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Organic Broadband THz Generators Optimized for Efficient Near-Infrared Optical Pumpingoa mark
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Publication Year
2020-10-01
Publisher
John Wiley and Sons Inc
Citation
Advanced Science, Vol.7
Keyword
nonlinear opticsorganic crystalsterahertz waves
Mesh Keyword
Intermolecular interactionsLarge optical nonlinearitiesMolecular engineeringNear infrared regionNonlinear optical chromophoreParallel alignmentsPlate-like crystalsSpectral bandwidth
All Science Classification Codes (ASJC)
Medicine (miscellaneous)Chemical Engineering (all)Materials Science (all)Biochemistry, Genetics and Molecular Biology (miscellaneous)Engineering (all)Physics and Astronomy (all)
Abstract
New organic THz generators are designed herein by molecular engineering of the refractive index, phonon mode, and spatial asymmetry. These benzothiazolium crystals simultaneously satisfy the crucial requirements for efficient THz wave generation, including having nonlinear optical chromophores with parallel alignment that provide large optical nonlinearity; good phase matching for enhancing the THz generation efficiency in the near-infrared region; strong intermolecular interactions that provide restraining THz self-absorption; high solubility that promotes good crystal growth ability; and a plate-like crystal morphology with excellent optical quality. Consequently, the as-grown benzothiazolium crystals exhibit excellent characteristics for THz wave generation, particularly at near-infrared pump wavelengths around 1100 nm, which is very promising given the availability of femtosecond laser sources at this wavelength, where current conventional THz generators deliver relatively low optical-to-THz conversion efficiencies. Compared to a 1.0-mm-thick ZnTe crystal as an inorganic benchmark, the 0.28-mm-thick benzothiazolium crystal yields a 19 times higher peak-to-peak THz electric field with a broader spectral bandwidth (>6.5 THz) when pumped at 1140 nm. The present work provides a valuable approach toward realizing organic crystals that can be pumped by near-infrared sources for efficient THz wave generation.
ISSN
2198-3844
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/31505
DOI
https://doi.org/10.1002/advs.202001738
Type
Article
Funding
M.\\u2010H.S. and W.T.K. contributed equally to this work. This work was supported by the National Research Foundation of Korea (NRF) funded by the Ministry of Science, ICT & Future Planning, Korea (Nos. 2014R1A5A1009799, 2019K1A3A1A14057973, 2019R1A2C3003504, and 2020R1A4A2002828) and Swiss National Science Foundation (SNSF), Switzerland (No. IZKSZ2_188194).
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Kim, Sangwook Image
Kim, Sangwook김상욱
Department of Applied Chemistry & Biological Engineering
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