Chenming Wu, Chenxinyu Pan, Junsheng Zheng, Yuanbiao Tong, Xin Guo, Limin Tong, Pan Wang
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引用次数: 0
摘要
具有单晶结构和超光滑表面的金薄膜是制备低损耗等离子体纳米结构的理想材料。在这里,我们报道了一种基于重结晶的方法,可以高效地合成衬底上的单晶金薄片。通过将多晶金膜与四辛基溴化铵在~ 140℃下溶解,然后在~ 160℃下再结晶2小时,可以在衬底上直接获得高密度(bbb1000片/ cm2)的金薄片,其厚度集中在30 nm左右,最大横向尺寸可达0.12 mm。合成的金薄片具有面心立方晶体结构,表面光滑,表面均方根粗糙度低至~ 0.3 nm。为了证明它们在制造高质量等离子体纳米结构方面的优势,分别用聚焦离子束铣削单晶金片和多晶金膜制备了支持表面晶格共振模式的金纳米盘阵列,以进行比较。透射光谱表明,单晶金纳米盘阵列具有更高的等离子体共振质量因子(23.3 vs 15.1)和更大的透射率(41.3% vs 62.2%),这可归因于表面粗糙度和晶界造成的电子散射损失的减少。
Recrystallization-Enabled Fabrication of Single-Crystalline Gold Flakes for Plasmonic Applications.
Gold films with a single-crystalline structure and an ultrasmooth surface are highly desired for fabricating plasmonic nanostructures with low loss. Here, we report a recrystallization-based approach to synthesize on-substrate single-crystalline gold flakes with high efficiency. By dissolving a multicrystalline gold film with tetraoctylammonium bromide at ∼140 °C and then recrystallizing at ∼160 °C for 2 h, high-density (>1000 pieces per cm2) gold flakes can be obtained directly on a substrate, which have a thin thickness concentrated around 30 nm and a maximum lateral size up to 0.12 mm. The as-synthesized gold flakes have a face-centered cubic crystalline structure and smooth surface with a surface root-mean-square roughness as low as ∼0.3 nm. To demonstrate their advantage for fabricating high-quality plasmonic nanostructures, gold nanodisk arrays that can support surface lattice resonance mode are fabricated using focused ion beam milling from a single-crystalline gold flake and a multicrystalline gold film, respectively, for comparison. Their transmission spectra show that the single-crystalline gold nanodisk array has a higher quality factor (23.3 vs 15.1) and a deeper transmission dip (41.3% vs 62.2% for the minimum transmittance) of the plasmonic resonance, which can be attributed to the reduction in electron scattering loss caused by surface roughness and grain boundaries.
期刊介绍:
ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.