| Literature DB >> 25409282 |
Xiaochuan Xu1, Harish Subbaraman, Swapnajit Chakravarty, Amir Hosseini, John Covey, Yalin Yu, David Kwong, Yang Zhang, Wei-Cheng Lai, Yi Zou, Nanshu Lu, Ray T Chen.
Abstract
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.Entities:
Keywords: flexible inorganic devices; photonic crystal; photonic crystal cavity; silicon nanomembrane; wafer bonding
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Year: 2014 PMID: 25409282 DOI: 10.1021/nn504393j
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881