Stinson V Paige, Shuchi Nuren, McLamb Micheal, Boreman Glenn D, Hofmann Tino
Department of Physics and Optical Science, University of North Carolina at Charlotte, 9201 University City Blvd, Charlotte, NC 28223, USA.
Micromachines (Basel). 2022 Dec 17;13(12):2248. doi: 10.3390/mi13122248.
Over the last several years, two-photon polymerization has been a popular fabrication approach for photonic crystals due to its high spatial resolution. One-dimensional photonic crystals with photonic bandgap reflectivities over 90% have been demonstrated for the infrared spectral range. With the success of these structures, methods which can provide tunability of the photonic bandgap are being explored. In this study, we demonstrate the use of mechanical flexures in the design of one-dimensional photonic crystals fabricated by two-photon polymerization for the first time. Experimental results show that these photonic crystals provide active mechanically induced spectral control of the photonic bandgap. An analysis of the mechanical behavior of the photonic crystal is presented and elastic behavior is observed. These results suggest that one-dimensional photonic crystals with mechanical flexures can successfully function as opto-mechanical structures.
在过去几年中,由于其高空间分辨率,双光子聚合一直是用于制造光子晶体的一种流行方法。在红外光谱范围内,已经展示出具有超过90%的光子带隙反射率的一维光子晶体。随着这些结构的成功,正在探索能够提供光子带隙可调性的方法。在本研究中,我们首次展示了在通过双光子聚合制造的一维光子晶体设计中使用机械挠曲。实验结果表明,这些光子晶体提供了对光子带隙的主动机械诱导光谱控制。给出了对光子晶体力学行为的分析,并观察到了弹性行为。这些结果表明,具有机械挠曲的一维光子晶体可以成功地用作光机械结构。