论文标题

加快与表面纳米光的双相反应

Speeding up biphasic reactions with surface nanodroplets

论文作者

Li, Zhengxin, Kiyama, Akihito, Zeng, Hongbo, Lohse, Detlef, Zhang, Xuehua

论文摘要

在小滴中划分的双相化学反应提供了优点,例如化学分析的简化程序,增强的化学反应效率和高转化率的特异性。在这项工作中,我们通过实验和理论上研究了基板表面上的酸性纳米圆形与周围散装流中的基本反应物之间的双相化学反应的速率。反应速率是通过液滴收缩来测量的,因为产物通过流量从液滴中去除。在我们的实验中,我们确定反应速率对流速和溶液浓度的依赖性。理论分析预测,液滴的寿命$τ$带有Peclet Number $ pe $的尺度和散装流量中的反应物浓度$ C_ {re,bulk} $ as $τ\ propto pe^{ - 3/3/2} c_ {re,bulk}^re,bulk}^{ - 1}^{ - 1} $,符合我们的实验结果。此外,我们发现上游表面上反应的产物可以推迟下游表面上的液滴反应,这可能是由于界面活性产物在下游的液滴上吸附。延迟时间随着流量的$ PE $的增加而减小,并且随着缩放的比例与这两个参数相同的反应速率缩放速度相同。我们的发现为在流动条件下增强液滴反应的最终目的提供了见识。

Biphasic chemical reactions compartmentalized in small droplets offer advantages, such as streamlined procedures for chemical analysis, enhanced chemical reaction efficiency and high specificity of conversion. In this work, we experimentally and theoretically investigate the rate for biphasic chemical reactions between acidic nanodroplets on a substrate surface and basic reactants in a surrounding bulk flow. The reaction rate is measured by droplet shrinkage as the product is removed from the droplets by the flow. In our experiments, we determine the dependence of the reaction rate on the flow rate and the solution concentration. The theoretical analysis predicts that the life time $τ$ of the droplets scales with Peclet number $Pe$ and the reactant concentration in the bulk flow $c_{re,bulk}$ as $τ\propto Pe^{-3/2}c_{re,bulk}^{-1}$, in good agreement with our experimental results. Furthermore, we found that the product from the reaction on an upstream surface can postpone the droplet reaction on a downstream surface, possibly due to the adsorption of interface-active products on the droplets in the downstream. The time of the delay decreases with increasing $Pe$ of the flow and also with increasing reactant concentration in the flow, following the scaling same as that of the reaction rate with these two parameters. Our findings provide insight for the ultimate aim to enhance droplet reactions under flow conditions.

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