Institute for Solid State Physics, University of Jena , Max-Wien-Platz 1, 07743 Jena, Germany.
Institute for Solid State Electronics, Vienna University of Technology , Floragasse 7, 1040 Vienna, Austria.
Nano Lett. 2017 Nov 8;17(11):6637-6643. doi: 10.1021/acs.nanolett.7b02589. Epub 2017 Oct 23.
Realizing visionary concepts of integrated photonic circuits, nanospectroscopy, and nanosensing will tremendously benefit from dynamically tunable coherent light sources with lateral dimensions on the subwavelength scale. Therefore, we demonstrate an individual nanowire laser based device which can be gradually tuned by reversible length changes of the nanowire such that uniaxial tensile stress is applied to the respective semiconductor gain material. By straining the device, the spontaneous excitonic emission of the nanowire shifts to lower energies caused by the bandgap reduction of the semiconductor. Moreover, the optical gain spectrum of the nanolaser can be precisely strain-tuned in the high excitation regime. The tuning of the emission does not affect the laser threshold of the device, which is very beneficial for practical applications. The applied length change furthermore adjusts the laser resonances inducing a redshift of the longitudinal modes. Thus, this concept of gradually and dynamically tunable nanolasers enables controlling and modulating the coherent emission on the nanoscale without changing macroscopic ambient conditions. This concept holds therefore huge impact on nanophotonic switches and photonic circuit technology.
将光子集成电路、纳米光谱学和纳米传感的有远见的概念变为现实,将极大地受益于具有亚波长横向尺寸的动态可调谐相干光源。因此,我们展示了一种基于单根纳米线的激光器件,它可以通过纳米线的可逆长度变化逐渐调谐,从而在各向异性拉伸应变的情况下向半导体增益材料施加单轴拉伸应力。通过对器件进行应变,纳米线的本征激子发射由于半导体能带隙的减小而向更低的能量移动。此外,在高激发态下,可以精确地应变调谐纳米激光器的光增益谱。发射的调谐不会影响器件的激光阈值,这对于实际应用非常有益。施加的长度变化还会调整激光共振,引起纵模的红移。因此,这种逐渐和动态可调谐纳米激光器的概念使得能够在不改变宏观环境条件的情况下在纳米尺度上控制和调制相干发射。因此,这个概念对纳米光子开关和光子电路技术具有巨大的影响。