Experimental realization of optomechanically induced non-reciprocity

Non-magnetic non-reciprocal transparency and amplification is experimentally achieved by optomechanics using a whispering-gallery microresonator. The idea may lead to integrated all-optical isolators or non-reciprocal phase shifters. Non-reciprocal devices, such as circulators and isolators, are ind...

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Veröffentlicht in:Nature photonics 2016-10, Vol.10 (10), p.657-661
Hauptverfasser: Shen, Zhen, Zhang, Yan-Lei, Chen, Yuan, Zou, Chang-Ling, Xiao, Yun-Feng, Zou, Xu-Bo, Sun, Fang-Wen, Guo, Guang-Can, Dong, Chun-Hua
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Sprache:eng
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Zusammenfassung:Non-magnetic non-reciprocal transparency and amplification is experimentally achieved by optomechanics using a whispering-gallery microresonator. The idea may lead to integrated all-optical isolators or non-reciprocal phase shifters. Non-reciprocal devices, such as circulators and isolators, are indispensable components in classical and quantum information processing in integrated photonic circuits 1 . Aside from these applications, the non-reciprocal phase shift is of fundamental interest for exploring exotic topological photonics 2 , such as the realization of chiral edge states and topological protection 3 , 4 . However, incorporating low-optical-loss magnetic materials into a photonic chip is technically challenging 5 . In this study we experimentally demonstrate non-magnetic non-reciprocity using optomechanical interactions in a whispering gallery microresonator, as proposed in a previous work 6 . Optomechanically induced non-reciprocal transparency and amplification are observed and a non-reciprocal phase shift of up to 40° is also demonstrated. The underlying mechanism of optomechanically induced non-reciprocity has great potential for all-optical controllable isolators and circulators, as well as non-reciprocal phase shifters in integrated photonic chips.
ISSN:1749-4885
1749-4893
DOI:10.1038/nphoton.2016.161