Numerical temporal-spectral analysis of non-scattering THz nanoscopy with resonant cantilevered tips.

IF 3.3 2区 物理与天体物理 Q2 OPTICS Optics express Pub Date : 2025-01-27 DOI:10.1364/OE.546921
Yueying Wang, Yuanpei Wei, Zhuocheng Zhang, Xingxing Xu, Zechuan Bin, Tianyu Zhang, Xiaoqiuyan Zhang, Shenggang Liu, Min Hu
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Abstract

Scattering-type scanning near-field optical microscopy (s-SNOM) under the excitation of single cycle picosecond (ps) pulse provides access to terahertz (THz) time-resolved nanoscopy. However, the development of THz nanoscopy has been greatly limited due to the inherently low efficiency of the scattered field and the convolution of the intrinsic material response with the extrinsic response of the cantilevered tip. In this work, we quantitatively study the near-field time-delayed pulse transients of resonant cantilevered tips, observing localized tip-enhanced coupling as well as delocalized collective charge oscillations propagating as resonant surface waves along cantilevered tips. By numerical temporal-spectral analysis, the phonon resonance of the topological insulator Bi2Se3 can be effectively extracted from the resonant surface waves at the end of the cantilever. We demonstrate that after propagating 600 µm, the intensity of near-field signals extracted from the resonant surface waves is about three orders higher than that from the traditional scattering field. Our research reveals the delocalized tip-enhanced light-matter interaction in propagating surface waves and proposes a promising route to non-scattering THz nanoscopy.

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谐振悬臂尖端非散射太赫兹纳米显微镜的时间谱分析。
在单周期皮秒(ps)脉冲激励下的散射型扫描近场光学显微镜(s-SNOM)提供了实现太赫兹(THz)时间分辨纳米显微镜的途径。然而,由于散射场固有的低效率和悬臂尖端的本征响应与外征响应的卷积,太赫兹纳米显微镜的发展受到了很大的限制。在这项工作中,我们定量地研究了谐振悬臂尖端的近场延时脉冲瞬态,观察了局部尖端增强耦合以及作为谐振表面波沿悬臂尖端传播的非局部集体电荷振荡。通过时间谱数值分析,可以有效地从悬臂末端的谐振表面波中提取拓扑绝缘体Bi2Se3的声子共振。研究表明,在传播600µm后,从谐振表面波中提取的近场信号强度比从传统散射场中提取的信号强度高约3个数量级。我们的研究揭示了表面波传播中离域尖端增强的光-物质相互作用,并为非散射太赫兹纳米观察提供了一条有前途的途径。
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来源期刊
Optics express
Optics express 物理-光学
CiteScore
6.60
自引率
15.80%
发文量
5182
审稿时长
2.1 months
期刊介绍: Optics Express is the all-electronic, open access journal for optics providing rapid publication for peer-reviewed articles that emphasize scientific and technology innovations in all aspects of optics and photonics.
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