4.0 Article

Chemical Modifications Suppress Anharmonic Effects in the Lattice Dynamics of Organic Semiconductors

Journal

ACS MATERIALS AU
Volume 2, Issue 6, Pages 699-708

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsmaterialsau.2c00020

Keywords

small-molecule organics semiconductors; organic; crystals; lattice dynamics; temperature and polarization-dependent; Raman spectroscopy; vibrational anharmonicity; density; functional theory; temperature-dependent X-ray diffraction

Funding

  1. European Research Counsel [850041]
  2. Belgian National Fund for Scientific Research (FNRS) [2.4565.11, T.0058.14, T.0072.18, 30489208, U.G001.19]
  3. French Community of Belgian (ARC) [20061]
  4. Marie Curie ITN projects UHMob [GA-811284]
  5. Consortium des E'quipements de Calcul Intensif (CECI) - Fonds de la Recherche Scientifique de Belgique (F.R.S.-FNRS) [2.5020.11]
  6. European Union's Horizon 2020 research and innovation programme under the Marie Sklodowska-Curie Grant [811284]

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This study investigates the effect of chemical modifications on the lattice dynamics of organic semiconductors. The results show that specific expressions of vibrational anharmonicity can be suppressed by chemical modifications, with p-conjugated modifications being the most effective.
The lattice dynamics of organic semiconductors has a significant role in determining their electronic and mechanical properties. A common technique to control these macroscopic properties is to chemically modify the molecular structure. These modifications are known to change the molecular packing, but their effect on the lattice dynamics is relatively unexplored. Therefore, we investigate how chemical modifications to a core [1]benzothieno[3,2-b]benzothiophene (BTBT) semiconducting crystal affect the evolution of the crystal structural dynamics with temperature. Our study combines temperature-dependent polarization-orientation (PO) low-frequency Raman measurements with first-principles calculations and single-crystal X-ray diffraction measurements. We show that chemical modifications can indeed suppress specific expressions of vibrational anharmonicity in the lattice dynamics. Specifically, we detect in BTBT a gradual change in the PO Raman response with temperature, indicating a unique anharmonic expression. This anharmonic expression is suppressed in all examined chemically modified crystals (ditBu-BTBT and diC8-BTBT, diPh-BTBT, and DNTT). In addition, we observe solid-solid phase transitions in the alkyl-modified BTBTs. Our findings indicate that p-conjugated chemical modifications are the most effective in suppressing these anharmonic effects.

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