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Wide-Bandgap Organic Crystals: Enhanced Optical-to-Terahertz Nonlinear Frequency Conversion at Near-Infrared Pumpingoa mark
  • Kim, Deokjoong ;
  • Kim, Won Tae ;
  • Han, Jae Hyun ;
  • Lee, Ji Ah ;
  • Lee, Seung Heon ;
  • Kang, Bong Joo ;
  • Jazbinsek, Mojca ;
  • Yoon, Woojin ;
  • Yun, Hoseop ;
  • Kim, Dongwook ;
  • van Bezouw, Stein ;
  • Campo, Jochen ;
  • Wenseleers, Wim ;
  • Rotermund, Fabian ;
  • Kwon, O. Pil
Citations

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Publication Year
2020-05-01
Publisher
Wiley-VCH Verlag
Citation
Advanced Optical Materials, Vol.8
Keyword
electro-optical materialsnonlinear opticsterahertz photonics
Mesh Keyword
Frequency-conversion processNonlinear frequency conversionNonlinear susceptibilitiesOptical nonlinearityOrganic materialsState of the artTerahertz photonicsTerahertz wave generation
All Science Classification Codes (ASJC)
Electronic, Optical and Magnetic MaterialsAtomic and Molecular Physics, and Optics
Abstract
Enhanced terahertz (THz) wave generation is demonstrated in nonlinear organic crystals through refractive index engineering, which improves phase matching characteristics substantially. Unlike conventional low-bandgap nonlinear organic crystals, the newly designed benzimidazolium-based HMI (2-(4-hydroxy-3-methoxystyryl)-1,3-dimethyl-1H-benzoimidazol-3-ium) chromophore possesses a relatively wide bandgap. This reduces the optical group index in the near-infrared, allowing better phase matching with the generated THz waves, and leads to high optical-to-THz conversion. A unique feature of the HMI-based crystals, compared to conventional wide-bandgap aniline-based crystals, is their remarkably larger macroscopic optical nonlinearity, a one order of magnitude higher diagonal component in macroscopic nonlinear susceptibility than NPP ((1-(4-nitrophenyl)pyrrolidin-2-yl)methanol) crystals. The HMI-based crystals also exhibit much higher thermal stability, with a melting temperature Tm above 250 °C, versus aniline-based crystals (116 °C for NPP). With pumping at the technologically important wavelength of 800 nm, the proposed HMI-based crystals boost high optical-to-THz conversion efficiency, comparable to benchmark low-bandgap quinolinium crystals with state-of-the-art macroscopic nonlinearity. This performance is due to the excellent phase matching enabled by decreasing optical group indices in the near-infrared through wide-bandgap chromophores. The proposed wide-bandgap design is a promising way to control the refractive index of various nonlinear organic materials for enhanced frequency conversion processes.
ISSN
2195-1071
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/31210
DOI
https://doi.org/10.1002/adom.201902099
Fulltext

Type
Article
Funding
D.J.K. and W.T.K. contributed equally to this work. This work has been supported by the National Research Foundation of Korea (NRF) funded by the Ministry of Science, ICT & Future Planning, Korea (Nos. 2019K1A3A1A14057973, 2014R1A5A1009799, 2019R1A2C3003504, and 2020R1A4A2002828), Swiss National Science Foundation (SNSF), Switzerland (No. IZKSZ2_188194) and the Fund for Scientific Research-Flanders (FWO; Projects No. G020612N, G052213N, G035918N, G036618N, and the EOS CHARMING project G0F6218N [EOS-ID 30467715]).D.J.K. and W.T.K. contributed equally to this work. This work has been supported by the National Research Foundation of Korea (NRF) funded by the Ministry of Science, ICT & Future Planning, Korea (Nos. 2019K1A3A1A14057973, 2014R1A5A1009799, 2019R1A2C3003504, and 2020R1A4A2002828), Swiss National Science Foundation (SNSF), Switzerland (No. IZKSZ2_188194) and the Fund for Scientific Research\u2010Flanders (FWO; Projects No. G020612N, G052213N, G035918N, G036618N, and the EOS CHARMING project G0F6218N [EOS\u2010ID 30467715]).
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