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终身关联二维红外光谱揭示软约束中超冷水中的氢键结构。

Lifetime-Associated Two-Dimensional Infrared Spectroscopy Reveals the Hydrogen-Bond Structure of Supercooled Water in Soft Confinement.

机构信息

Van der Waals-Zeeman Institute, Institute of Physics, University of Amsterdam, 1098XH Amsterdam, The Netherlands.

Van 't Hoff Institute for Molecular Sciences, University of Amsterdam, Science Park 904, 1098XH Amsterdam, The Netherlands.

出版信息

J Phys Chem Lett. 2021 Jul 1;12(25):5951-5956. doi: 10.1021/acs.jpclett.1c01595. Epub 2021 Jun 22.

Abstract

We demonstrate a method to address the problem of spectral overlap in multidimensional vibrational spectroscopy and use it to investigate supercooled aqueous sorbitol solutions. The absence of crystallization in these solutions has been attributed to "soft" confinement of water in subnanometer voids in the sorbitol matrix, but the details of the hydrogen-bond structure are still largely unknown. 2D-IR spectroscopy of the OH-stretch mode is an excellent tool to investigate hydrogen bonding, but in this case it seems difficult because of the overlapping water and sorbitol contributions to the 2D-IR spectrum. Using the difference in OH-stretch lifetimes of water and sorbitol we can cleanly separate these contributions. Surprisingly, the separated 2D-IR spectra show that the hydrogen-bond disorder of soft-confined water is independent of temperature and decoupled from its orientational order. We believe the approach we use to separate overlapping 2D-IR spectra will enhance the applicability of 2D-IR spectroscopy to study multicomponent systems.

摘要

我们展示了一种解决多维振动光谱中光谱重叠问题的方法,并将其应用于研究过冷水合山梨糖醇溶液。这些溶液中没有结晶,这归因于水在山梨糖醇基质中亚纳米空隙中的“软”限制,但氢键结构的细节仍在很大程度上未知。OH 伸缩模式的 2D-IR 光谱是研究氢键的极好工具,但在这种情况下,由于水和山梨糖醇对 2D-IR 光谱的重叠贡献,似乎很难进行研究。我们可以利用水和山梨糖醇的 OH 伸缩寿命差异来清楚地分离这些贡献。令人惊讶的是,分离后的 2D-IR 光谱表明,软受限水中的氢键无序与温度无关,且与取向有序解耦。我们相信,我们用于分离重叠 2D-IR 光谱的方法将增强 2D-IR 光谱在研究多组分系统中的适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/053c/8256423/1f029db34c96/jz1c01595_0001.jpg

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