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Communication: Direct evidence for sequential dissociation of gas-phase Fe(CO)(5) via a singlet pathway upon excitation at 266 nm

机译:通信:在266nm激发后通过单次途径顺序解离气相Fe(CO)(5)的直接证据

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摘要

We prove the hitherto hypothesized sequential dissociation of Fe(CO)(5) in the gas phase upon photoexcitation at 266 nm via a singlet pathway with time-resolved valence and core-level photoelectron spectroscopy with an x-ray free-electron laser. Valence photoelectron spectra are used to identify free CO molecules and to determine the time constants of stepwise dissociation to Fe(CO)(4) within the temporal resolution of the experiment and further to Fe(CO)(3) within 3 ps. Fe 3p core-level photoelectron spectra directly reflect the singlet spin state of the Fe center in Fe(CO)(5), Fe(CO)(4), and Fe(CO)(3) showing that the dissociation exclusively occurs along a singlet pathway without triplet-state contribution. Our results are important for assessing intra- and intermolecular relaxation processes in the photodissociation dynamics of the prototypical Fe(CO)(5) complex in the gas phase and in solution, and they establish time-resolved core-level photoelectron spectroscopy as a powerful tool for determining the multiplicity of transition metals in photochemical reactions of coordination complexes. Published by AIP Publishing.
机译:我们在266纳米通过的单通路经过光激发,证明在气相中的Fe(CO)的迄今假设顺序解离(5)与X射线自由电子激光的时间分辨价和核心级光电子能谱。价光电子谱被用于实验的时间分辨率内,并且进一步到3个PS内的Fe(CO)(3)确定自由CO分子和,以确定分步解离的时间常数为Fe(CO)(4)。铁3P核心级光电子谱直接反映在的Fe(CO)中的Fe(5)中心,铁(CO)(4)的单重自旋状态和Fe(CO)(3)示出了离解只沿一个发生单通路无三重态的贡献。我们的研究结果是在原型的Fe(CO)的光解动力学(5)在气相和溶液中复杂的评估分子内和分子间的弛豫过程重要,并与其建立时间分辨核心级光电子能谱法作为一种强大的工具用于确定在配位络合物的光化学反应的过渡金属的多重性。通过AIP发布发布。

著录项

  • 来源
    《The Journal of Chemical Physics》 |2017年第21期|共5页
  • 作者单位

    Helmholtz Zentrum Berlin Mat &

    Energie GmbH Inst Methods &

    Instrumentat Synchrotron Radiat Re Albert Einstein Str 15 D-12489 Berlin Germany;

    Helmholtz Zentrum Berlin Mat &

    Energie GmbH Inst Methods &

    Instrumentat Synchrotron Radiat Re Albert Einstein Str 15 D-12489 Berlin Germany;

    Stockholm Univ AlbaNova Univ Ctr Dept Phys S-10691 Stockholm Sweden;

    European XFEL GmbH Holzkoppel 4 D-22869 Schenefeld Germany;

    Helmholtz Zentrum Berlin Mat &

    Energie GmbH Inst Methods &

    Instrumentat Synchrotron Radiat Re Albert Einstein Str 15 D-12489 Berlin Germany;

    Helmholtz Zentrum Berlin Mat &

    Energie GmbH Inst Methods &

    Instrumentat Synchrotron Radiat Re Albert Einstein Str 15 D-12489 Berlin Germany;

    Helmholtz Zentrum Berlin Mat &

    Energie GmbH Inst Methods &

    Instrumentat Synchrotron Radiat Re Albert Einstein Str 15 D-12489 Berlin Germany;

    Helmholtz Zentrum Berlin Mat &

    Energie GmbH Inst Methods &

    Instrumentat Synchrotron Radiat Re Albert Einstein Str 15 D-12489 Berlin Germany;

    Helmholtz Zentrum Berlin Mat &

    Energie GmbH Inst Methods &

    Instrumentat Synchrotron Radiat Re Albert Einstein Str 15 D-12489 Berlin Germany;

    European XFEL GmbH Holzkoppel 4 D-22869 Schenefeld Germany;

    Deutsch Elektronen Synchrotron DESY Notkestr 85 D-22607 Hamburg Germany;

    European XFEL GmbH Holzkoppel 4 D-22869 Schenefeld Germany;

    Stockholm Univ AlbaNova Univ Ctr Dept Phys S-10691 Stockholm Sweden;

    Helmholtz Zentrum Berlin Mat &

    Energie GmbH Inst Methods &

    Instrumentat Synchrotron Radiat Re Albert Einstein Str 15 D-12489 Berlin Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

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