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      Ultrafast X-ray diffraction in liquid, solution and gas: present status and future prospects.

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          Abstract

          In recent years, the time-resolved X-ray diffraction technique has been established as an excellent tool for studying reaction dynamics and protein structural transitions with the aid of 100 ps X-ray pulses generated from third-generation synchrotrons. The forthcoming advent of the X-ray free-electron laser (XFEL) will bring a substantial improvement in pulse duration, photon flux and coherence of X-ray pulses, making time-resolved X-ray diffraction even more powerful. This technical breakthrough is envisioned to revolutionize the field of reaction dynamics associated with time-resolved diffraction methods. Examples of candidates for the first femtosecond X-ray diffraction experiments using highly coherent sub-100 fs pulses generated from XFELs are presented in this paper. They include the chemical reactions of small molecules in the gas and solution phases, solvation dynamics and protein structural transitions. In these potential experiments, ultrafast reaction dynamics and motions of coherent rovibrational wave packets will be monitored in real time. In addition, high photon flux and coherence of XFEL-generated X-ray pulses give the prospect of single-molecule diffraction experiments.

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          Author and article information

          Journal
          Acta Crystallogr., A, Found. Crystallogr.
          Acta crystallographica. Section A, Foundations of crystallography
          1600-5724
          0108-7673
          Mar 2010
          : 66
          : Pt 2
          Affiliations
          [1 ] Center for Time-Resolved Diffraction, Department of Chemistry, and Graduate School of Nanoscience and Technology (WCU), KAIST, Daejeon 305-701, Republic of Korea.
          Article
          S0108767309052052
          10.1107/S0108767309052052
          20164650
          07e94a7a-84be-4c5a-836f-8f592732710f
          History

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