Detection of organic vapours employing droplets having nanoparticles

M. Bhattacharjee, Viswanath Pasumarthi, Joydip Chaudhuri, A. K. Singh, H. Nemade, D. Bandyopadhyay
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引用次数: 1

Abstract

In this paper, a droplet based organic vapour detection technique is discussed. The detection was based on solutal Marangoni effect where a strong circulation of fluid was observed inside a droplet once an organic vapour source was introduced near the vicinity of the droplet surface. The reason behind the rotational motion was the surface tension gradient created on the air-droplet and vapour-droplet interfaces. Different organic vapours produced rotational motion of different magnitudes inside the droplet based on the surface tension gradient created on air-droplet and vapour-droplet interfaces. In order to electrically detect the motion, a nanoparticle laden salt solution droplet was placed in between two copper electrodes and the electrodes were further connected to a digital multimeter for measuring the electrical resistance across the droplet. It was observed that there was a change in resistance when the droplet was set in motion by introducing an organic vapour source. A ∼95% change in resistance was observed due to the flow circulation. It was also observed that the magnitude of change in resistance was different for different organic vapours. Thus, the system had the capability of being used as organic vapour sensor. A computational study was also performed in order to explain the phenomenon and to illustrate the effect of contact angle of the droplet.
利用含有纳米颗粒的液滴检测有机蒸气
本文讨论了一种基于液滴的有机蒸汽检测技术。该检测基于溶质马兰戈尼效应,一旦有机蒸汽源在液滴表面附近引入,液滴内部就会观察到强烈的流体循环。旋转运动背后的原因是在空气液滴和汽液滴界面上产生的表面张力梯度。不同的有机蒸汽在液滴内部产生了不同程度的旋转运动,这是基于在空气-液滴和蒸汽-液滴界面上产生的表面张力梯度。为了电检测运动,在两个铜电极之间放置了一个载满纳米粒子的盐溶液液滴,两个电极进一步连接到一个数字万用表,用于测量液滴的电阻。观察到,当引入有机蒸汽源使液滴运动时,电阻发生了变化。由于流动循环,观察到阻力变化约95%。还观察到,不同有机蒸汽的电阻变化幅度不同。因此,该系统具有作为有机蒸汽传感器使用的能力。为了解释这一现象并说明液滴接触角的影响,还进行了计算研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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