论文标题

用超短X射线脉冲实时探测的甘氨酸分子中的电子量子相干性

Electronic Quantum Coherence in Glycine Molecules Probed with Ultrashort X-ray Pulses in Real Time

论文作者

Schwickert, David, Ruberti, Marco, Kolorenč, Přemys, Usenko, Sergey, Przystawik, Andreas, Baev, Karolin, Baev, Ivan, Braune, Markus, Bocklage, Lars, Czwalinna, Marie Kristin, Deinert, Sascha, Düsterer, Stefan, Hans, Andreas, Hartmann, Gregor, Haunhorst, Christian, Kuhlmann, Marion, Palutke, Steffen, Röhlsberger, Ralf, Rönsch-Schulenburg, Juliane, Schmidt, Philipp, Toleikis, Sven, Viefhaus, Jens, Martins, Michael, Knie, André, Kip, Detlef, Averbukh, Vitali, Marangos, Jon P., Laarmann, Tim

论文摘要

光电离分子的电子状态与产生的超快电子孔迁移过程之间的量子相干性已被提出,作为负责光电离电诱导的分子分解的电荷定向反应性的可能的量子机制。基于提议的电子现象的间接(基于片段离子)表征的ATTSOND实验表明,光电离电引起的电子相干性可以生存在数十亿的飞秒上,而某些理论研究预测,由于核位置和核能效应的量子不确定性而导致相干性的速度更快。空旷的问题是:长寿命的电子量子相干是否存在于复杂分子中,并且可以直接探测它们,即通过电子可观察物。在这里,我们使用X射线来创建和直接探测光电离氨基酸甘氨酸中的量子相干性。外向的光电波留下了带正电荷的离子,该离子位于位于电离脉冲光谱带宽内的量子机械本征的相干叠加中。延迟的X射线脉冲通过谐振X射线吸收跟踪诱导的连贯性,从而诱导螺旋螺旋腐烂和通过顺序双重光电离的光电发射。在两个测量值中都观察到了早期(0-25 fs)检测到的信号的正弦时间调节。在核位置的量子不确定性中,先进的主载多电子模拟,使我们可以根据电子相干性来解释检测到的相干量子演变的前25 fs。

Quantum coherence between electronic states of a photoionized molecule and the resulting process of ultrafast electron-hole migration have been put forward as a possible quantum mechanism of charge-directed reactivity governing the photoionization-induced molecular decomposition. Attosecond experiments based on the indirect (fragment ion-based) characterization of the proposed electronic phenomena suggest that the photoionization-induced electronic coherence can survive for tens of femtoseconds, while some theoretical studies predict much faster decay of the coherence due to the quantum uncertainty in the nuclear positions and the nuclear-motion effects. The open questions are: do long-lived electronic quantum coherences exist in complex molecules and can they be probed directly, i.e. via electronic observables? Here, we use x-rays both to create and to directly probe quantum coherence in the photoionized amino acid glycine. The outgoing photoelectron wave leaves behind a positively charged ion that is in a coherent superposition of quantum mechanical eigenstates lying within the ionizing pulse spectral bandwidth. Delayed x-ray pulses track the induced coherence through resonant x-ray absorption that induces Auger decay and by the photoelectron emission from sequential double photoionization. Sinusoidal temporal modulation of the detected signal at early times (0 - 25 fs) is observed in both measurements. Advanced ab initio many-electron simulations, taking into account the quantum uncertainty in the nuclear positions, allow us to explain the first 25 fs of the detected coherent quantum evolution in terms of the electronic coherence.

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