Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/179935
Title: Inverse design of topological photonic time crystals via deep learning
Authors: Long, Yang
Zou, Linyang
Yu, Letian
Hu, Hao
Xiong, Jiang
Zhang, Baile
Keywords: Physics
Issue Date: 2024
Source: Long, Y., Zou, L., Yu, L., Hu, H., Xiong, J. & Zhang, B. (2024). Inverse design of topological photonic time crystals via deep learning. Optical Materials Express, 14(8), 2032-2039. https://dx.doi.org/10.1364/OME.525396
Project: NRF-CRP23-2019-0007 
MOE-T2EP50123-0007 
Journal: Optical Materials Express 
Abstract: Photonic time crystals are a new kind of photonic system in modern optical physics, leading to devices with new properties in time. However, so far, it is still a challenge to design photonic time crystals with specific topological states due to the complex relations between time crystal structures and topological properties. Here, we propose a deep-learning-based approach to address this challenge. In a photonic time crystal with time inversion symmetry, each band separated by momentum gaps can have a non-zero quantized Berry phase. We show that the neural network can learn the relationship between time crystal structures and Berry phases, and then determine the crystal structures of photonic time crystals based on given Berry phase properties. Our work shows a new way of applying machine learning to the inverse design of time-varying optical systems and has potential extensions to other fields, such as time-varying phononic devices.
URI: https://hdl.handle.net/10356/179935
ISSN: 2159-3930
DOI: 10.1364/OME.525396
Schools: School of Physical and Mathematical Sciences 
School of Electrical and Electronic Engineering 
Research Centres: Centre for Disruptive Photonic Technologies (CDPT) 
Rights: © 2024 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement.
Fulltext Permission: open
Fulltext Availability: With Fulltext
Appears in Collections:SPMS Journal Articles

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