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硅波导集成碳纳米管光电探测器,具有低暗电流和 48GHz 带宽。

Silicon Waveguide-Integrated Carbon Nanotube Photodetector with Low Dark Current and 48 GHz Bandwidth.

机构信息

State Key Laboratory of Information Photonics and Optical Communications and School of Electronic Engineering, Beijing University of Posts and Telecommunications (BUPT), Beijing 100876, China.

Beijing Key Laboratory of Space-Ground Interconnection and Convergence, Beijing University of Posts and Telecommunications (BUPT), Beijing 100876, China.

出版信息

ACS Nano. 2023 Apr 25;17(8):7466-7474. doi: 10.1021/acsnano.2c12178. Epub 2023 Apr 5.

Abstract

Low-dimensional materials with excellent optoelectronic properties and complementary metal-oxide-semiconductor (CMOS) process compatibility have the potential to construct high-performance photodetectors used in a cost-efficient monolithic or hybrid integrated optical communication system. Carbon nanotubes (CNTs) have attracted a lot of attention due to special geometric structure and broad band response, high optical absorption coefficient, ps-level intrinsic light response, high carrier mobility and wafer-scaled production process. Here, we demonstrated a high-performance waveguide-integrated CNT photodetector with asymmetric palladium (Pd) and hafnium (Hf) contact electrodes. The ideal photodetector structure was realized via comparing with simulation and experimental results, where the optimized device achieved a high 3 dB bandwidth ∼48 GHz at 0 V, as well as a responsivity ∼73.62 mA/W and dark current ∼0.157 μA at -2 V bias voltage. This waveguide-integrated CNT photodetector with low dark current and high bandwidth is helpful for next-generation optical communication and high-speed optical interconnects.

摘要

具有优异光电性能和互补金属氧化物半导体(CMOS)工艺兼容性的低维材料,有望构建用于低成本单片或混合集成光通信系统的高性能光电探测器。由于特殊的几何结构和宽频响应、高光学吸收系数、ps 级固有光响应、高载流子迁移率和晶圆级生产工艺,碳纳米管(CNT)引起了广泛关注。在这里,我们展示了一种具有不对称钯(Pd)和铪(Hf)接触电极的高性能波导集成 CNT 光电探测器。通过比较模拟和实验结果实现了理想的光电探测器结构,其中优化后的器件在 0 V 时实现了高达 48 GHz 的 3 dB 带宽,在-2 V 偏置电压下实现了高达 73.62 mA/W 的响应率和 0.157 μA 的暗电流。这种具有低暗电流和高带宽的波导集成 CNT 光电探测器有助于下一代光通信和高速光互连。

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