He Juxing, Li Honglang, Tian Yahui, Zhang Qiaozhen, Lu Zixiao, Lan Jianyu
National Center for Nanoscience and Technology, Beijing 100190, China.
University of Chinese Academy of Sciences, Beijing 100190, China.
Micromachines (Basel). 2021 Aug 21;12(8):994. doi: 10.3390/mi12080994.
Phononic crystals with phononic band gaps varying in different parameters represent a promising structure for sensing. Equipping microchannel sensors with phononic crystals has also become a great area of interest in research. For building a microchannels system compatible with conventional micro-electro-mechanical system (MEMS) technology, SU-8 is an optimal choice, because it has been used in both fields for a long time. However, its mechanical properties are greatly affected by temperature, as this affects the phononic bands of the phononic crystal. With this in mind, the viscous dissipation in microchannels of flowing liquid is required for application. To solve the problem of viscous dissipation, this article proposes a simulation model that considers the heat transfer between fluid and microchannel and analyzes the frequency domain properties of phononic crystals. The results show that when the channel length reaches 1 mm, the frequency shift caused by viscous dissipation will significantly affect detecting accuracy. Furthermore, the temperature gradient also introduces some weak passbands into the band gap. This article proves that viscous dissipation does influence the band gap of phononic crystal chemical sensors and highlights the necessity of temperature compensation in calibration. This work may promote the application of microchannel chemical sensors in the future.
具有在不同参数下变化的声子带隙的声子晶体是一种很有前景的传感结构。为微通道传感器配备声子晶体也已成为一个备受关注的研究领域。对于构建与传统微机电系统(MEMS)技术兼容的微通道系统,SU-8是一个最佳选择,因为它在这两个领域都已被长期使用。然而,其机械性能会受到温度的极大影响,因为这会影响声子晶体的声子带。考虑到这一点,流动液体微通道中的粘性耗散对于应用来说是必要的。为了解决粘性耗散问题,本文提出了一个考虑流体与微通道之间热传递的模拟模型,并分析了声子晶体的频域特性。结果表明,当通道长度达到1毫米时,由粘性耗散引起的频率偏移将显著影响检测精度。此外,温度梯度也会在带隙中引入一些弱通带。本文证明了粘性耗散确实会影响声子晶体化学传感器的带隙,并强调了校准中温度补偿的必要性。这项工作可能会在未来推动微通道化学传感器的应用。