Microelectronics Research Center, The University of Texas at Austin , 10100 Burnet Road, Bldg. 160, Austin, Texas 78758, United States.
ACS Nano. 2014 Dec 23;8(12):12265-71. doi: 10.1021/nn504393j. Epub 2014 Nov 24.
Flexible inorganic electronic devices promise numerous applications, especially in fields that could not be covered satisfactorily by conventional rigid devices. Benefits on a similar scale are also foreseeable for silicon photonic components. However, the difficulty in transferring intricate silicon photonic devices has deterred widespread development. In this paper, we demonstrate a flexible single-crystal silicon nanomembrane photonic crystal microcavity through a bonding and substrate removal approach. The transferred cavity shows a quality factor of 2.2×10(4) and could be bent to a curvature of 5 mm radius without deteriorating the performance compared to its counterparts on rigid substrates. A thorough characterization of the device reveals that the resonant wavelength is a linear function of the bending-induced strain. The device also shows a curvature-independent sensitivity to the ambient index variation.
柔性无机电子器件具有广泛的应用前景,尤其是在传统刚性器件无法满足要求的领域。硅光子元件也有望带来类似的效益。然而,将复杂的硅光子器件进行转移的困难阻碍了其广泛发展。在本文中,我们通过键合和衬底去除的方法展示了一种柔性单晶硅纳米膜光子晶体微腔。转移后的微腔的品质因数为 2.2×10(4),可以弯曲到 5mm 半径的曲率,而性能与在刚性衬底上的对应物相比没有恶化。对器件的全面表征表明,谐振波长是弯曲诱导应变的线性函数。该器件对环境折射率变化的灵敏度也与曲率无关。