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利用片上溶液处理的石墨烯量子级联激光耦合腔的太赫兹频率梳

Terahertz Frequency Combs Exploiting an On-Chip, Solution-Processed, Graphene-Quantum Cascade Laser Coupled-Cavity.

作者信息

Mezzapesa Francesco P, Garrasi Katia, Schmidt Johannes, Salemi Luca, Pistore Valentino, Li Lianhe, Davies A Giles, Linfield Edmund H, Riesch Michael, Jirauschek Christian, Carey Tian, Torrisi Felice, Ferrari Andrea C, Vitiello Miriam S

机构信息

NEST, CNR - Istituto Nanoscienze and Scuola Normale Superiore, Piazza San Silvestro 12, 56127, Pisa, Italy.

School of Electronic and Electrical Engineering, University of Leeds, Leeds LS2 9JT, U.K.

出版信息

ACS Photonics. 2020 Dec 16;7(12):3489-3498. doi: 10.1021/acsphotonics.0c01523. Epub 2020 Dec 3.

Abstract

The ability to engineer quantum-cascade-lasers (QCLs) with ultrabroad gain spectra, and with a full compensation of the group velocity dispersion, at terahertz (THz) frequencies, is key for devising monolithic and miniaturized optical frequency-comb-synthesizers (FCSs) in the far-infrared. In THz QCLs four-wave mixing, driven by intrinsic third-order susceptibility of the intersubband gain medium, self-locks the optical modes in phase, allowing stable comb operation, albeit over a restricted dynamic range (∼20% of the laser operational range). Here, we engineer miniaturized THz FCSs, comprising a heterogeneous THz QCL, integrated with a tightly coupled, on-chip, solution-processed, graphene saturable-absorber reflector that preserves phase-coherence between lasing modes, even when four-wave mixing no longer provides dispersion compensation. This enables a high-power (8 mW) FCS with over 90 optical modes, through 55% of the laser operational range. We also achieve stable injection-locking, paving the way to a number of key applications, including high-precision tunable broadband-spectroscopy and quantum-metrology.

摘要

在太赫兹(THz)频率下制造具有超宽增益谱且群速度色散得到完全补偿的量子级联激光器(QCL)的能力,是设计远红外单片集成和小型化光学频率梳合成器(FCS)的关键。在太赫兹量子级联激光器中,由子带间增益介质的固有三阶磁化率驱动的四波混频使光学模式在相位上自锁,从而实现稳定的频率梳运转,尽管其动态范围有限(约为激光器工作范围的20%)。在此,我们设计了小型化的太赫兹频率梳合成器,它由一个异质太赫兹量子级联激光器与一个紧密耦合的、片上溶液处理的石墨烯可饱和吸收体反射器集成而成,即使在四波混频不再提供色散补偿时,该反射器也能保持激光模式之间的相位相干。这使得我们能够通过55%的激光器工作范围实现具有超过90个光学模式的高功率(8 mW)频率梳合成器运转。我们还实现了稳定的注入锁定,为包括高精度可调谐宽带光谱学和量子计量学在内的一系列关键应用铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/946e/7747868/e803eec8346d/ph0c01523_0001.jpg

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