Optothermal Formation of Gold “Nano-Lemons” for SERS on Photolipid Bilayer Membranes

IF 7.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jinhua Zhang, Paul Vosshage, Ashwin Vadlamani, Francis Schuknecht, Theobald Lohmüller
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引用次数: 0

Abstract

Optical printing with laser light is a powerful method for patterning plasmonic nanoparticles on a solid support. However, using particles that display sharp features, such as gold nanostars or bipyramids, can be challenging because plasmonic heating involved in the printing process can lead to tip blunting and melting. This adversely affects the performance of these particles for spectroscopic or catalytic applications. Therefore, strategies need to be implemented to avoid thermal reshaping of complex-shaped nanoparticles either by minimizing plasmonic heating or by dissipating heat away from the particles. Here, an alternative view is proposed. Rather than avoiding plasmonic heating, it is demonstrated that optothermal printing can be leveraged to transform gold nanorods into ellipsoidal or lemon-shaped particles with sharper tips and enhanced local electromagnetic field intensities compared to the initial rods. The potential of these “nano-lemons” for spectroscopic applications is exemplified through surface enhanced Raman scattering measurements of azobenzene photoisomerization within supported photolipid bilayer membranes.

Abstract Image

光脂双层膜SERS中金“纳米柠檬”的光热形成
激光光学印刷是一种在固体载体上印制等离子体纳米粒子图案的有力方法。然而,使用具有尖锐特征的颗粒,如金纳米星或双棱锥,可能具有挑战性,因为打印过程中涉及的等离子体加热可能导致尖端变钝和熔化。这不利地影响了这些颗粒在光谱或催化应用中的性能。因此,需要采取一些策略来避免复杂形状纳米颗粒的热重塑,要么通过最小化等离子体加热,要么通过从颗粒中散热。在这里,提出了另一种观点。与避免等离子体加热相比,光热印刷可以将金纳米棒转化为椭球形或柠檬形颗粒,其尖端更锋利,与初始棒相比,局部电磁场强度增强。这些“纳米柠檬”在光谱应用方面的潜力是通过在支持的光脂双层膜内偶氮苯光异构的表面增强拉曼散射测量来例证的。
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来源期刊
Advanced Optical Materials
Advanced Optical Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-OPTICS
CiteScore
13.70
自引率
6.70%
发文量
883
审稿时长
1.5 months
期刊介绍: Advanced Optical Materials, part of the esteemed Advanced portfolio, is a unique materials science journal concentrating on all facets of light-matter interactions. For over a decade, it has been the preferred optical materials journal for significant discoveries in photonics, plasmonics, metamaterials, and more. The Advanced portfolio from Wiley is a collection of globally respected, high-impact journals that disseminate the best science from established and emerging researchers, aiding them in fulfilling their mission and amplifying the reach of their scientific discoveries.
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