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Imaging an isolated water molecule using a single electron wave packet

机译:使用单个电子波包成像分离的水分子

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Observing changes in molecular structure requires atomic-scale Angstrom and femtosecond spatio-temporal resolution. We use the Fourier transform (FT) variant of laser-induced electron diffraction (LIED), FT-LIED, to directly retrieve the molecular structure of H2O+ with picometer and femtosecond resolution without a priori knowledge of the molecular structure nor the use of retrieval algorithms or ab initio calculations. We identify a symmetrically stretched H2O+ field-dressed structure that is most likely in the ground electronic state. We subsequently study the nuclear response of an isolated water molecule to an external laser field at four different field strengths. We show that upon increasing the laser field strength from 2.5 to 3.8 V/angstrom, the O-H bond is further stretched and the molecule slightly bends. The observed ultrafast structural changes lead to an increase in the dipole moment of water and, in turn, a stronger dipole interaction between the nuclear framework of the molecule and the intense laser field. Our results provide important insights into the coupling of the nuclear framework to a laser field as the molecular geometry of H2O+ is altered in the presence of an external field.
机译:观察分子结构的变化需要原子尺寸的埃斯特罗姆和飞秒时空分辨率。我们使用激光诱导的电子衍射(撒谎),FT谎言的傅里叶变换(FT)变体,直接通过Picometer和FemtoSecond分辨率直接检索H2O +的分子结构,而无需先验的分子结构,也不使用检索算法或AB Initio计算。我们识别了一个对称拉伸的H2O +场衣服结构,最有可能在地面电子状态下。我们随后在四种不同场强的外部激光场上研究了分离的水分子的核反应。我们表明,在增加2.5至3.8V /埃的激光场强度时,O-H键进一步拉伸,分子略微弯曲。观察到的超快结构变化导致水的偶极力矩增加,而且反过来,分子的核框架与强激光场之间的较强的偶极相互作用。我们的结果为核框架与激光场的耦合提供了重要的见解,因为H2O +的分子几何形状在外部存在下改变。

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