TY - JOUR
T1 - An achromatic metafiber for focusing and imaging across the entire telecommunication range
AU - Ren, Haoran
AU - Jang, Jaehyuck
AU - Li, Chenhao
AU - Aigner, Andreas
AU - Plidschun, Malte
AU - Kim, Jisoo
AU - Rho, Junsuk
AU - Schmidt, Markus A.
AU - Maier, Stefan A.
N1 - Funding Information:
H.R. acknowledges the funding support from Humboldt Research Fellowship from the Alexander von Humboldt Foundation and the DECRA Project (DE220101085) from the Australian Research Council. S.A.M. acknowledges the funding support from the Deutsche Forschungsgemeinschaft (MA 4699/2-1, MA 4699/7-1), the EPSRC (EP/M000044/1), and the Lee-Lucas Chair in Physics. M.A.S. acknowledges funding from the Deutsche Forschungsgemeinschaft via the grants SCHM2655/8-1, SCHM2655/11-1, SCHM2655/15-1, and SCH2655/21-1. J.R. acknowledges the POSCO-POSTECH-RIST Convergence Research Center program funded by POSCO, an industry-university strategic grant funded by LG Innotek, and the National Research Foundation (NRF) grants (NRF-2022M3C1A3081312, NRF-2022M3H4A1A02074314, CAMM-2019M3A6B3030637, NRF-2019R1A5A8080290) funded by the Ministry of Science and ICT of the Korean government. The Korea-Germany collaboration part is supported by the GEnKO program (NRF-2021K2A9A2A15000174) funded by the NRF. J.J. acknowledges the Hyundai Motor Chung Mong-Koo fellowship, and the NRF-DAAD Summer Institute program funded by the NRF and German Academic Exchange Service (DAAD). C.L. acknowledges the scholarship support from the China Scholarship Council. The authors acknowledge Dr. Jungho Mun (POSTECH) for the in-house RCWA code development and the implementation on construction of the meta-atom library. The authors acknowledge Dr. Jiawen Li (The University of Adelaide) for the technical advice on endoscope scanning head.
Funding Information:
H.R. acknowledges the funding support from Humboldt Research Fellowship from the Alexander von Humboldt Foundation and the DECRA Project (DE220101085) from the Australian Research Council. S.A.M. acknowledges the funding support from the Deutsche Forschungsgemeinschaft (MA 4699/2-1, MA 4699/7-1), the EPSRC (EP/M000044/1), and the Lee-Lucas Chair in Physics. M.A.S. acknowledges funding from the Deutsche Forschungsgemeinschaft via the grants SCHM2655/8-1, SCHM2655/11-1, SCHM2655/15-1, and SCH2655/21-1. J.R. acknowledges the POSCO-POSTECH-RIST Convergence Research Center program funded by POSCO, an industry-university strategic grant funded by LG Innotek, and the National Research Foundation (NRF) grants (NRF-2022M3C1A3081312, NRF-2022M3H4A1A02074314, CAMM-2019M3A6B3030637, NRF-2019R1A5A8080290) funded by the Ministry of Science and ICT of the Korean government. The Korea-Germany collaboration part is supported by the GEnKO program (NRF-2021K2A9A2A15000174) funded by the NRF. J.J. acknowledges the Hyundai Motor Chung Mong-Koo fellowship, and the NRF-DAAD Summer Institute program funded by the NRF and German Academic Exchange Service (DAAD). C.L. acknowledges the scholarship support from the China Scholarship Council. The authors acknowledge Dr. Jungho Mun (POSTECH) for the in-house RCWA code development and the implementation on construction of the meta-atom library. The authors acknowledge Dr. Jiawen Li (The University of Adelaide) for the technical advice on endoscope scanning head.
Publisher Copyright:
© 2022, The Author(s).
PY - 2022/7/19
Y1 - 2022/7/19
N2 - Dispersion engineering is essential to the performance of most modern optical systems including fiber-optic devices. Even though the chromatic dispersion of a meter-scale single-mode fiber used for endoscopic applications is negligible, optical lenses located on the fiber end face for optical focusing and imaging suffer from strong chromatic aberration. Here we present the design and nanoprinting of a 3D achromatic diffractive metalens on the end face of a single-mode fiber, capable of performing achromatic and polarization-insensitive focusing across the entire near-infrared telecommunication wavelength band ranging from 1.25 to 1.65 µm. This represents the whole single-mode domain of commercially used fibers. The unlocked height degree of freedom in a 3D nanopillar meta-atom largely increases the upper bound of the time-bandwidth product of an achromatic metalens up to 21.34, leading to a wide group delay modulation range spanning from −8 to 14 fs. Furthermore, we demonstrate the use of our compact and flexible achromatic metafiber for fiber-optic confocal imaging, capable of creating in-focus sharp images under broadband light illumination. These results may unleash the full potential of fiber meta-optics for widespread applications including hyperspectral endoscopic imaging, femtosecond laser-assisted treatment, deep tissue imaging, wavelength-multiplexing fiber-optic communications, fiber sensing, and fiber lasers.
AB - Dispersion engineering is essential to the performance of most modern optical systems including fiber-optic devices. Even though the chromatic dispersion of a meter-scale single-mode fiber used for endoscopic applications is negligible, optical lenses located on the fiber end face for optical focusing and imaging suffer from strong chromatic aberration. Here we present the design and nanoprinting of a 3D achromatic diffractive metalens on the end face of a single-mode fiber, capable of performing achromatic and polarization-insensitive focusing across the entire near-infrared telecommunication wavelength band ranging from 1.25 to 1.65 µm. This represents the whole single-mode domain of commercially used fibers. The unlocked height degree of freedom in a 3D nanopillar meta-atom largely increases the upper bound of the time-bandwidth product of an achromatic metalens up to 21.34, leading to a wide group delay modulation range spanning from −8 to 14 fs. Furthermore, we demonstrate the use of our compact and flexible achromatic metafiber for fiber-optic confocal imaging, capable of creating in-focus sharp images under broadband light illumination. These results may unleash the full potential of fiber meta-optics for widespread applications including hyperspectral endoscopic imaging, femtosecond laser-assisted treatment, deep tissue imaging, wavelength-multiplexing fiber-optic communications, fiber sensing, and fiber lasers.
UR - http://www.scopus.com/inward/record.url?scp=85134387176&partnerID=8YFLogxK
U2 - 10.1038/s41467-022-31902-3
DO - 10.1038/s41467-022-31902-3
M3 - Article
C2 - 35853875
AN - SCOPUS:85134387176
SN - 2041-1723
VL - 13
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 4183
ER -