Razeghi Manijeh, Bai Yanbo, Wang Feihu
Center for Quantum Devices, Department of Electrical Engineering and Computer Science, Northwestern University, Evanston, IL, 60208, USA.
Quantum Science Center of Guangdong-Hongkong-Macau Greater Bay Area, Shenzhen, 51800, China.
Light Sci Appl. 2025 Jul 25;14(1):252. doi: 10.1038/s41377-025-01935-6.
Quantum cascade lasers (QCLs) are unipolar quantum devices based on inter-sub-band transitions. They break the electron-hole recombination mechanism in traditional semiconductor lasers, overcome the long-lasting bottleneck which is that the emission wavelength of semiconductor laser is completely dependent on the bandgap of semiconductor materials. Therefore, their emission wavelength is able to cover the mid-infrared (mid-IR) range and the "Terahertz gap" that is previously inaccessible by any other semiconductor lasers. After thirty years development, QCLs have become the most promising light source in the mid-IR and THz regime. In this paper, we are going to present the strategies and methodologies to achieve high-power, high-wall-plug-efficiency (WPE) QCLs with high-brightness in room temperature continuous-wave (cw) operation at 3-300 μm. We will also review the recent breakthroughs in QCL community, especially the high-power, high WPE intersubband lasers in room temperature cw operation.
量子级联激光器(QCL)是基于子带间跃迁的单极量子器件。它们打破了传统半导体激光器中的电子-空穴复合机制,克服了长期以来存在的瓶颈,即半导体激光器的发射波长完全取决于半导体材料的带隙。因此,它们的发射波长能够覆盖中红外(mid-IR)范围以及此前其他任何半导体激光器都无法达到的“太赫兹间隙”。经过三十年的发展,QCL已成为中红外和太赫兹波段最具潜力的光源。在本文中,我们将介绍在3-300μm室温连续波(cw)工作条件下实现高功率、高壁插效率(WPE)且具有高亮度的QCL的策略和方法。我们还将回顾QCL领域的最新突破,特别是室温cw工作条件下的高功率、高WPE子带间激光器。