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分析物浓度在蒸发液滴中加速反应速率方面的作用。

The role of analyte concentration in accelerated reaction rates in evaporating droplets.

作者信息

Chen Casey J, Williams Evan R

机构信息

Department of Chemistry, University of California Berkeley CA 94720 USA

出版信息

Chem Sci. 2023 Apr 12;14(18):4704-4713. doi: 10.1039/d3sc00259d. eCollection 2023 May 10.

Abstract

Accelerated reactions in microdroplets have been reported for a wide range of reactions with some microdroplet reactions occurring over a million times faster than the same reaction in bulk solution. Unique chemistry at the air-water interface has been implicated as a primary factor for accelerated reaction rates, but the role of analyte concentration in evaporating droplets has not been as well studied. Here, theta-glass electrospray emitters and mass spectrometry are used to rapidly mix two solutions on the low to sub-microsecond time scale and produce aqueous nanodrops with different sizes and lifetimes. We demonstrate that for a simple bimolecular reaction where surface chemistry does not appear to play a role, reaction rate acceleration factors are between 10 and 10 for different initial solution concentrations, and these values do not depend on nanodrop size. A rate acceleration factor of 10 is among the highest reported and can be attributed to concentration of analyte molecules, initially far apart in dilute solution, but brought into close proximity in the nanodrop through evaporation of solvent from the nanodrops prior to ion formation. These data indicate that analyte concentration phenomenon is a significant factor in reaction acceleration where droplet volume throughout the experiment is not carefully controlled.

摘要

据报道,微滴中的反应会加速,涉及范围广泛的各类反应,有些微滴反应的发生速度比在本体溶液中进行的相同反应快上百万倍。气-水界面处独特的化学性质被认为是反应速率加快的主要因素,但尚未对蒸发液滴中分析物浓度的作用进行深入研究。在此,采用θ-玻璃电喷雾发射器和质谱仪在低至亚微秒的时间尺度上快速混合两种溶液,并产生具有不同尺寸和寿命的水性纳米液滴。我们证明,对于一个表面化学似乎不起作用的简单双分子反应,不同初始溶液浓度下的反应速率加速因子在10到10之间,并且这些值不依赖于纳米液滴的大小。10的速率加速因子是报道的最高值之一,这可归因于分析物分子的浓度,在稀溶液中这些分子最初相距甚远,但在离子形成之前,通过纳米液滴中溶剂的蒸发,它们在纳米液滴中被拉近到彼此靠近的位置。这些数据表明,在整个实验过程中液滴体积未得到仔细控制的情况下,分析物浓度现象是反应加速中的一个重要因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d077/10171075/671ced46d216/d3sc00259d-f1.jpg

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