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Photoreduction of SERS-active metallic nanostructures on chemically-patterned ferroelectric crystals

机译:化学图案化铁电晶体上SERS活性金属纳米结构的光还原

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摘要

Photodeposition of metallic nanostructures onto ferroelectric surfaces is typically based on patterning local surface reactivity via electric field poling. Here, we demonstrate metal deposition onto substrates which have been chemically patterned via proton exchange (i.e., without polarization reversal). The chemical patterning provides the ability to tailor the electrostatic fields near the surface of lithium niobate crystals and these engineered fields are used to fabricate metallic nanostructures. The effect of the proton exchange process on the piezoelectric and electrostatic properties of the surface is characterized using voltage modulated atomic force microscopy techniques, which combined with modeling of the electric fields at the surface of the crystal, reveal that the deposition occurs preferentially along the boundary between ferroelectric and proton exchanged regions. The metallic nanostructures have been further functionalized with a target probe molecule, 4-aminothiophenol, from which surface enhanced Raman scattering (SERS) signal is detected, demonstrating the suitability of chemically patterned ferroelectrics as SERS-active templates.
机译:金属纳米结构在铁电表面上的光沉积通常基于通过电场极化将局部表面反应性图案化。在这里,我们展示了金属沉积在已通过质子交换化学图案化(即没有极化反转)的基板上的情况。化学构图提供了在铌酸锂晶体表面附近调整静电场的能力,这些工程场用于制造金属纳米结构。质子交换过程对表面的压电和静电性质的影响使用电压调制的原子力显微镜技术进行了表征,该技术与晶体表面电场的建模相结合,揭示了沉积优先沿边界发生在铁电和质子交换区域之间。金属纳米结构已经用目标探针分子4-氨基苯硫酚进一步官能化,从该分子中检测到表面增强的拉曼散射(SERS)信号,证明了化学构图的铁电体作为SERS活性模板的适用性。

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