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Assessing Temperature Dependence of Band Gap Renormalization in LaCrO<sub>3−δ</sub> via First-Principles and Experimental Corroboration

ORAL

Abstract

For applications in combustion environments, understanding the temperature dependence of functional properties in high-temperature gas sensing materials is vital. The electron-phonon coupling that derives the electronic structure change with temperatures is a key property of interest as this affects other sensing responses. Herein, we assess the temperature dependence of band gap renormalization in pristine and oxygen-vacant LaCrO3-δ perovskite employing Allen-Heine-Cardona theory with first-principles simulations, and corroborate with experimental observation. We find fair agreement in temperature-dependent band gap change in LaCrO3 between theory and an in-house experiment, proving that the theory can adequately predict renormalization on the band gap in the system of interest. Band gaps in high-temperature phase of cubic LaCrO3-δ are found to be monotonically closed by 1.13 eV in pristine and by around 0.62 eV in oxygen-vacant states as a function of temperature up to 1500 K. The predicted and measured band gap variations are characterized using an analytical model, which can provide useful insights on the simulated zero-temperature band gaps.

Publication: Jongwoo Park, Wissam A. Saidi, Jeffrey K. Wuenschell, Bret H. Howard, Benjamin Chorpening, Yuhua Duan, ″Assessing the Effects of Temperature and Oxygen Vacancy on Band Gap Renormalization in LaCrO3-δ: First-Principles and Experimental Corroboration″, ACS Applied Materials & Interfaces, 13 (2021) 17717-17725.<br>Jongwoo Park, Wissam A. Saidi, Benjamin Chorpening, Yuhua Duan, ″Quantifying Temperature Dependence of Electronic Band Gaps and Optical Properties in SnO2 and SnO via First-Principles Simulations″, The Journal of Physical Chemistry C, 125 (2021) 22231-22238.

Presenters

  • Jongwoo Park

    National Energy Technology Laboratory, US DOE

Authors

  • Jongwoo Park

    National Energy Technology Laboratory, US DOE

  • Jeffrey K Wuenschell

    National Energy Technology Laboratory, US DOE

  • Benjamin Chorpening

    National Energy Technology Laboratory, US DOE

  • Wissam A Saidi

    University of Pittsburgh

  • Yuhua Duan

    Natl Energy Technology Lab, National Energy Technology Laboratory, 626 Cochrans Mill Road, P.O. Box 10940, Pittsburgh, PA 15236-0940, USA, National Energy Technology Laboratory, US DOE