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宽带多共振金属纳米腔中的反斯托克斯光致发光和二次谐波产生的双模纳米等离子体光上转换。

Dual-Modal Nanoplasmonic Light Upconversion through Anti-Stokes Photoluminescence and Second-Harmonic Generation from Broadband Multiresonant Metal Nanocavities.

机构信息

Department of Electrical and Computer Engineering, Virginia Tech, Blacksburg, Virginia 24061, United States.

Department of Physics, Virginia Tech, Blacksburg, Virginia 24061, United States.

出版信息

ACS Nano. 2023 Jun 27;17(12):11362-11373. doi: 10.1021/acsnano.3c00559. Epub 2023 May 8.

Abstract

Metal nanocavities can generate plasmon-enhanced light upconversion signals under ultrashort pulse excitations through anti-Stokes photoluminescence (ASPL) or nonlinear harmonic generation processes, offering various applications in bioimaging, sensing, interfacial science, nanothermometry, and integrated photonics. However, achieving broadband multiresonant enhancement of both ASPL and harmonic generation processes within the same metal nanocavities remains challenging, impeding applications based on dual-modal or wavelength-multiplexed operations. Here, we report a combined experimental and theoretical study on dual-modal plasmon-enhanced light upconversion through both ASPL and second-harmonic generation (SHG) from broadband multiresonant metal nanocavities in two-tier Ag/SiO/Ag nanolaminate plasmonic crystals (NLPCs) that can support multiple hybridized plasmons with high spatial mode overlaps. Our measurements reveal the distinctions and correlations between the plasmon-enhanced ASPL and SHG processes under different modal and ultrashort pulsed laser excitation conditions, including incident fluence, wavelength, and polarization. To analyze the observed effects of the excitation and modal conditions on the ASPL and SHG emissions, we developed a time-domain modeling framework that simultaneously captures the mode coupling-enhancement characteristics, quantum excitation-emission transitions, and hot carrier population statistical mechanics. Notably, ASPL and SHG from the same metal nanocavities exhibit distinct plasmon-enhanced emission behaviors due to the intrinsic differences between the incoherent hot carrier-mediated ASPL sources with temporally evolving energy and spatial distributions and instantaneous SHG emitters. Mechanistic understanding of ASPL and SHG emissions from broadband multiresonant plasmonic nanocavities marks a milestone toward creating multimodal or wavelength-multiplexed upconversion nanoplasmonic devices for bioimaging, sensing, interfacial monitoring, and integrated photonics applications.

摘要

金属纳米腔在超短脉冲激发下可以通过反斯托克斯光致发光(ASPL)或非线性谐波产生过程产生等离子体增强的上转换信号,这为生物成像、传感、界面科学、纳米测温学和集成光子学等领域提供了各种应用。然而,在同一个金属纳米腔中实现 ASPL 和谐波产生过程的宽带多共振增强仍然具有挑战性,这阻碍了基于双模态或波长复用操作的应用。在这里,我们报告了一个实验和理论相结合的研究,研究了在双层 Ag/SiO/Ag 纳米层状等离子体晶体(NLPC)中的宽带多共振金属纳米腔中通过 ASPL 和二次谐波产生(SHG)的双模态等离子体增强上转换,该晶体可以支持具有高空间模式重叠的多个混合等离子体。我们的测量揭示了在不同模态和超短脉冲激光激发条件下,包括入射通量、波长和偏振,等离子体增强的 ASPL 和 SHG 过程之间的区别和相关性。为了分析激发和模态条件对 ASPL 和 SHG 发射的影响,我们开发了一个时域建模框架,该框架可以同时捕捉模式耦合增强特性、量子激发-发射跃迁和热载流子群体统计力学。值得注意的是,由于非相干热载流子介导的 ASPL 源的固有差异,即具有随时间演变的能量和空间分布的非相干热载流子源,与瞬时 SHG 发射器之间的差异,来自同一金属纳米腔的 ASPL 和 SHG 表现出不同的等离子体增强发射行为。对宽带多共振等离子体纳米腔中的 ASPL 和 SHG 发射的机制理解标志着朝着创建用于生物成像、传感、界面监测和集成光子学应用的多模态或波长复用上转换纳米等离子体器件迈出了重要一步。

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