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Microwave dielectric heating of drops in microfluidic devices

机译:微波介电加热微流控设备中的液滴

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摘要

We present a technique to locally and rapidly heat water drops in microfluidic devices with microwave dielectric heating. Water absorbs microwave power more efficiently than polymers, glass, and oils due to its permanent molecular dipole moment that has large dielectric loss at GHz frequencies. The relevant heat capacity of the system is a single thermally isolated picolitre-scale drop of water, enabling very fast thermal cycling. We demonstrate microwave dielectric heating in a microfluidic device that integrates a flow-focusing drop maker, drop splitters, and metal electrodes to locally deliver microwave power from an inexpensive, commercially available 3.0 GHz source and amplifier. The temperature change of the drops is measured by observing the temperature dependent fluorescence intensity of cadmium selenide nanocrystals suspended in the water drops. We demonstrate characteristic heating times as short as 15 ms to steady-state temperature Qhanges as large as 30 °C above the base temperature of the microfluidic device. Many common biological and chemical applications require rapid and local control of temperature and can benefit from this new technique.
机译:我们提出了一种利用微波介电加热在微流体设备中局部快速加热水滴的技术。由于其永久分子偶极矩在GHz频率下具有较大的介电损耗,因此水比聚合物,玻璃和油吸收微波功率的效率更高。系统的相关热容量是一个单独的绝热皮克级水滴,可实现非常快速的热循环。我们演示了微流体设备中的微波介电加热,该设备集成了流聚焦液滴制造器,液滴分离器和金属电极,可从便宜的市售3.0 GHz信号源和放大器本地传输微波功率。通过观察悬浮在水滴中的硒化镉纳米晶体的温度依赖性荧光强度来测量水滴的温度变化。我们展示了到稳态温度Qhanges短至15 ms的特征加热时间,该温度比微流控设备的基本温度高出30°C。许多常见的生物和化学应用都需要对温度进行快速局部控制,并且可以从这项新技术中受益。

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