论文标题

连续辐照后,能量转移和重组

Energy transfer and restructuring in amorphous solid water upon consecutive irradiation

论文作者

Cuppen, Herma M., Noble, Jennifer A., Coussan, Stephane, Redlich, Britta, Ioppolo, Sergio

论文摘要

星际和彗星冰在年轻恒星周围的行星系统的形成中起着重要作用。它们的主要成分是无定形的固体水(ASW)。尽管广泛研究了ASW,但振动能量耗散和由于振动激发而引起的结构变化知之甚少。氢键网络可能是其中的关键组成部分。在这里,我们介绍了有关荷兰尼黑兰州Radboud University的HFML-Felix设施的Felix-2梁线的强烈的,几乎单色的MID-IR自由电子激光(FEL)辐射引起的ASW氢键变化的实验结果。 ASW中的结构变化通过反射吸收红外光谱法监测,并取决于冰的辐射病史。实验表明,FEL照射可以诱导由于能量转移而引起的激发分子局部邻域的变化。分子动力学模拟证实了这张图:振动激发的分子可以重新定位,以使其在不破坏现有氢键的情况下更优化的四面体周围。振动能可以通过氢键网络转移到具有相同振动频率的水分子。因此,由于振动频率的不均匀性以及特定的氢键缺陷位点的存在,我们期望相对于晶体材料的无定形材料的能量耗散减少,这也会阻碍能量转移。

Interstellar and cometary ices play an important role in the formation of planetary systems around young stars. Their main constituent is amorphous solid water (ASW). Although ASW is widely studied, vibrational energy dissipation and structural changes due to vibrational excitation are less well understood. The hydrogen-bonding network is likely a crucial component in this. Here we present experimental results on hydrogen-bonding changes in ASW induced by the intense, nearly monochromatic mid-IR free-electron laser (FEL) radiation of the FELIX-2 beamline at the HFML-FELIX facility at the Radboud University in Nijmegen, the Netherlands. Structural changes in ASW are monitored by reflection-absorption infrared spectroscopy and depend on the irradiation history of the ice. The experiments show that FEL irradiation can induce changes in the local neighborhood of the excited molecules due to energy transfer. Molecular Dynamics simulations confirm this picture: vibrationally excited molecules can reorient for a more optimal tetrahedral surrounding without breaking existing hydrogen bonds. The vibrational energy can transfer through the hydrogen-bonding network to water molecules that have the same vibrational frequency. We hence expect a reduced energy dissipation in amorphous material with respect to crystalline material due to the inhomogeneity in vibrational frequencies as well as the presence of specific hydrogen-bonding defect sites which can also hamper the energy transfer.

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