Toward augmenting tip-enhanced nanoscopy with optically resolved scanning probe tips

J. Belhassen, Simcha Glass, Eti Teblum, G. Stanciu, D. Tranca, Z. Zalevsky, S. Stanciu, A. Karsenty
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引用次数: 2

Abstract

Abstract. A thorough understanding of biological species and emerging nanomaterials requires, among other efforts, their in-depth characterization through optical techniques capable of nanoresolution. Nanoscopy techniques based on tip-enhanced optical effects have gained tremendous interest over the past years, given their potential to obtain optical information with resolutions limited only by the size of a sharp probe interacting with focused light, irrespective of the illumination wavelength. Although their popularity and number of applications is rising, tip-enhanced nanoscopy (TEN) techniques still largely rely on probes that are not specifically developed for such applications, but for atomic force microscopy. This limits their potential in many regards, e.g., in terms of signal-to-noise ratio, attainable image quality, or extent of applications. We take the first steps toward next-generation TEN by demonstrating the fabrication and modeling of specialized TEN probes with known optical properties. The proposed framework is highly flexible and can be easily adjusted to be used with diverse TEN techniques, building on various concepts and phenomena, significantly augmenting their function. Probes with known optical properties could potentially enable faster and more accurate imaging via different routes, such as direct signal enhancement or facile and ultrafast optical signal modulation. We consider that the reported development can pave the way for a vast number of novel TEN imaging protocols and applications, given the many advantages that it offers.
利用光学分辨扫描探针尖端增强尖端纳米显微镜
摘要对生物物种和新兴纳米材料的深入了解需要通过具有纳米分辨率的光学技术对其进行深入表征。基于尖端增强光学效应的纳米技术在过去几年中获得了巨大的兴趣,因为它们具有获得光学信息的潜力,其分辨率仅受与聚焦光相互作用的尖锐探针的大小的限制,而与照明波长无关。尽管尖端增强纳米显微镜(TEN)技术的普及程度和应用数量正在上升,但它在很大程度上仍然依赖于探针,这些探针不是专门为这种应用而开发的,而是用于原子力显微镜的。这限制了它们在许多方面的潜力,例如,在信噪比、可获得的图像质量或应用范围方面。我们通过展示具有已知光学特性的专用TEN探针的制造和建模,向下一代TEN迈出了第一步。提议的框架是高度灵活的,可以很容易地调整,以使用不同的十大技术,建立在不同的概念和现象,显著增强其功能。具有已知光学特性的探针可以通过不同的途径实现更快、更准确的成像,例如直接信号增强或简单、超快的光信号调制。鉴于其提供的许多优势,我们认为报告的发展可以为大量新的TEN成像协议和应用铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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