Literature DB >> 29950624

Flying couplers above spinning resonators generate irreversible refraction.

Shai Maayani1, Raphael Dahan1, Yuri Kligerman1, Eduard Moses1,2, Absar U Hassan3, Hui Jing4, Franco Nori5,6, Demetrios N Christodoulides3, Tal Carmon7.   

Abstract

Creating optical components that allow light to propagate in only one direction-that is, that allow non-reciprocal propagation or 'isolation' of light-is important for a range of applications. Non-reciprocal propagation of sound can be achieved simply by using mechanical components that spin1,2. Spinning also affects de Broglie waves 3 , so a similar idea could be applied in optics. However, the extreme rotation rates that would be required, owing to light travelling much faster than sound, lead to unwanted wobbling. This wobbling makes it difficult to maintain the separation between the spinning devices and the couplers to within tolerance ranges of several nanometres, which is essential for critical coupling4,5. Consequently, previous applications of optical6-17 and optomechanical10,17-20 isolation have used alternative methods. In hard-drive technology, the magnetic read heads of a hard-disk drive fly aerodynamically above the rapidly rotating disk with nanometre precision, separated by a thin film of air with near-zero drag that acts as a lubrication layer 21 . Inspired by this, here we report the fabrication of photonic couplers (tapered fibres that couple light into the resonators) that similarly fly above spherical resonators with a separation of only a few nanometres. The resonators spin fast enough to split their counter-circulating optical modes, making the fibre coupler transparent from one side while simultaneously opaque from the other-that is, generating irreversible transmission. Our setup provides 99.6 per cent isolation of light in standard telecommunication fibres, of the type used for fibre-based quantum interconnects 22 . Unlike flat geometries, such as between a magnetic head and spinning disk, the saddle-like, convex geometry of the fibre and sphere in our setup makes it relatively easy to bring the two closer together, which could enable surface-science studies at nanometre-scale separations.

Year:  2018        PMID: 29950624     DOI: 10.1038/s41586-018-0245-5

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  4 in total

1.  Phononic integrated circuitry and spin-orbit interaction of phonons.

Authors:  Wei Fu; Zhen Shen; Yuntao Xu; Chang-Ling Zou; Risheng Cheng; Xu Han; Hong X Tang
Journal:  Nat Commun       Date:  2019-06-21       Impact factor: 14.919

2.  Loss-induced nonreciprocity.

Authors:  Xinyao Huang; Cuicui Lu; Chao Liang; Honggeng Tao; Yong-Chun Liu
Journal:  Light Sci Appl       Date:  2021-02-04       Impact factor: 17.782

3.  Reciprocity of thermal diffusion in time-modulated systems.

Authors:  Jiaxin Li; Ying Li; Pei-Chao Cao; Minghong Qi; Xu Zheng; Yu-Gui Peng; Baowen Li; Xue-Feng Zhu; Andrea Alù; Hongsheng Chen; Cheng-Wei Qiu
Journal:  Nat Commun       Date:  2022-01-10       Impact factor: 17.694

4.  Quantum spinning photonic circulator.

Authors:  Yu-Wei Jing
Journal:  Sci Rep       Date:  2022-04-07       Impact factor: 4.379

  4 in total

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