Photonic design of the Haldane model and its non-Hermitian extension

In this report, we present a topological phase transition induced by on-site gain and loss in a photonic Chern insulator based on a non-Hermitian extension of Haldane model. By arranging the gyromagnetic rods in a honeycomb lattice, the gain and loss parameter is tuned to achieve a non-Hermiticity-i...

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Main Author: Teo, Hau Tian
Other Authors: Zhang Baile
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2022
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Online Access:https://hdl.handle.net/10356/156345
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spelling sg-ntu-dr.10356-1563452023-02-28T23:13:33Z Photonic design of the Haldane model and its non-Hermitian extension Teo, Hau Tian Zhang Baile School of Physical and Mathematical Sciences blzhang@ntu.edu.sg Science::Physics In this report, we present a topological phase transition induced by on-site gain and loss in a photonic Chern insulator based on a non-Hermitian extension of Haldane model. By arranging the gyromagnetic rods in a honeycomb lattice, the gain and loss parameter is tuned to achieve a non-Hermiticity-induced phase transition with Hermitian-like features. Prior to the introduction to this photonic crystal, the concepts of band topology and photonics will first be drawn together, followed by general consequences of non-Hermitian parameters in photonic crystals. As a state-of-the-art model of Hermitian honeycomb lattices, the Haldane model will then be reviewed in order to demonstrate the competition between parity symmetry breaking and time-reversal symmetry breaking, inducing topological phase transitions in Hermitian regime. The gain and loss parameter is eventually applied on the Haldane model and the corresponding photonic crystals, which in turn introduces a new degree of freedom of symmetry breaking to realize topological phase transitions. Bulk and edge dispersion will be illustrated in both Hermitian and non-Hermitian cases, highlighting bulk-edge correspondence and robustness of chiral edge states that are uncommon in non-Hermitian systems. Our results not only lead to the possibility to non-Hermitian control over band topology in Chern insulators, but also pave the way to novel applications in active topological photonic devices supported by its robustness against manufacturing errors. Bachelor of Science in Physics 2022-04-27T00:35:02Z 2022-04-27T00:35:02Z 2022 Final Year Project (FYP) Teo, H. T. (2022). Photonic design of the Haldane model and its non-Hermitian extension. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/156345 https://hdl.handle.net/10356/156345 en application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Physics
spellingShingle Science::Physics
Teo, Hau Tian
Photonic design of the Haldane model and its non-Hermitian extension
description In this report, we present a topological phase transition induced by on-site gain and loss in a photonic Chern insulator based on a non-Hermitian extension of Haldane model. By arranging the gyromagnetic rods in a honeycomb lattice, the gain and loss parameter is tuned to achieve a non-Hermiticity-induced phase transition with Hermitian-like features. Prior to the introduction to this photonic crystal, the concepts of band topology and photonics will first be drawn together, followed by general consequences of non-Hermitian parameters in photonic crystals. As a state-of-the-art model of Hermitian honeycomb lattices, the Haldane model will then be reviewed in order to demonstrate the competition between parity symmetry breaking and time-reversal symmetry breaking, inducing topological phase transitions in Hermitian regime. The gain and loss parameter is eventually applied on the Haldane model and the corresponding photonic crystals, which in turn introduces a new degree of freedom of symmetry breaking to realize topological phase transitions. Bulk and edge dispersion will be illustrated in both Hermitian and non-Hermitian cases, highlighting bulk-edge correspondence and robustness of chiral edge states that are uncommon in non-Hermitian systems. Our results not only lead to the possibility to non-Hermitian control over band topology in Chern insulators, but also pave the way to novel applications in active topological photonic devices supported by its robustness against manufacturing errors.
author2 Zhang Baile
author_facet Zhang Baile
Teo, Hau Tian
format Final Year Project
author Teo, Hau Tian
author_sort Teo, Hau Tian
title Photonic design of the Haldane model and its non-Hermitian extension
title_short Photonic design of the Haldane model and its non-Hermitian extension
title_full Photonic design of the Haldane model and its non-Hermitian extension
title_fullStr Photonic design of the Haldane model and its non-Hermitian extension
title_full_unstemmed Photonic design of the Haldane model and its non-Hermitian extension
title_sort photonic design of the haldane model and its non-hermitian extension
publisher Nanyang Technological University
publishDate 2022
url https://hdl.handle.net/10356/156345
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