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光子晶体波导中项链态的自适应控制

Adaptive Control of Necklace States in a Photonic Crystal Waveguide.

作者信息

Yüce Emre, Lian Jin, Sokolov Sergei, Bertolotti Jacopo, Combrié Sylvain, Lehoucq Gaëlle, De Rossi Alfredo, Mosk Allard P

机构信息

Complex Photonic Systems (COPS), MESA+ Institute for Nanotechnology, University of Twente, P.O. Box 217, 7500 AE Enschede, The Netherlands.

Programmable Photonics Group, The Center for Solar Energy Research and Applications (GÜNAM), Department of Physics, Middle East Technical University, 06800 Ankara, Turkey.

出版信息

ACS Photonics. 2018 Oct 17;5(10):3984-3988. doi: 10.1021/acsphotonics.8b01038. Epub 2018 Sep 14.

Abstract

Resonant cavities with high quality factor and small mode volume provide crucial enhancement of light-matter interactions in nanophotonic devices that transport and process classical and quantum information. The production of functional circuits containing many such cavities remains a major challenge, as inevitable imperfections in the fabrication detune the cavities, which strongly affects functionality such as transmission. In photonic crystal waveguides, intrinsic disorder gives rise to high- localized resonances through Anderson localization; however their location and resonance frequencies are completely random, which hampers functionality. We present an adaptive holographic method to gain reversible control on these randomly localized modes by locally modifying the refractive index. We show that our method can dynamically form or break highly transmitting necklace states, which is an essential step toward photonic-crystal-based quantum networks and signal processing circuits, as well as slow light applications and fundamental physics.

摘要

具有高品质因数和小模式体积的谐振腔为传输和处理经典与量子信息的纳米光子器件中的光与物质相互作用提供了关键增强。包含许多此类谐振腔的功能电路的制造仍然是一个重大挑战,因为制造过程中不可避免的缺陷会使谐振腔失谐,这会强烈影响诸如传输等功能。在光子晶体波导中,固有无序通过安德森局域化产生高度局域化的共振;然而它们的位置和共振频率完全是随机的,这妨碍了功能。我们提出一种自适应全息方法,通过局部修改折射率来对这些随机局域化模式进行可逆控制。我们表明,我们的方法可以动态地形成或打破高透射项链态,这是迈向基于光子晶体的量子网络和信号处理电路以及慢光应用和基础物理学的重要一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1fc7/6195811/ffb1d1eb2953/ph-2018-010384_0001.jpg

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