Michael P. Minitti, James M. Budarz, Adam Kirrander, Joseph S. Robinson, Daniel Ratner, Thomas J. Lane, Diling Zhu, James M. Glownia, Michael Kozina, Henrik T. Lemke, Marcin Sikorski, Yiping Feng, Silke Nelson, 斉田 謙一郎, Brian Stankus, Thomas Northey, Jerome B. Hastings, Peter M. Weber
Physical Review Letters 114 25-26 255501 American Physical Society (APS) 2015年06月
[査読有り][通常論文] Structural rearrangements within single molecules occur on ultrafast time scales. Many aspects of molecular dynamics, such as the energy flow through excited states, have been studied using spectroscopic techniques, yet the goal to watch molecules evolve their geometrical structure in real time remains challenging. By mapping nuclear motions using femtosecond x-ray pulses, we have created real-space representations of the evolving dynamics during a well-known chemical reaction and show a series of time-sorted structural snapshots produced by ultrafast time-resolved hard x-ray scattering. A computational analysis optimally matches the series of scattering patterns produced by the x rays to a multitude of potential reaction paths. In so doing, we have made a critical step toward the goal of viewing chemical reactions on femtosecond time scales, opening a new direction in studies of ultrafast chemical reactions in the gas phase.