Ma Ze, Yang Leijing, Liu Lijun, Wang Sheng, Peng Lian-Mao
Key Laboratory for the Physics and Chemistry of Nanodevices, Department of Electronics and Research Center for Carbon-based Electronics, Peking University, Beijing 100871, China.
State Key Laboratory of Information Photonics and Optical Communications and School of Electronic Engineering, Beijing University of Posts and Telecommunications (BUPT), Beijing 100876, China.
ACS Nano. 2020 Jun 23;14(6):7191-7199. doi: 10.1021/acsnano.0c02139. Epub 2020 May 26.
Monolithic optoelectronic integration based on a single material is a major pursuit in the fields of nanophotonics and nanoelectronics in order to meet the requirements of future fiber-optic telecommunication systems and on-chip optical interconnection systems. However, the incompatibility between silicon-based electronics and germanium or compound semiconductor-based photonics makes it very challenging to realize optoelectronic integration based on a single material. Here, the integration between silicon waveguides and a carbon nanotube (CNT) optoelectronic system is demonstrated. Waveguide-integrated photodetectors based on the CNT exhibit 12.5 mA/W photoresponsivity at 1530 nm, which presents an improvement of 97.6 times enhanced absorption efficiency compared to that without the waveguide. Multiplied output signals of cascading photodetectors are used to control the output of CNT-based logic gates, thereby demonstrating that the CNT-based optoelectronic integration system is compatible with silicon photonics. Our work indicates that carbon nanotubes have the potential for future integration between nanophotonics and nanoelectronics on a single chip.
基于单一材料的单片光电集成是纳米光子学和纳米电子学领域的一个主要追求目标,以满足未来光纤通信系统和片上光互连系统的需求。然而,基于硅的电子学与基于锗或化合物半导体的光子学之间的不相容性使得实现基于单一材料的光电集成极具挑战性。在此,展示了硅波导与碳纳米管(CNT)光电系统之间的集成。基于碳纳米管的波导集成光电探测器在1530 nm处表现出12.5 mA/W的光响应度,与没有波导的情况相比,其吸收效率提高了97.6倍。级联光电探测器的倍增输出信号用于控制基于碳纳米管的逻辑门的输出,从而证明基于碳纳米管的光电集成系统与硅光子学兼容。我们的工作表明,碳纳米管在未来实现纳米光子学和纳米电子学在单芯片上的集成方面具有潜力。