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Development of phase-cycling interface-specific two-dimensional electronic sum frequency generation (2D-ESFG) spectroscopy.
Huang-Fu, Zhi-Chao; Qian, Yuqin; Zhang, Tong; Brown, Jesse B; Rao, Yi.
Afiliação
  • Huang-Fu ZC; Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322, USA.
  • Qian Y; Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322, USA.
  • Zhang T; Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322, USA.
  • Brown JB; Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322, USA.
  • Rao Y; Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322, USA.
J Chem Phys ; 161(11)2024 Sep 21.
Article em En | MEDLINE | ID: mdl-39291691
ABSTRACT
Two-dimensional electronic spectroscopy (2D-ES) has become an important technique for studying energy transfer, electronic coupling, and electronic-vibrational coherence in the past ten years. However, since 2D-ES is not interface specific, the electronic information at surfaces and interfaces could not be demonstrated clearly. Two-dimensional electronic sum-frequency generation (2D-ESFG) is an emerging spectroscopic technique that explores the correlations between different interfacial electronic transitions and is the extension of 2D-ES to surface and interfacial specificity. In this work, we present the detailed development and implementation of phase-cycling 2D-ESFG spectroscopy using an acousto-optic pulse shaper in a pump-probe geometry. With the pulse pair generated by a pulse shaper rather than optical devices based on birefringence or interference, this 2D-ESFG setup enables rapid scanning, phase cycling, and the separation of rephasing and nonrephasing signals. In addition, by collecting data in a rotating frame, we greatly improve experimental efficiency. We demonstrate the method for azo-derivative molecules at the air/water interface. This method could be readily extended to different interfaces and surfaces. The unique phase-cycling 2D-ESFG technique enables one to quantify the energy transfer, charge transfer, electronic coupling, and many other electronic properties and dynamics at surfaces and interfaces with precision and relative ease of use. Our goal in this article is to present the fine details of the fourth-order nonlinear optical technique in a manner that is comprehensive, succinct, and approachable such that other researchers can implement, improve, and adapt it to probe unique and innovative problems to advance the field.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article