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Spin-locked effect in non-Euclidean space

03.21.24 | Higher Education Press

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Modulation of topological phase transition has been pursued by researchers in both condensed matter and optics research fields, and has been realized in Euclidean systems, such as topological photonic crystals, topological metamaterials, and coupled resonator arrays. However, the spin-controlled topological phase transition in non-Euclidean space has not yet been explored.

Here, we propose a non-Euclidean configuration based on Möbius rings, and we demonstrate the spin-controlled transition between the topological edge state and the bulk state. The Möbius ring, which is designed to have an 8π period, has a square cross section at the twist beginning and the length/width evolves adiabatically along the loop, accompanied by conversion from transverse electric to transverse magnetic modes resulting from the spin-locked effect.

This work provides a new degree of polarization to control topological photonic states based on the spin of Möbius rings and opens a way to tune the topological phase in non-Euclidean space. The work entitled “ Spin-controlled topological phase transition in non-Euclidean space ” was published on Frontiers of Optoelectronics (published on Mar. 19, 2024).

Frontiers of Optoelectronics

10.1007/s12200-024-00110-w

Experimental study

Not applicable

Spin-controlled topological phase transition in non-Euclidean space

19-Mar-2024

Keywords

Article Information

Contact Information

Rong Xie
Higher Education Press
xierong@hep.com.cn

Source

How to Cite This Article

APA:
Higher Education Press. (2024, March 21). Spin-locked effect in non-Euclidean space. Brightsurf News. https://www.brightsurf.com/news/LDEP5Y68/spin-locked-effect-in-non-euclidean-space.html
MLA:
"Spin-locked effect in non-Euclidean space." Brightsurf News, Mar. 21 2024, https://www.brightsurf.com/news/LDEP5Y68/spin-locked-effect-in-non-euclidean-space.html.