2016
DOI: 10.1038/nature18604
|View full text |Cite
|
Sign up to set email alerts
|

Topological energy transfer in an optomechanical system with exceptional points

Abstract: Topological operations can achieve certain goals without requiring accurate control over local operational details; for example, they have been used to control geometric phases and have been proposed as a way of controlling the state of certain systems within their degenerate subspaces. More recently, it was predicted that topological operations can be used to transfer energy between normal modes, provided that the system possesses a specific type of degeneracy known as an exceptional point. Here we demonstrat… Show more

Help me understand this report
View preprint versions

Search citation statements

Order By: Relevance

Paper Sections

Select...
4
1

Citation Types

10
624
1

Year Published

2017
2017
2022
2022

Publication Types

Select...
6

Relationship

0
6

Authors

Journals

citations
Cited by 874 publications
(652 citation statements)
references
References 47 publications
10
624
1
Order By: Relevance
“…selection of a different final state when the system is repeatedly and slowly cycled in opposite directions of parameter space. To conclude, it is worth commenting similarities and differences between the chiral behavior induced by a Floquet EP, studied in this work, and the chirality observed when a static EP is encircled, a well-known phenomenon which has been investigated in several recent works [18,27,40,41,42,44,47]. In both cases chirality arises because asymmetry in nonadiabatic effects observed when the circulation direction of the loop is reversed, a typical signature of non-Hermitian dynamics.…”
Section: Discussionmentioning
confidence: 57%
See 4 more Smart Citations
“…selection of a different final state when the system is repeatedly and slowly cycled in opposite directions of parameter space. To conclude, it is worth commenting similarities and differences between the chiral behavior induced by a Floquet EP, studied in this work, and the chirality observed when a static EP is encircled, a well-known phenomenon which has been investigated in several recent works [18,27,40,41,42,44,47]. In both cases chirality arises because asymmetry in nonadiabatic effects observed when the circulation direction of the loop is reversed, a typical signature of non-Hermitian dynamics.…”
Section: Discussionmentioning
confidence: 57%
“…a different final state is selected when dynamically encircling an EP in clockwise or counter-clockwise directions. Recent experiments [18,27] demonstrated chirality of EP cycling, originally predicted in Refs. [41,42], and raised a great interest owing to potential applications of EPs to topological energy transport [27], asymmetric mode switching [18,33] and polarization control of light [40].…”
Section: Introductionmentioning
confidence: 85%
See 3 more Smart Citations