Junginger Achim, Wackenhut Frank, Stuhl Alexander, Blendinger Felix, Brecht Marc, Meixner Alfred J
Opt Express. 2020 Jan 6;28(1):485-493. doi: 10.1364/OE.380068.
Strong optical mode coupling between two adjacent λ/2 Fabry-Pérot microresonators consisting of three parallel silver mirrors is investigated experimentally and theoretically as a function of their detuning and coupling strength. Mode coupling can be precisely controlled by tuning the mirror spacing of one resonator with respect to the other by piezoelectric actuators. Mode splitting, anti-crossing and asymmetric modal damping are observed and theoretically discussed for the symmetric and antisymmetric supermodes of the coupled system. The spectral profile of the supermodes is obtained from the Fourier transform of the numerically calculated time evolution of the individual resonator modes, taking into account their resonance frequencies, damping and coupling constants, and is in excellent agreement with the experiments. Our microresonator design has potential applications for energy transfer between spatially separated quantum systems in micro optoelectronics and for the emerging field of polaritonic chemistry.
研究了由三个平行银镜组成的两个相邻λ/2法布里-珀罗微谐振器之间的强光学模式耦合,实验和理论上研究了其作为失谐和耦合强度的函数。通过压电致动器相对于另一个谐振器调整一个谐振器的镜间距,可以精确控制模式耦合。对于耦合系统的对称和反对称超模式,观察到并从理论上讨论了模式分裂、反交叉和不对称模式阻尼。超模式的光谱轮廓是通过对各个谐振器模式的数值计算时间演化进行傅里叶变换得到的,考虑了它们的共振频率、阻尼和耦合常数,并且与实验结果非常吻合。我们的微谐振器设计在微光电中空间分离的量子系统之间的能量转移以及极化子化学的新兴领域具有潜在应用。