Zhuo Linqing, Li Dongquan, Chen Weidong, Zhang Yu, Zhang Wang, Lin Ziqi, Zheng Huadan, Zhu Wenguo, Zhong Yongchun, Tang Jieyuan, Lu Guoguang, Fang Wenxiao, Yu Jianhui, Chen Zhe
Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communications, Department of Optoelectronic Engineering, Jinan University, Guangzhou 510632, China.
Guangdong Vocational College of Posts and Telecom, Guangzhou 510630, China.
Nanophotonics. 2022 Feb 21;11(6):1137-1147. doi: 10.1515/nanoph-2021-0688. eCollection 2022 Feb.
Two-dimensional (2D) materials exhibit fascinating and outstanding optoelectronic properties, laying the foundation for the development of novel optoelectronic devices. However, ultra-weak light absorption of 2D materials limits the performance of the optoelectronic devices. Here, a structure of MoS/graphene/Au integrated onto the side-polished fiber (SPF) is proposed to achieve a high-performance fiber-integrated multifunction-in-one optoelectronic device. It is found that the device can absorb the transverse magnetic (TM) mode guided in the SPF and generate photocurrents as a polarization-sensitive photodetector, while the transverse electric (TE) mode passes with low loss through the device, making the device simultaneously a polarizer. In the device, the MoS film and the Au finger electrode can enhance the TM absorption by 1.75 times and 24.8 times, respectively, thus allowing to achieve high performance: a high photoresponsivity of 2.2 × 10 A/W at 1550 nm; the external quantum efficiency (EQE) of 1.76 × 10%; a high photocurrent polarization ratio of 0.686 and a polarization efficiency of 3.9 dB/mm at C-band. The integration of 2D materials on SPF paves the way to enhance the light-2D material interaction and achieve high performance multifunction-in-one fiber-integrated optoelectronic devices.
二维(2D)材料展现出迷人且卓越的光电特性,为新型光电器件的发展奠定了基础。然而,二维材料的超弱光吸收限制了光电器件的性能。在此,提出一种集成在侧面抛光光纤(SPF)上的MoS/石墨烯/金结构,以实现高性能的光纤集成多功能一体化光电器件。研究发现,该器件能够吸收在SPF中传输的横向磁(TM)模并产生光电流,作为一个偏振敏感型光电探测器,而横向电(TE)模则以低损耗通过该器件,使得该器件同时成为一个偏振器。在该器件中,MoS薄膜和金指状电极可分别将TM吸收增强1.75倍和24.8倍,从而实现高性能:在1550 nm处具有2.2×10 A/W的高光响应度;1.76×10%的外量子效率(EQE);在C波段具有0.686的高光电流偏振比和3.9 dB/mm的偏振效率。二维材料在SPF上的集成,为增强光与二维材料的相互作用以及实现高性能的光纤集成多功能一体化光电器件铺平了道路。