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Nanorods with multidimensional optical information beyond the diffraction limit

Author(s)
Wen, ShihuiLiu, YongtaoWang, FanLin, GungunZhou, JiajiaShi, BingyangSuh, Yung DougJin, Dayong
Issued Date
2020-12
DOI
10.1038/s41467-020-19952-x
URI
https://scholarworks.unist.ac.kr/handle/201301/58722
Fulltext
https://www.nature.com/articles/s41467-020-19952-x
Citation
NATURE COMMUNICATIONS, v.11, no.1
Abstract
Precise design and fabrication of heterogeneous nanostructures will enable nanoscale devices to integrate multiple desirable functionalities. But due to the diffraction limit (similar to 200nm), the optical uniformity and diversity within the heterogeneous functional nanostructures are hardly controlled and characterized. Here, we report a set of heterogeneous nanorods; each optically active section has its unique nonlinear response to donut-shaped illumination, so that one can discern each section with super-resolution. To achieve this, we first realize an approach of highly controlled epitaxial growth and produce a range of heterogeneous structures. Each section along the nanorod structure displays tunable upconversion emissions, in four optical dimensions, including color, lifetime, excitation wavelength, and power dependency. Moreover, we demonstrate a 210nm single nanorod as an extremely small polychromatic light source for the on-demand generation of RGB photonic emissions. This work benchmarks our ability toward the full control of sub-diffraction-limit optical diversities of single heterogeneous nanoparticles.
Publisher
NATURE RESEARCH
ISSN
2041-1723
Keyword
UP-CONVERSION NANOPARTICLESSTIMULATED-EMISSIONENERGY MIGRATIONNANOMATERIALS

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