| Literature DB >> 29481049 |
Letian Wang1, Yoonsoo Rho1, Wan Shou2, Sukjoon Hong1,3, Kimihiko Kato4, Matthew Eliceiri1, Meng Shi1,5, Costas P Grigoropoulos1, Heng Pan2, Carlo Carraro6, Dongfeng Qi1,7.
Abstract
Manipulating and tuning nanoparticles by means of optical field interactions is of key interest for nanoscience and applications in electronics and photonics. We report scalable, direct, and optically modulated writing of nanoparticle patterns (size, number, and location) of high precision using a pulsed nanosecond laser. The complex nanoparticle arrangement is modulated by the laser pulse energy and polarization with the particle size ranging from 60 to 330 nm. Furthermore, we report fast cooling-rate induced phase switching of crystalline Si nanoparticles to the amorphous state. Such phase switching has usually been observed in compound phase change materials like GeSbTe. The ensuing modification of atomic structure leads to dielectric constant switching. Based on these effects, a multiscale laser-assisted method of fabricating Mie resonator arrays is proposed. The number of Mie resonators, as well as the resonance peaks and dielectric constants of selected resonators, can be programmed. The programmable light-matter interaction serves as a mechanism to fabricate optical metasurfaces, structural color, and multidimensional optical storage devices.Entities:
Keywords: Mie resonance; crystallization; dewetting; laser; modulated assembly; nanoparticle
Year: 2018 PMID: 29481049 DOI: 10.1021/acsnano.8b00198
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881