在各向异性纳米颗粒中的影响与球形纳米颗粒的影响截然不同。通常,通过掺入AU,Ag纳米颗粒的化学稳定性提高了等离激元增强的成本,也适用于效果较弱的各向异性纳米颗粒。光热传热研究证实,通过在球形Ag纳米颗粒中掺入AU的吸收增加也导致稳态温度升高。另一方面,各向异性纳米颗粒本质上是更好的吸收剂,因此,更好的光热源,它们的光热特性显然不会受到一种金属在另一种金属中的强大影响。
Bimetallic plasmonic nanoparticles enable tuning of the optical response and chemical stability by variation of the composition. The present numerical simulation study compares Ag-Au alloy, Ag@Au core-shell, and Au@Ag core-shell bimetallic plasmonic nanoparticles of both spherical and anisotropic (nanotriangle and nanorods) shapes. By studying both spherical and anisotropic (with LSPR in the near-infrared region) shapes, cases with and without interband transitions of Au can be decoupled. Explicit comparisons are facilitated by numerical models supported by careful validation and examination of optical constants of Au-Ag alloys reported in literature. Although both Au-Ag core-shell and alloy nanoparticles exhibit an intermediary optical response between that of pure Ag and Au nanoparticles, there are noticeable differences in the spectral characteristics. Also, the effect of the bimetallic constitution in anisotropic nanoparticles is starkly different from that in spherical nanoparticles due to the absence of Au interband transitions in the former case. In general, the improved chemical stability of Ag nanoparticles by incorporation of Au comes with a cost of reduction in plasmonic enhancement, also applicable to anisotropic nanoparticles with a weaker effect. A photothermal heat transfer study confirms that increased absorption by the incorporation of Au in spherical Ag nanoparticles also results in an increased steady state temperature. On the other hand, anisotropic nanoparticles are inherently better absorbers, hence better photothermal sources and their photothermal properties are apparently not strongly affected by the incorporation of one metal in the other.