Department of Physics, Korea University, Seoul 136-701, Korea.
Department of Physics, Chung-Ang University, Seoul 156-756, Korea.
Nat Commun. 2016 May 12;7:11569. doi: 10.1038/ncomms11569.
Interest in mechanical compliance has been motivated by the development of flexible electronics and mechanosensors. In particular, studies and characterization of structural deformation at the fundamental scale can offer opportunities to improve the device sensitivity and spatiotemporal response; however, the development of precise measurement tools with the appropriate resolution remains a challenge. Here we report a flexible and stretchable photonic crystal nanolaser whose spectral and modal behaviours are sensitive to nanoscale structural alterations. Reversible spectral tuning of ∼26 nm in lasing wavelength, with a sub-nanometre resolution of less than ∼0.6 nm, is demonstrated in response to applied strain ranging from -10 to 12%. Instantaneous visualization of the sign of the strain is also characterized by exploring the structural and corresponding modal symmetry. Furthermore, our high-resolution strain-gauge nanolaser functions as a stable and deterministic strain-based pH sensor in an opto-fluidic system, which may be useful for further analysis of chemical/biological systems.
人们对机械顺应性的兴趣源于柔性电子和机械传感器的发展。特别是,在基本尺度上研究和表征结构变形可以为提高器件灵敏度和时空响应提供机会;然而,开发具有适当分辨率的精确测量工具仍然是一个挑战。在这里,我们报告了一种灵活且可拉伸的光子晶体纳米激光器,其光谱和模态特性对纳米级结构变化敏感。在从-10 到 12%的应变范围内,激光波长的可重复光谱调谐约 26nm,分辨率小于约 0.6nm。通过探索结构和相应的模态对称性,还可以对应变的符号进行瞬时可视化。此外,我们的高分辨率应变计纳米激光器在光电流体系统中作为一种稳定且确定的基于应变的 pH 传感器,这对于进一步分析化学/生物系统可能有用。