Abstract

Recently, plasmonic waveguides have been intensively studied as promising basic building blocks for the construction of extremely compact photonic devices with subwavelength characteristic dimensions. A number of different types of plasmonic waveguide structures have been recently proposed, theoretically analyzed, and their properties experimentally verified. The fundamental trade-off in the design of plasmonic waveguides for potential application in information technologies lies in the contradiction between their mode field confinement and propagation loss: the higher confinement, the higher loss, and vice versa. Various definitions of figures of merit of plasmonic waveguides have been also introduced for the characterization of their properties with a single quantity. In this contribution, we theoretically analyze one specific type of a plasmonic waveguide – the hybrid dielectric-loaded plasmonic waveguide, or – as we call it in this paper – the hybrid dielectric-plasmonic slot waveguide, which exhibits very strong field confinement combined with acceptable losses allowing their application in some integrated plasmonic devices. In contrast to the structures analyzed previously, our structure makes use of a single low-index dielectric only. We first define the effective area of this waveguide type, and using waveguide parameters close to the optimum we analyze several waveguide devices as directional couplers, multimode interference couplers (MMI), and the Mach-Zehnder interferometer based on the MMI couplers. For the full-vector 3D analysis of these structures, we use modelling tools developed in-house on the basis of the Fourier Modal Method (FMM). Our results thus serve to a dual purpose: they confirm that (i) these structures represent promising building blocks of plasmonic devices, and (ii) our FMM codes are capable of efficient 3D vector modelling of plasmonic waveguide devices.

Highlights

  • Among a vast number of other plasmonic waveguides, a novel plasmonic waveguiding structure – a hybrid dielectric-loaded plasmonic waveguide (HDLPW) – has been proposed, its waveguide properties were numerically analyzed, and some passive and even active plasmonic waveguide devices based on HDLPW were investigated both theoretically and experimentally [1]–[12]

  • We have recently independently arrived to a very similar structure in the course of testing the capabilities of modelling plasmonic structures with our full-vector 3D modelling tools developed on the basis of the Fourier Modal Method (FMM) [13]–[16]

  • For the full-vector 3D analysis of these structures we use our in-house modelling tools [13]–[16]. Results confirm that these structures represent promising building blocks of plasmonic devices, and that our FMM codes can be efficiently used for full-vector 3D modelling of plasmonic devices

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Summary

Richter

A number of different types of plasmonic waveguide structures have been recently proposed, theoretically analyzed, and their properties experimentally verified. Various definitions of figures of merit of plasmonic waveguides have been introduced for the characterization of their properties with a single quantity. In this contribution, we theoretically analyze one specific type of a plasmonic waveguide – the hybrid dielectric-loaded plasmonic waveguide, or – as we call it in this paper – the hybrid dielectric-plasmonic slot waveguide, which exhibits very strong field confinement combined with acceptable losses allowing their application in some integrated plasmonic devices.

INTRODUCTION
HYBRID DIELECTRIC-PLASMONIC SLOT WAVEGUIDES
PLASMONIC WAVEGUIDE DEVICES
CONCLUSION

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