A Quantitative Study of the Effect of Cladding Thickness on Modal Confinement Loss in Photonic Waveguides
Shidong Jiang, Jun Lai

TL;DR
This paper introduces a highly accurate computational method to analyze how finite cladding thickness affects modal confinement loss in photonic waveguides, crucial for designing compact integrated photonic devices.
Contribution
It presents a novel boundary integral equation and Sommerfeld integral-based scheme for precise calculation of propagation constants in layered photonic waveguides with arbitrary inclusions.
Findings
Modal confinement loss increases exponentially as cladding thickness decreases.
Method achieves over 10-digit accuracy in propagation constant computation.
Accurately models waveguides with corners and finite cladding layers.
Abstract
There has been increasing interest in making the photonic devices more and more compact in the integrated photonics industry, and one of the important questions for manufacturers and design engineers is how to quantify the effect of the finite cladding thickness on the modal confinement loss of photonic waveguides. This requires at least six to seven digits accuracy for the computation of propagation constant since the modal confinement loss is proportional to the imaginary part of that is six to seven orders of magnitude smaller than its real part by the industrial standard. In this paper, we present an accurate and efficient method to compute the propagation constant of electromagnetic modes of photonic waveguides with arbitrary number of (nonsmooth) inclusions in a layered media. The method combines a well-conditioned boundary integral equation formulation for…
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