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安德森局域化 regime 中的随机纳米激光。

Random nanolasing in the Anderson localized regime.

机构信息

1] DTU Fotonik, Department of Photonics Engineering, Technical University of Denmark, Ørsteds Plads 343, DK-2800 Kgs. Lyngby, Denmark [2] Niels Bohr Institute, University of Copenhagen, Blegdamsvej 17, DK-2100 Copenhagen, Denmark [3] South China Academy of Advanced Optoelectronics, South China Normal University, 510006 Guangzhou, China.

Niels Bohr Institute, University of Copenhagen, Blegdamsvej 17, DK-2100 Copenhagen, Denmark.

出版信息

Nat Nanotechnol. 2014 Apr;9(4):285-9. doi: 10.1038/nnano.2014.34. Epub 2014 Mar 23.

Abstract

The development of nanoscale optical devices for classical and quantum photonics is affected by unavoidable fabrication imperfections that often impose performance limitations. However, disorder may also enable new functionalities, for example in random lasers, where lasing relies on random multiple scattering. The applicability of random lasers has been limited due to multidirectional emission, lack of tunability, and strong mode competition with chaotic fluctuations due to a weak mode confinement. The regime of Anderson localization of light has been proposed for obtaining stable multimode random lasing, and initial work concerned macroscopic one-dimensional layered media. Here, we demonstrate on-chip random nanolasers where the cavity feedback is provided by the intrinsic disorder. The strong confinement achieved by Anderson localization reduces the spatial overlap between lasing modes, thus preventing mode competition and improving stability. This enables highly efficient, stable and broadband wavelength-controlled lasers with very small mode volumes. Furthermore, the complex interplay between gain, dispersion-controlled slow light, and disorder is demonstrated experimentally for a non-conservative random medium. The statistical analysis shows a way towards optimizing random-lasing performance by reducing the localization length, a universal parameter.

摘要

用于经典和量子光子学的纳米光学器件的发展受到不可避免的制造缺陷的影响,这些缺陷常常会造成性能限制。然而,无序也可能带来新的功能,例如在随机激光中,激光依赖于随机多次散射。由于弱模式限制导致混沌波动引起的多方向发射、缺乏可调谐性以及强模式竞争,随机激光的适用性受到限制。光的安德森局域化已被提议用于获得稳定的多模随机激光,最初的工作涉及宏观一维层状介质。在这里,我们在芯片上演示了随机纳米激光器,其中腔反馈由固有无序提供。安德森局域化实现的强限制减少了激光模式之间的空间重叠,从而防止了模式竞争并提高了稳定性。这使得具有非常小的模式体积的高效、稳定和宽带波长可控激光器成为可能。此外,还通过实验证明了增益、色散控制慢光和无序之间的复杂相互作用对于非保守随机介质。统计分析显示了通过减小局域化长度(通用参数)来优化随机激光性能的方法。

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