Electronic Spectra of C60 Films Using Screened Range Separated Hybrid Functionals
Chandrima Chakravarty1, Huseyin Aksu1, Buddhadev Maiti1
1Department of Chemistry and Biochemistry, Kent State University, Kent, Ohio 44242-0001, United States.
This study computationally analyzes electronic spectra of C60 thin films using a novel density functional theory (DFT) approach. The findings accurately reproduce experimental spectral peaks and identify a low-lying excitonic state.
Area of Science:
- Computational materials science
- Quantum chemistry
- Solid-state physics
Background:
- Understanding the electronic properties of C60 thin films is crucial for advanced material applications.
- Accurate theoretical prediction of electronic spectra, especially excitation energies, remains a challenge.
Purpose of the Study:
- To computationally investigate the electronic spectra of C60 thin films.
- To validate a new density functional theory (DFT) framework for condensed phase systems.
- To analyze and assign spectral features, including excitonic effects.
Main Methods:
- Utilized a density functional theory (DFT) framework combining a screened range separated hybrid (SRSH) functional with a polarizable continuum model (PCM).
- Calculated electronic excitation energies using time-dependent DFT (TD-DFT).
- Investigated excitonic effects to interpret spectral features.
Main Results:
- The SRSH-PCM approach accurately correlated frontier orbital energies with condensed-phase ionization potential and electron affinity.
- Calculated excited states successfully reproduced experimental spectral peaks between 3.6–4.6 eV.
- Identified and assigned a low-lying spectral peak at 2.7 eV to an excitonic state, also reproducing red-shifted features.
Conclusions:
- The SRSH-PCM DFT approach provides high-quality electronic excitation energies for condensed-phase systems like C60 thin films.
- The study successfully explains the main experimental spectral features of C60 thin films, including excitonic contributions.
- This computational method offers a reliable tool for predicting the electronic spectra of molecular materials.
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