Local Rigidity by Flexibility: Unusual Design for Organic THz‐Device Materials

Author:

Kim Dong‐Joo1,Yu In Cheol2,Jazbinsek Mojca3,Kim Chaeyoon2,Yoon Woojin4,Yun Hoseop4,Kim Sang‐Wook1,Kim Dongwook5,Rotermund Fabian2,Kwon O‐Pil1ORCID

Affiliation:

1. Department of Molecular Science and Technology Ajou University Suwon 16499 South Korea

2. Department of Physics Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 South Korea

3. Institute of Computational Physics Zurich University of Applied Sciences (ZHAW) Winterthur 8401 Switzerland

4. Research Institute of Basic Sciences Department of Chemistry and Department of Energy Systems Research Ajou University Suwon 16499 South Korea

5. Department of Chemistry Kyonggi University San 94‐6, Iui‐dong, Yeongtong‐gu Suwonsi Gyeonggi 443‐760 SouthKorea

Abstract

AbstractTerahertz (THz) waves interact with molecular phonon vibrations of organic matter. When designing organic THz‐device materials, conformational flexible groups (CFGs) are in most cases avoided. CFGs create many low‐energy conformers with high conformational entropy, which results in large and many phonon vibration modes that lead to undesired self‐absorption of THz waves. Here, nonpolar CFGs only having weak intermolecular interaction capability are unusually introduced into organic THz‐device materials, utilized for efficient THz wave generation. Newly designed THz‐source crystals possess nonpolar methylene (CH2)n units having high conformational flexibility. Compared to previously reported benchmark crystals without methylene CFGs, introducing methylene CFGs significantly reduces void volume in newly designed crystals. This leads to the suppression of molecular phonon vibrations below 2.0 THz (i.e., introducing flexibility results in local rigidity). At infrared pump wavelengths, new CFG‐contained crystals generate a strong THz electric field that is one order of magnitude stronger than that generated in inorganic ZnTe crystals. CFG‐contained crystals exhibit a flatter spectral shape of the generated THz wave than benchmark crystals without methylene CFGs. Therefore, the introduction of CFGs is a very intriguing design strategy for organic THz‐device materials to reduce the limitations caused by phonon vibrations.

Funder

National Research Foundation of Korea

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Ministry of Education

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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