4.8 Article

Dynamic Stark Effect in Two-Dimensional Spectroscopy Revealing Modulation of Ultrafast Charge Separation in Bacterial Reaction Centers by an Inherent Electric Field

期刊

JOURNAL OF PHYSICAL CHEMISTRY LETTERS
卷 12, 期 23, 页码 5526-5533

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpclett.1c01059

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资金

  1. Natural Science Foundation of China [21903086]
  2. National Key R&D Program of China [2019YFA0904600]
  3. European Research Council through an Advanced Investigator grant [267333]
  4. Biotechnology and Biological Sciences Research Council of the U.K. [BB/I022570/1]
  5. Russian Foundation for Basic Research [18-04-00105]
  6. BBSRC [BB/I022570/1] Funding Source: UKRI

向作者/读者索取更多资源

This study found transient Stark signals in ultrafast two-dimensional electronic spectra of purple bacterial reaction centers, indicating the influence of electric fields on charge separation processes. The correlation between the efficient formation of PA+PB- and fast charge separation rate suggests a mechanism for modulating the reaction rates. The changes in energy levels and electric fields upon mutation provide a solution to the inconsistency between experimental observations and activation energy theory.
Despite extensive study, mysteries remain regarding the highly efficient ultrafast charge separation processes in photosynthetic reaction centers (RCs). In this work, transient Stark signals were found to be present in ultrafast two-dimensional electronic spectra recorded for purple bacterial RCs at 77 K. These arose from the electric field that is inherent to the intradimer charge-transfer intermediate of the bacteriochlorophyll pair (P), PA+PB-. By comparing three mutated RCs, a correlation was found between the efficient formation of PA+PB- and a fast charge separation rate. Importantly, the energy level of P* was changed due to the Stark shift, influencing the driving force for P* -> P+BA- electron transfer and hence its rate. Furthermore, the orientation and amplitude of the inherent electric field varied in different ways upon different mutation, leading to contrasting changes in the rates. This mechanism of modulation provides a solution to a long-lasting inconsistency between experimental observations and activation energy theory.

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