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一种由石墨烯辅助的高效热光微环调制器。

A highly efficient thermo-optic microring modulator assisted by graphene.

作者信息

Gan Sheng, Cheng Chuantong, Zhan Yaohui, Huang Beiju, Gan Xuetao, Li Shaojuan, Lin Shenghuang, Li Xiaofeng, Zhao Jianlin, Chen Hongda, Bao Qiaoliang

机构信息

Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, and Collaborative Innovation Center of Suzhou Nano Science and Technology, Soochow University, Suzhou 215123, P. R. China.

出版信息

Nanoscale. 2015 Dec 21;7(47):20249-55. doi: 10.1039/c5nr05084g. Epub 2015 Nov 18.

Abstract

Graphene's remarkable electrical and optical properties afford great potential for constructing various optoelectronic devices, including modulators, photodetectors and pulse lasers. In particular, graphene-based optical modulators were demonstrated to be featured with a broadband response, small footprint, ultrafast speed and CMOS-compatibility, which may provide an alternative architecture for light-modulation in integrated photonic circuits. While on-chip graphene modulators have been studied in various structures, most of them are based on a capacitance-like configuration subjected to complicated fabrication processes and providing a low yield of working devices. Here, we experimentally demonstrate a new type of graphene modulator by employing graphene's electrical and thermal properties, which can be achieved with a simple fabrication flow. On a graphene-coated microring resonator with a small active area of 10 μm(2), we have obtained an effective optical modulation via thermal energy electrically generated in a graphene layer. The resonant wavelength of the ring resonator shifts by 2.9 nm under an electrical power of 28 mW, which enables a large modulation depth of 7 dB and a broad operating wavelength range of 6.2 nm with 3 dB modulation. Due to the extremely high electrical and thermal conductivity in graphene, the graphene thermo-optical modulator operates at a very fast switching rate compared with the conventional silicon thermo-optic modulator, i.e. 10%-90% rise (90%-10% fall) time of 750 ns (800 ns). The results promise a novel architecture for massive on-chip modulation of optical interconnects compatible with CMOS technology.

摘要

石墨烯卓越的电学和光学特性为构建各种光电器件提供了巨大潜力,这些器件包括调制器、光电探测器和脉冲激光器。特别是,基于石墨烯的光调制器具有宽带响应、小尺寸、超高速和CMOS兼容性等特点,这可能为集成光子电路中的光调制提供一种替代架构。虽然已经对各种结构的片上石墨烯调制器进行了研究,但其中大多数基于类似电容的配置,制造工艺复杂,工作器件的成品率低。在此,我们通过利用石墨烯的电学和热学特性,通过实验展示了一种新型石墨烯调制器,其可以通过简单制造流程实现。在有源面积为10μm²的石墨烯涂层微环谐振器上,我们通过在石墨烯层中电产生的热能实现了有效的光调制。在28mW的电功率下,环形谐振器的谐振波长偏移2.9nm,这实现了7dB的大调制度和6.2nm的3dB调制宽工作波长范围。由于石墨烯具有极高的电导率和热导率,与传统的硅热光调制器相比,石墨烯热光调制器的开关速率非常快,即10%-90%上升(90%-10%下降)时间为750ns(800ns)。这些结果为与CMOS技术兼容的大规模片上光互连调制提供了一种新颖架构。

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