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用于最大程度增强横向磁克尔效应的全介质磁光子光栅。

All-dielectric magnetophotonic gratings for maximum TMOKE enhancement.

作者信息

Carvalho William O F, Mejía-Salazar J R

机构信息

National Institute of Telecommunications (Inatel), 37540-000, Santa Rita do Sapucaí, MG, Brazil.

出版信息

Phys Chem Chem Phys. 2022 Mar 2;24(9):5431-5436. doi: 10.1039/d1cp05232b.

Abstract

All-dielectric nanophotonic devices are promising candidates for future lossless (bio)sensing and telecommunication applications. Active all-dielectric magnetophotonic devices, where the optical properties can be controlled by an externally applied magnetic field, have triggered great research interest. However, magneto-optical (MO) effects are still low for applications. Here, we demonstrate a concept for the enhancement of the transverse MO Kerr effect (TMOKE), with amplitudes of up to 1.85, , close to the maximum theoretical values of ±2 (in transmission). Our concept exploits the lateral leaky Bloch-modes to enhance the TMOKE, under near-zero transmittance conditions. Potential applications in (bio)sensing structures are numerically demonstrated. The effects of optical losses were studied using different combinations of materials. Significantly, we demonstrate TMOKE enhancements of two orders of magnitude in relation to recent experimental studies, using the same building materials.

摘要

全介质纳米光子器件是未来无损(生物)传感和电信应用的有前途的候选者。有源全介质磁光光子器件,其光学特性可由外部施加的磁场控制,已引发了极大的研究兴趣。然而,磁光(MO)效应在应用中仍然较低。在此,我们展示了一种增强横向MO克尔效应(TMOKE)的概念,其幅度高达1.85,接近±2(透射率)的最大理论值。我们的概念利用横向泄漏布洛赫模式在近零透射率条件下增强TMOKE。在(生物)传感结构中的潜在应用通过数值模拟得到了证明。使用不同材料组合研究了光学损耗的影响。值得注意的是,我们使用相同的构建材料,相对于最近的实验研究,展示了TMOKE增强了两个数量级。

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引用本文的文献

1
Toward Machine-Learning-Accelerated Design of All-Dielectric Magnetophotonic Nanostructures.
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