Visualization of photonic band structures via far-field measurements in SiNx photonic crystal slabs

Author:

Lan Wenze12ORCID,Fu Peng12ORCID,Ji Chang-Yin34,Wang Gang34ORCID,Yao Yugui34,Gu Changzhi12ORCID,Liu Baoli156ORCID

Affiliation:

1. Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences 1 , Beijing 100190, China

2. School of Physical Sciences, CAS Key Laboratory of Vacuum Physics, University of Chinese Academy of Sciences 2 , Beijing 100190, China

3. Centre for Quantum Physics, Key Laboratory of Advanced Optoelectronic Quantum Architecture and Measurement (MOE), School of Physics, Beijing Institute of Technology 3 , Beijing 100081, China

4. Beijing Key Lab of Nanophotonics and Ultrafine Optoelectronic Systems, School of Physics, Beijing Institute of Technology 4 , Beijing 100081, China

5. CAS Center for Excellence in Topological Quantum Computation, CAS Key Laboratory of Vacuum Physics, University of Chinese Academy of Sciences 5 , Beijing 100190, China

6. Songshan Lake Materials Laboratory 6 , Dongguan, Guangdong 523808, China

Abstract

Band structures of the photonic crystal slabs play a significant role in manipulating the flow of light and predicting exotic physics in photonics. In this Letter, we show that the key features of photonic band structures can be achieved experimentally by the polarization- and momentum-resolved photoluminescence spectroscopy utilizing the light emission properties of SiNx. The two-dimensional spectra clearly reveal the energy-momentum dispersion of band structures, which is in perfect agreement with the simulation results. The isofrequency contours can be measured easily by adding a bandpass filter with a desired photon energy. Furthermore, it is convenient to observe clearly and directly the optical singularity—the optical bound states in the continuum featured by dark point in three-dimensional photoluminescence spectra. The polarization-resolved isofrequency contours clearly show that this dark point is the center of an azimuthally polarized vortex. Finally, the helical topological edge states can be easily observed in photonic topological insulators with deformed hexagonal lattices. Our work provides a simple and effective approach for exploring topological photonics and other intriguing phenomena hidden in the photonic crystal slabs.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

China Postdoctoral Science Foundation

the Strategic Priority Research Program of CAS

Beijing Municipal Science & Technology Commission

the Key Research Program of Frontier Sciences of CAS

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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