Hajdel Mateusz, Gołyga Krzysztof, Siekacz Marcin, Feduniewicz-Żmuda Anna, Skierbiszewski Czesław, Schwarz Ulrich Theodor, Muziol Grzegorz
Institute of High Pressure Physics Polish Academy of Sciences, Sokolowska 29/37, 01-142 Warsaw, Poland.
Institute of Physics, Chemnitz University of Technology, Reichenhainer Str. 70, 09126 Chemnitz, Germany.
ACS Photonics. 2025 Mar 6;12(3):1515-1523. doi: 10.1021/acsphotonics.4c02193. eCollection 2025 Mar 19.
Despite the ubiquity of semiconductor-based emitters in optoelectronic devices we use every day, obstacles still remain to unlock their full potential. One of these lies in long-wavelength GaN-based laser diodes (LDs). It is common knowledge that InGaN quantum wells (QWs) exhibit extremely large built-in polarization, which helps to obtain long-wavelength emission in light-emitting diodes, thanks to the large quantum-confined Stark effect. However, in this paper, it is shown that in order to achieve long-wavelength LDs, wide InGaN QWs might be preferential. The lasing wavelength for blue LDs can be even 20 nm longer in the case of wide QWs than in thin QWs for the same composition. The mechanisms behind these effects are explored by analyzing evolution of spontaneous emission, amplified spontaneous emission, optical gain, and quasi-Fermi level separation. It is shown that in wide QWs, the spontaneous emission originates from highly excited states. However, as the carrier density increases, quantum states with lower energy take over. Furthermore, population inversion, and thus lasing action, is obtained from the lowest excited states, resulting in long-wavelength lasing. The reported effects should also be observed in other polar materials with sufficiently thick QWs.
尽管基于半导体的发光器在我们日常使用的光电器件中无处不在,但要充分发挥其潜力仍存在障碍。其中之一在于长波长的基于氮化镓的激光二极管(LD)。众所周知,氮化铟镓量子阱(QW)表现出极大的内建极化,这得益于大的量子限制斯塔克效应,有助于在发光二极管中获得长波长发射。然而,本文表明,为了实现长波长LD,宽的氮化铟镓QW可能更具优势。对于相同成分,宽量子阱情况下蓝色LD的激射波长比薄量子阱的甚至长20纳米。通过分析自发发射、放大自发发射、光学增益和准费米能级分离的演变来探索这些效应背后的机制。结果表明,在宽量子阱中,自发发射源于高激发态。然而,随着载流子密度增加,能量较低的量子态占据主导。此外,从最低激发态获得粒子数反转,从而产生激射作用,导致长波长激射。在具有足够厚量子阱的其他极性材料中也应观察到所报道的效应。