Abstract

Two-dimensional (2D) photonic crystals offer strong control over the propagation of light through their photonic bands. Theoretical methods for computing the band structure in 2D are well-established and fast because 2D photonic crystals are homogeneous in the third dimension. Experimental verification is scarce, however, especially in the near-infrared (NIR) range including telecom ranges, because real photonic crystals and experimental methods inherently cannot be homogeneous in the third dimension. In this work, we report momentum-resolved reflectivity measurements on photonic crystals that are periodic in two dimensions and homogeneous over a thickness of 5 µm. Using Fourier spectroscopy, we carefully select wave vectors in the 2D plane of periodicity of the photonic crystal to experimentally map band structures. Our experimental results agree excellently with 2D band structure calculations and with 2D finite-difference time-domain simulations, confirming that our experimental methods truly pertain to nanophotonics in 2D. Our results provide a robust bridge between theory and experiment, and our techniques can be readily extended to other 2D structures, including those with functional defects.

URL

https://doi.org/10.1364/OE.581996

Authors

T. J. Vreman, M. J. Goodwin, A. Lagendijk, and W. L. Vos

Year of publication

2026

Date published

01/2026

Journal

Opt. Express

Volume

34

Number

1

Pages

971-979

DOI number

10.1364/OE.581996

Keywords

2D photonic crystals, momentum-resolved, near infrared, photonic band gap, silicon nanophotonics