4.6 Article

Synthesis and Thermal, Photophysical, Electrochemical Properties of 3,3-di[3-Arylcarbazol-9-ylmethyl]oxetane Derivatives

Journal

MATERIALS
Volume 14, Issue 19, Pages -

Publisher

MDPI
DOI: 10.3390/ma14195569

Keywords

oxetane derivatives; carbazole materials; hole transporting materials

Funding

  1. National Science Centre of Poland [2018/31/B/ST8/03294]
  2. Kaunas University of Technology
  3. Vytautas Magnus University
  4. Research Excellence Initiative of the University of Silesia in Katowice
  5. Wroclaw Centre for Networking and Supercomputing, WCSS, Wroclaw, Poland [18]

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Novel oxetane-functionalized derivatives were synthesized to investigate the impact of carbazole substituents on their thermal, photophysical and electrochemical properties. The compounds showed high thermal stability and emitted radiation with varying photoluminescence quantum yield. Additionally, they were tested as hole transporting materials in perovskite solar cells, showing potential for application in photovoltaic devices.
Novel oxetane-functionalized derivatives were synthesized to find the impact of carbazole substituents, such as 1-naphtyl, 9-ethylcarbazole and 4-(diphenylamino)phenyl, on their thermal, photophysical and electrochemical properties. Additionally, to obtain the optimized ground-state geometry and distribution of the frontier molecular orbital energy levels, density functional theory (DFT) calculations were used. Thermal investigations showed that the obtained compounds are highly thermally stable up to 360 degrees C, as molecular glasses with glass transition temperatures in the range of 142-165 degrees C. UV-Vis and photoluminescence studies were performed in solvents of differing in polarity, in the solid state as a thin film on glass substrate, and in powders, and were supported by DFT calculations. They emitted radiation both in solution and in film with photoluminescence quantum yield from 4% to 87%. Cyclic voltammetry measurements revealed that the materials undergo an oxidation process. Next, the synthesized molecules were tested as hole transporting materials (HTM) in perovskite solar cells with the structure FTO/b-TiO2/m-TiO2/perovskite/HTM/Au, and photovoltaic parameters were compared with the reference device without the oxetane derivatives.

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