论文标题

材料在线性$ε$和$μ$上的非线性光学响应的​​依赖性

Dependence of the Nonlinear-Optical Response of Materials on their Linear $ε$ and $μ$

论文作者

Solís, Diego M., Boyd, Robert W., Engheta, Nader

论文摘要

我们从理论和数字上研究了材料的非线性响应对线性相对电介电常数$ε$和磁渗透性$μ$的依赖性。低阶谐波生成过程的转化效率以及KERR效应非线性相移的速率和两光子吸收(TPA)的非线性损失的提高,随着$ε$和/或增加$ $ $的降低而增加。我们还讨论了这种非线性响应背后的原理和物理见解,尤其是在$ε$ -NEAR-ZERO(ENZ)媒体中的增强。 This behavior is consistent with the experimental observation of intriguingly high effective nonlinear refractive index in degenerate semiconductors such as indium tin oxide [\textit{Alam et al., Science 352 (795), 2016}] (where the nonlinearity is attributed to a modification of the energy distribution of conduction-band electrons due to laser-induced electron heating) and aluminum zinc氧化物[\ textit {Caspani等人,物理学。莱特牧师。 116(233901),2016}]在频率下,线性介电常数的实际部分消失。如此强大的非线性响应可以为非线性光学范围的新范式铺平道路,其转化效率更高,因此对于下一代综合纳米光子学的更好的微型化功能和功率要求。

We investigate, theoretically and numerically, the dependence of a material's nonlinear-optical response on the linear relative electric permittivity $ε$ and magnetic permeability $μ$. The conversion efficiency of low-order harmonic-generation processes, as well as the increase rate of Kerr-effect nonlinear phase shift and nonlinear losses from two-photon absorption (TPA), are seen to increase with decreasing $ε$ and/or increasing $μ$. We also discuss the rationale and physical insights behind this nonlinear response, particularly its enhancement in $ε$-near-zero (ENZ) media. This behavior is consistent with the experimental observation of intriguingly high effective nonlinear refractive index in degenerate semiconductors such as indium tin oxide [\textit{Alam et al., Science 352 (795), 2016}] (where the nonlinearity is attributed to a modification of the energy distribution of conduction-band electrons due to laser-induced electron heating) and aluminum zinc oxide [\textit{Caspani et al., Phys. Rev. Lett. 116 (233901), 2016}] at frequencies with vanishing real part of the linear permittivity. Such strong nonlinear response can pave the way for a new paradigm in nonlinear optics with much higher conversion efficiencies and therefore better miniaturization capabilities and power requirements for next-generation integrated nanophotonics.

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