Skip to main page content
U.S. flag

An official website of the United States government

Dot gov

The .gov means it’s official.
Federal government websites often end in .gov or .mil. Before sharing sensitive information, make sure you’re on a federal government site.

Https

The site is secure.
The https:// ensures that you are connecting to the official website and that any information you provide is encrypted and transmitted securely.

Access keys NCBI Homepage MyNCBI Homepage Main Content Main Navigation
Review
. 2023 Jan;22(1):195-217.
doi: 10.1007/s43630-022-00297-x. Epub 2022 Oct 8.

Spectroscopic and kinetic characterization of photogenerated charge carriers in photocatalysts

Affiliations
Review

Spectroscopic and kinetic characterization of photogenerated charge carriers in photocatalysts

Jenny Schneider et al. Photochem Photobiol Sci. 2023 Jan.

Abstract

The catastrophic consequences of increased power consumption, such as drastically rising CO2 levels, natural disasters, environmental pollution and dependence on fossil fuels supplied by countries with totalitarian regimes, illustrate the urge to develop sustainable technologies for energy generation. Photocatalysis presents eco-friendly means for fuels production via solar-to-chemical energy conversion. The conversion efficiency of a photocatalyst critically depends on charge carrier processes taking place in the ultrafast time regime. Transient absorption spectroscopy (TAS) serves as a perfect tool to track those processes. The spectral and kinetic characterization of charge carriers is indispensable for the elucidation of photocatalytic mechanisms and for the development of new materials. Hence, in this review, we will first present the basics of TAS and subsequently discuss the procedure required for the interpretation of the transient absorption spectra and transient kinetics. The discussion will include specific examples for charge carrier processes occurring in conventional and plasmonic semiconductors.

PubMed Disclaimer

References

    1. Serpone, N., Emeline, A. V., Horikoshi, S., Kuznetsov, V. N., & Ryabchuk, V. K. (2012). On the genesis of heterogeneous photocatalysis: A brief historical perspective in the period 1910 to the mid-1980s. Photochemical and Photobiological Sciences, 11, 1121–1150. https://doi.org/10.1039/C2PP25026H - DOI
    1. Fujishima, A., & Honda, K. (1972). Electrochemical photolysis of water at a semiconductor electrode. Nature, 238, 37–38. https://doi.org/10.1038/238037a0 - DOI
    1. Bahnemann, D., Henglein, A., Lilie, J., & Spanhel, L. (1984). Flash photolysis observation of the absorption spectra of trapped positive holes and electrons in colloidal titanium dioxide. Journal of Physical Chemistry, 88, 709–711. https://doi.org/10.1021/j150648a018 - DOI
    1. Ponseca, C. S., Chábera, P., Uhlig, J., Persson, P., & Sundström, V. (2017). Ultrafast electron dynamics in solar energy conversion. Chemical Reviews, 117, 10940–11024. https://doi.org/10.1021/acs.chemrev.6b00807 - DOI
    1. Simon, J. D. (1994). Ultrafast dynamics of chemical systems. In Simon, J. D. (Ed.). Springer Netherlands. https://doi.org/10.1007/978-94-011-0916-1 . (ISBN: 978-94-010-4395-3).

LinkOut - more resources