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石墨烯控制的光子晶体激光器的开关。

Switching of Photonic Crystal Lasers by Graphene.

机构信息

Department of Physics, Korea University , Seoul 02842, Republic of Korea.

Division of Materials Science and Engineering, Hanyang University , Seoul 04763, Republic of Korea.

出版信息

Nano Lett. 2017 Mar 8;17(3):1892-1898. doi: 10.1021/acs.nanolett.6b05207. Epub 2017 Feb 9.

DOI:10.1021/acs.nanolett.6b05207
PMID:28165745
Abstract

Unique features of graphene have motivated the development of graphene-integrated photonic devices. In particular, the electrical tunability of graphene loss enables high-speed modulation of light and tuning of cavity resonances in graphene-integrated waveguides and cavities. However, efficient control of light emission such as lasing, using graphene, remains a challenge. In this work, we demonstrate on/off switching of single- and double-cavity photonic crystal lasers by electrical gating of a monolayer graphene sheet on top of photonic crystal cavities. The optical loss of graphene was controlled by varying the gate voltage V, with the ion gel atop the graphene sheet. First, the fundamental properties of graphene were investigated through the transmittance measurement and numerical simulations. Next, optically pumped lasing was demonstrated for a graphene-integrated single photonic crystal cavity at V below -0.6 V, exhibiting a low lasing threshold of ∼480 μW, whereas lasing was not observed at V above -0.6 V owing to the intrinsic optical loss of graphene. Changing quality factor of the graphene-integrated photonic crystal cavity enables or disables the lasing operation. Moreover, in the double-cavity photonic crystal lasers with graphene, switching of individual cavities with separate graphene sheets was achieved, and these two lasing actions were controlled independently despite the close distance of ∼2.2 μm between adjacent cavities. We believe that our simple and practical approach for switching in graphene-integrated active photonic devices will pave the way toward designing high-contrast and ultracompact photonic integrated circuits.

摘要

石墨烯的独特性质激发了对其进行集成的光子器件的发展。特别是,石墨烯损耗的电可调谐性使光的高速调制以及石墨烯集成波导和腔中的腔共振调谐成为可能。然而,利用石墨烯实现高效的光发射控制,如激光,仍然是一个挑战。在这项工作中,我们通过在光子晶体腔顶部的单层石墨烯片上进行电门控,演示了单腔和双腔光子晶体激光的开/关切换。通过改变顶部的离子凝胶的栅极电压 V 来控制石墨烯的光损耗,在石墨烯片上。首先,通过透射率测量和数值模拟研究了石墨烯的基本性质。接下来,在 V 低于-0.6 V 的情况下,演示了用于石墨烯集成单光子晶体腔的光泵浦激光,表现出低激光阈值约为 480 μW,而在 V 高于-0.6 V 时由于石墨烯的固有光损耗而未观察到激光。改变石墨烯集成光子晶体腔的品质因数可以使或不使激光操作。此外,在具有石墨烯的双腔光子晶体激光器中,通过使用单独的石墨烯片实现了单个腔的切换,尽管相邻腔之间的距离约为 2.2 μm,但这两个激光动作可以独立控制。我们相信,我们在石墨烯集成有源光子器件中进行切换的简单实用方法将为设计高对比度和超紧凑的光子集成电路铺平道路。

相似文献

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Switching of Photonic Crystal Lasers by Graphene.石墨烯控制的光子晶体激光器的开关。
Nano Lett. 2017 Mar 8;17(3):1892-1898. doi: 10.1021/acs.nanolett.6b05207. Epub 2017 Feb 9.
2
Electrical modulation of a photonic crystal band-edge laser with a graphene monolayer.用单层石墨烯对光子晶体带边激光器进行电光调制。
Nanoscale. 2018 May 10;10(18):8496-8502. doi: 10.1039/c8nr01614c.
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Direct observation of exceptional points in coupled photonic-crystal lasers with asymmetric optical gains.直接观测具有非对称光增益的耦合光子晶体激光器中的异常点。
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High-contrast electrooptic modulation of a photonic crystal nanocavity by electrical gating of graphene.通过石墨烯的电门控实现光子晶体纳米腔的高对比度电光调制。
Nano Lett. 2013 Feb 13;13(2):691-6. doi: 10.1021/nl304357u. Epub 2013 Jan 18.
5
Graphene-contact electrically driven microdisk lasers.石墨烯接触式电驱动微盘激光器。
Nat Commun. 2012;3:1123. doi: 10.1038/ncomms2137.
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Reconfigurable and tunable flat graphene photonic crystal circuits.可重构和可调谐的平坦石墨烯光子晶体电路。
Nanoscale. 2015 Jul 7;7(25):10912-7. doi: 10.1039/c5nr01343g. Epub 2015 Jun 10.
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Multifunctional optoelectronic device based on graphene-coupled silicon photonic crystal cavities.基于石墨烯耦合硅光子晶体腔的多功能光电器件。
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