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      Lifetime and spectrally resolved characterization of the photodynamics of single fluorophores in solution using the anti-Brownian electrokinetic trap.

      1 ,
      The journal of physical chemistry. B
      American Chemical Society (ACS)

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          Abstract

          We report simultaneous determination of fluorescence intensity, lifetime, and emission spectrum over time scales on the order of seconds for single molecules in solution, using the anti-Brownian electrokinetic trap. We demonstrate the technique with trapped single fluorophores of Atto647N and Alexa647. Three emission states with distinct intensities, lifetimes, and emission peaks are found in the case of Atto647N. Transitions between states happen occasionally. We characterize the three states and quantify the transition probabilities between states using concurrent intensity, lifetime, and spectrum data. Alexa647, on the other hand, showed little dynamics. These results represent a significant advance in the ability to identify and characterize different dynamical states of single molecules in aqueous solution with high precision and millisecond time resolution.

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          Author and article information

          Journal
          J Phys Chem B
          The journal of physical chemistry. B
          American Chemical Society (ACS)
          1520-5207
          1520-5207
          Apr 25 2013
          : 117
          : 16
          Affiliations
          [1 ] Department of Chemistry, Stanford University, Stanford, California 94305, USA.
          Article
          10.1021/jp308949d
          23198678
          f48297d0-027e-4858-9e25-2ec10b06733f
          History

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