论文标题

在激烈的连续波照明下,单金属纳米颗粒的热光非线性

The thermo-optic nonlinearity of single metal nanoparticles under intense continuous-wave illumination

论文作者

Un, Ieng Wai, Sivan, Yoatan

论文摘要

在过去的几十年中,对金属纳米颗粒的非线性反应的广泛研究报告了非线性系数的广泛差异,因此揭示了对基础物理学的高度混乱的情况。这自然会阻止这些系统用于实用设备的合理设计。在这里,我们对纯热模型中连续波照明下金属球的非线性响应进行了系统的研究。我们表征了温度升高和整体热态非线性反应对粒径和介电常数,光学和热宿主特性以及这些特性的热衍生物的强烈依赖性。这种对非中部参数的依赖性解释了为什么从特定系统中提取内在的非线性系数是不合适的。尽管揭示了复杂的多参数依赖性,但我们还是设法发现了非线性响应的相当简单的行为。特别是,我们表明,非线性系数表现出对照明强度的依赖性,该发光强度模拟了温度本身对照明强度的依赖性,即它生长为小纳米粒子的大小,达到最大值,然后为较大的纳米颗粒而单调地降低。改进的建模使我们能够展示总体非线性响应,该响应比其他强烈非线性系统(例如$ε$ -NEAR-ZERO SYSTEMS)高约1000倍;它还为从单个金属纳米颗粒的散射实验测量提供了极好的匹配,从而确认了热非线性机理的优势。我们的工作为在一般条件下的金属二射系统非线性响应的先前研究总体评估奠定了基础。

Over the last few decades, extensive previous studies of the nonlinear response of metal nanoparticles report a wide variation of nonlinear coefficients, thus, revealing a highly confused picture of the underlying physics. This naturally prevents rational design of these systems for practical devices. Here, we provide a systematic study of the nonlinear response of metal spheres under continuous wave illumination within a purely thermal model. We characterize the strong dependence of the temperature rise and overall thermo-optic nonlinear response on the particle size and permittivity, on the optical and thermal host properties, as well as on the thermo-derivatives of these properties. This dependence on the non-intrinsic parameters explains why it is inappropriate to extract an intrinsic nonlinear coefficient from a specific system. Despite the revealed complex multi-parameter dependence, we managed to uncover a rather simple behaviour of the nonlinear response. In particular, we show that the nonlinearity coefficients exhibit a dependence on the illumination intensity which mimics the dependence of the temperature itself on the illumination intensity, namely, it grows for small nanoparticle sizes, reaches a maximum and then decreases monotonically for larger nanoparticles. The improved modelling allows us to demonstrate an overall nonlinear response which is about a 1000 times higher than in other strongly nonlinear systems (e.g., $ε$-near-zero systems); it also provides an excellent match to experimental measurements of the scattering from a single metal nanoparticles, thus, confirming the dominance of the thermal nonlinear mechanism. Our work lays the foundations for an overall evaluation of previous studies of the nonlinear response of metal-dielectric system under general conditions.

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