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Orientational Coupling of Molecules at Interfaces Revealed by Two-Dimensional Electronic–Vibrational Sum Frequency Generation (2D-EVSFG)

[Image: see text] Photoinduced relaxation processes at interfaces are intimately related to many fields such as solar energy conversion, photocatalysis, and photosynthesis. Vibronic coupling plays a key role in the fundamental steps of the interface-related photoinduced relaxation processes. Vibroni...

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Autores principales: Huang-Fu, Zhi-Chao, Qian, Yuqin, Zhang, Tong, Deng, Gang-Hua, Brown, Jesse B., Fisher, Haley, Schmidt, Sydney, Chen, Hanning, Rao, Yi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10206597/
https://www.ncbi.nlm.nih.gov/pubmed/37234121
http://dx.doi.org/10.1021/jacsau.3c00074
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author Huang-Fu, Zhi-Chao
Qian, Yuqin
Zhang, Tong
Deng, Gang-Hua
Brown, Jesse B.
Fisher, Haley
Schmidt, Sydney
Chen, Hanning
Rao, Yi
author_facet Huang-Fu, Zhi-Chao
Qian, Yuqin
Zhang, Tong
Deng, Gang-Hua
Brown, Jesse B.
Fisher, Haley
Schmidt, Sydney
Chen, Hanning
Rao, Yi
author_sort Huang-Fu, Zhi-Chao
collection PubMed
description [Image: see text] Photoinduced relaxation processes at interfaces are intimately related to many fields such as solar energy conversion, photocatalysis, and photosynthesis. Vibronic coupling plays a key role in the fundamental steps of the interface-related photoinduced relaxation processes. Vibronic coupling at interfaces is expected to be different from that in bulk due to the unique environment. However, vibronic coupling at interfaces has not been well understood due to the lack of experimental tools. We have recently developed a two-dimensional electronic–vibrational sum frequency generation (2D-EVSFG) for vibronic coupling at interfaces. In this work, we present orientational correlations in vibronic couplings of electronic and vibrational transition dipoles as well as the structural evolution of photoinduced excited states of molecules at interfaces with the 2D-EVSFG technique. We used malachite green molecules at the air/water interface as an example, to be compared with those in bulk revealed by 2D-EV. Together with polarized VSFG and ESHG experiments, polarized 2D-EVSFG spectra were used to extract relative orientations of an electronic transition dipole and vibrational transition dipoles at the interface. Combined with molecular dynamics calculations, time-dependent 2D-EVSFG data have demonstrated that structural evolutions of photoinduced excited states at the interface have different behaviors than those in bulk. Our results showed that photoexcitation leads to intramolecular charge transfer but no conical interactions in 25 ps. Restricted environment and orientational orderings of molecules at the interface are responsible for the unique features of vibronic coupling.
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spelling pubmed-102065972023-05-25 Orientational Coupling of Molecules at Interfaces Revealed by Two-Dimensional Electronic–Vibrational Sum Frequency Generation (2D-EVSFG) Huang-Fu, Zhi-Chao Qian, Yuqin Zhang, Tong Deng, Gang-Hua Brown, Jesse B. Fisher, Haley Schmidt, Sydney Chen, Hanning Rao, Yi JACS Au [Image: see text] Photoinduced relaxation processes at interfaces are intimately related to many fields such as solar energy conversion, photocatalysis, and photosynthesis. Vibronic coupling plays a key role in the fundamental steps of the interface-related photoinduced relaxation processes. Vibronic coupling at interfaces is expected to be different from that in bulk due to the unique environment. However, vibronic coupling at interfaces has not been well understood due to the lack of experimental tools. We have recently developed a two-dimensional electronic–vibrational sum frequency generation (2D-EVSFG) for vibronic coupling at interfaces. In this work, we present orientational correlations in vibronic couplings of electronic and vibrational transition dipoles as well as the structural evolution of photoinduced excited states of molecules at interfaces with the 2D-EVSFG technique. We used malachite green molecules at the air/water interface as an example, to be compared with those in bulk revealed by 2D-EV. Together with polarized VSFG and ESHG experiments, polarized 2D-EVSFG spectra were used to extract relative orientations of an electronic transition dipole and vibrational transition dipoles at the interface. Combined with molecular dynamics calculations, time-dependent 2D-EVSFG data have demonstrated that structural evolutions of photoinduced excited states at the interface have different behaviors than those in bulk. Our results showed that photoexcitation leads to intramolecular charge transfer but no conical interactions in 25 ps. Restricted environment and orientational orderings of molecules at the interface are responsible for the unique features of vibronic coupling. American Chemical Society 2023-05-05 /pmc/articles/PMC10206597/ /pubmed/37234121 http://dx.doi.org/10.1021/jacsau.3c00074 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Huang-Fu, Zhi-Chao
Qian, Yuqin
Zhang, Tong
Deng, Gang-Hua
Brown, Jesse B.
Fisher, Haley
Schmidt, Sydney
Chen, Hanning
Rao, Yi
Orientational Coupling of Molecules at Interfaces Revealed by Two-Dimensional Electronic–Vibrational Sum Frequency Generation (2D-EVSFG)
title Orientational Coupling of Molecules at Interfaces Revealed by Two-Dimensional Electronic–Vibrational Sum Frequency Generation (2D-EVSFG)
title_full Orientational Coupling of Molecules at Interfaces Revealed by Two-Dimensional Electronic–Vibrational Sum Frequency Generation (2D-EVSFG)
title_fullStr Orientational Coupling of Molecules at Interfaces Revealed by Two-Dimensional Electronic–Vibrational Sum Frequency Generation (2D-EVSFG)
title_full_unstemmed Orientational Coupling of Molecules at Interfaces Revealed by Two-Dimensional Electronic–Vibrational Sum Frequency Generation (2D-EVSFG)
title_short Orientational Coupling of Molecules at Interfaces Revealed by Two-Dimensional Electronic–Vibrational Sum Frequency Generation (2D-EVSFG)
title_sort orientational coupling of molecules at interfaces revealed by two-dimensional electronic–vibrational sum frequency generation (2d-evsfg)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10206597/
https://www.ncbi.nlm.nih.gov/pubmed/37234121
http://dx.doi.org/10.1021/jacsau.3c00074
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