Bioinspired Nanophotonic Angle-Independent and Ultralarge Light Dispersion Allowing Simultaneous Near-Infrared-Spectroscopy and Visible-Imaging
- Authors
- Assumpcao, Daniel; Siddique, Radwanul Hasan; Kim, Hyochul; Park, Yeonsang; Kim, Un Jeong; Roh, Young-Geun; Wang, Yibing M.; Choo, Hyuck
- Issue Date
- Mar-2024
- Publisher
- American Chemical Society
- Keywords
- nanophotonics; miniature spectrometer; bioinspiredphotonics; nanostructures; disordered photonics; light dispersion; smartphone spectrometer; CMOS image sensor
- Citation
- ACS Photonics, v.11, no.4, pp 1480 - 1490
- Pages
- 11
- Indexed
- SCIE
SCOPUS
- Journal Title
- ACS Photonics
- Volume
- 11
- Number
- 4
- Start Page
- 1480
- End Page
- 1490
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/26304
- DOI
- 10.1021/acsphotonics.3c01588
- ISSN
- 2330-4022
2330-4022
- Abstract
- High-performance optical spectroscopy integrated into hand-held platforms, especially smartphones, is vital for numerous consumer applications. However, optical spectrometers pose a challenge for miniaturization due to the fundamental limitations of small- and angle-dependent light dispersion. We introduce a new bioinspired light dispersion technology combining disordered scattering nanostructures with ordered Bragg resonances to achieve an ultralarge and angle-independent dispersion. We demonstrate an ultracompact spectrometer using the bioinspired dispersive element enabling simultaneous wide-angle visible imaging and near-infrared spectroscopy on a single conventional complementary metal-oxide-semiconductor image sensor. This approach reduces dispersion-based spectrometer device thickness or total track length below 5 mm with an angular tolerance of 30 degrees, sub-5 nm spectral resolution, and 200 nm bandwidth, enabling hand-held and smartphone-integrated spectroscopy and opening up a new way to achieve high-performance mobile sensing and detection.
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Collections - College of Natural Science > Department of Physics > 1. Journal Articles

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