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围绕铜丝集线器形成的用于集成到57.8吉赫兹光纤脉冲激光器中的环形谐振器的石墨烯自锁相器。

Graphene Self-Phase-Lockers Formed around a Cu Wire Hub for Ring Resonators Incorporated into 57.8 Gigahertz Fiber Pulsed Lasers.

作者信息

Lee Sungjae, Song Yong-Won

机构信息

Center for Optoelectronic Materials and Devices, Korea Institute of Science and Technology, Seoul, 02792, Republic of Korea.

Division of Nano and Information Technology, University of Science and Technology, Daejeon, 34113, Republic of Korea.

出版信息

ACS Nano. 2020 Nov 24;14(11):15944-15952. doi: 10.1021/acsnano.0c07355. Epub 2020 Nov 2.

Abstract

We demonstrate graphene-functionalized self-phase-locking of laser pulses for a dramatically elevated repetition rate by employing an intrinsic resonating structure in a fiber ring laser cavity, the modes thereby satisfying the phase-matching condition passively, through both the resonator and the laser cavity. Graphene is directly synthesized around a 1-mm-diameter Cu wire catalyst, avoiding the deleterious transfer process. The wire provides a form factor to the fiber ring resonator as a versatile winding hub, guaranteeing damage-minimized and recyclable contact of the synthesized graphene with a diameter-controlled optical microfiber. In-depth analysis of the graphene confirms the optical nonlinearity critically required for pulse formation. The laser-graphene interaction, the intermode phase-locking function of graphene, and the pulse formation with the resonator are systematically elucidated to explain the experimentally generated laser pulses at a repetition rate of 57.8 gigahertz (GHz). Additionally, tunability of the repetition rate up to 1.5 GHz by the photothermal effect of graphene is demonstrated.

摘要

我们通过在光纤环形激光腔中采用固有谐振结构,展示了用于显著提高重复频率的石墨烯功能化激光脉冲自锁相,由此,通过谐振器和激光腔,满足相位匹配条件的模式被动地通过。石墨烯是直接围绕直径为1毫米的铜线催化剂合成的,避免了有害的转移过程。该铜线为光纤环形谐振器提供了一种外形,作为一种通用的缠绕轴,确保合成的石墨烯与直径可控的光学微纤维的接触损伤最小且可回收利用。对石墨烯的深入分析证实了脉冲形成至关重要所需的光学非线性。系统地阐明了激光 - 石墨烯相互作用、石墨烯的模间锁相功能以及谐振器的脉冲形成,以解释实验中产生的重复频率为57.8吉赫兹(GHz)的激光脉冲。此外,还展示了通过石墨烯的光热效应将重复频率调谐至高达1.5 GHz的情况。

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