论文标题

由激光消融在液体(LAL)中产生的混合Au-Si微球,用于温度回馈光学纳米敏感性和抗爆炸标签

Hybrid Au-Si microspheres produced by laser ablation in liquid (LAL) for temperature-feedback optical nano-sensing and anti-counterfeit labeling

论文作者

Gurbatov, Stanislav, Puzikov, Vladislav, Storozhenko, Dmitry, Modin, Evgeny, Mitsai, Eugeny, Cherepakhin, Artem, Shevlyagin, Aleksandr, Gerasimenko, Andrey V., Kulinich, Sergei A., Kuchmizhak, Aleksandr

论文摘要

杂交纳米材料的最新进展由不同的成分组成,允许改善用于光电,催化,医学诊断和传感的新型设备的性能和功能。但是,通过$ $ hybrid纳米结构内的贵金属和半导体等对比材料的合理组合通过$ $ hybrid纳米结构$ $ a纳米结构$ $ hyd-hybrid nanostructures $ a $ hybrid nanostructures $ a nanybrestures $ a nanstructures $ a nanscructures $ a the to-hybrid and-forde and to-hedroge and form-lithosich in soffication方法仍然是一个坚定的挑战。在这里,我们报告了在异丙醇中硅在异丙醇中的激光消融产生的Au-Si微球的两步合成,然后在存在Haucl $ _4 $的情况下对产生的Si纳米颗粒的激光照射。将[AUCL $ _4 $] $^ - $种类的热还原为金属黄金阶段,随后在激光照射下与硅与硅的混合产生了一种纳米结构的材料,具有独特的组成和形态,由电子显微镜,层析成像,层析成像和元素分析揭示。单个微球内金和硅等基本等离子和纳米光子材料的组合可以有效地进行光到热转化,以及具有温度反馈方式和扩展功能的单粒子SERS感应。此外,事实证明,具有特征性的拉曼信号和热电子诱导的非线性光致发光在Au-Si杂种中共存的非线性光致发光,以及通过激光消融在液体中制备的纳米材料的常规性,可用于实现基于物理上不可损坏的抗抗突击量的方法。

Recent progress in hybrid nanomaterials composed of dissimilar constituents permitted to improve performance and functionality of novel devices developed for optoelectronics, catalysis, medical diagnostic and sensing. However, the rational combination of such contrasting materials as noble metals and semiconductors within individual hybrid nanostructures $via$ a ready-to-use and lithography-free fabrication approach is still a standing challenge. Here, we report on a two-step synthesis of Au-Si microspheres generated by laser ablation of silicon in isopropanol followed by laser irradiation of the produced Si nanoparticles in presence of HAuCl$_4$. Thermal reduction of [AuCl$_4$]$^-$ species to metallic gold phase, along with its subsequent mixing with silicon under laser irradiation creates a nanostructured material with a unique composition and morphology revealed by electron microscopy, tomography and elemental analysis. Combination of such basic plasmonic and nanophotonic materials as gold and silicon within a single microsphere allows for efficient light-to-heat conversion, as well as single-particle SERS sensing with temperature feedback modality and expanded functionality. Moreover, the characteristic Raman signal and hot-electron induced nonlinear photoluminescence coexisting within Au-Si hybrids, as well as commonly criticized randomness of the nanomaterials prepared by laser ablation in liquid, were proved useful for realization of anti-counterfeiting labels based on physically unclonable function approach.

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