Hybrid Integrated Dual-Microcomb Source

被引:15
作者
Dmitriev, Nikita Yu. [1 ,2 ]
Koptyaev, Sergey N. [3 ]
Voloshin, Andrey S. [4 ]
Kondratiev, Nikita M. [1 ]
Min'kov, Kirill N. [1 ]
Lobanov, Valery E. [1 ]
Ryabko, Maxim V. [3 ]
Polonsky, Stanislav V. [3 ]
Bilenko, Igor A. [1 ,5 ]
机构
[1] Russian Quantum Ctr, Skolkovo 143026, Russia
[2] Moscow Inst Phys & Technol MIPT, Dolgoprudnyi 141701, Moscow Region, Russia
[3] Samsung R&D Inst Russia, SAIT Russia Lab, Moscow 127018, Russia
[4] Swiss Fed Inst Technol Lausanne EPFL, Inst Phys, CH-1015 Lausanne, Switzerland
[5] Lomonosov Moscow State Univ, Fac Phys, Moscow 119991, Russia
基金
俄罗斯科学基金会; 欧盟地平线“2020”;
关键词
FREQUENCY COMBS; CONVERSION EFFICIENCY; SOLITON MICROCOMBS; BROAD-BAND; LASER; DIODE; STABILIZATION; SPECTROSCOPY;
D O I
10.1103/PhysRevApplied.18.034068
中图分类号
O59 [应用物理学];
学科分类号
摘要
Dual-comb interferometry is based on self-heterodyning two optical frequency combs, with correspond-ing mapping of the optical spectrum into the radio-frequency domain. The dual comb enables diverse applications, including metrology, fast high-precision spectroscopy with high signal-to-noise ratio, dis-tance ranging, and coherent optical communications. However, current dual-frequency-comb systems are designed for research applications and typically rely on scientific equipment and bulky mode-locked lasers. Here we demonstrate a fully integrated power-efficient dual-microcomb source that is electrically driven and allows turnkey operation. Our implementation uses commercially available components, including distributed-feedback and Fabry-Perot laser diodes, and silicon-nitride photonic circuits with microres-onators fabricated in commercial multiproject wafer runs. Our devices are therefore unique in terms of size, weight, power consumption, and cost. Laser-diode self-injection locking relaxes the requirements on microresonator spectral purity and Q factor, so that we can generate soliton microcombs resilient to thermal frequency drift and with pump-to-comb sideband efficiency of up to 40% at mW power levels. We demonstrate down-conversion of the optical spectrum from 1400 to 1700 nm into the radio-frequency domain, which is valuable for fast wide-band Fourier spectroscopy, which was previously not available with chip-scale devices. Our findings pave the way for further integration of miniature microcomb-based sensors and devices for high-volume applications, thus opening up the prospect of innovative products that redefine the market of industrial and consumer mobile and wearable devices and sensors.
引用
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页数:11
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