Almawgani Abdulkarem H M, Makhlouf Fathy Hamza, E Alfassam Haifa, M El-Sherbeeny Ahmed, Hajjiah Ali, A Elsayed Hussein, R Abukhadra Mostafa, Al Zoubi Wail, Semeda Ramadan, Ismail Fathy Moataz, A H Al-Athwary Anwar, Mehaney Ahmed
Electrical Engineering Department, College of Engineering, Najran University, 11001, Najran, Saudi Arabia.
Physics Department, Faculty of Science, Beni-Suef University, Beni-Suef, 62512, Egypt.
Sci Rep. 2024 May 27;14(1):12067. doi: 10.1038/s41598-024-62268-9.
Phononic crystals (PnCs) emerge as an innovative sensor technology, especially for high-performance sensing applications. This study strives to advance this field by developing new designs of PnC structures that exhibit stability in the face of construction imperfections and deformations, focusing on the evolution of topological PnCs (TPnCs). These designs could be promising to overcome the problem of instability involved in most of the theoretical PnC sensors when they emerge in experimental verification. In particular, the fabrication process of any design could collide with some fluctuations in controlling the size of each component. Thus, Fano resonance is introduced through a one-dimensional (1D) quasiperiodic TPnC. To the best of the author's knowledge, this study is the first to observe Fano modes in liquid cavities through 1D PnCs. Various quasiperiodic PnC designs are employed to detect the temperature of alcohols (specifically propanol) across an extensive temperature range (160-240 °C). The effects of many geometrical parameters on the sensor stability, such as material thicknesses, are studied. Numerical findings demonstrated that the designed quasiperiodic topological PnCs based on Fibonacci sequence of the second order proved superior performance. This sensing tool provides sensitivity, quality factor and figure-of-merit values of 104,533.33 Hz/°C, 223.69 and 0.5221 (/°C), respectively, through temperature detection of propanol in the range of 160-240 °C.
声子晶体(PnCs)作为一种创新的传感器技术出现,尤其适用于高性能传感应用。本研究致力于通过开发在面对结构缺陷和变形时表现出稳定性的新型PnC结构设计来推动该领域的发展,重点关注拓扑声子晶体(TPnCs)的演变。这些设计有望克服大多数理论PnC传感器在实验验证中出现的不稳定性问题。特别是,任何设计的制造过程都可能与控制每个组件尺寸时的一些波动相冲突。因此,通过一维(1D)准周期TPnC引入了法诺共振。据作者所知,本研究首次通过1D PnC在液腔中观察到法诺模式。采用各种准周期PnC设计在广泛的温度范围(160 - 240°C)内检测醇类(特别是丙醇)的温度。研究了许多几何参数对传感器稳定性的影响,如材料厚度。数值结果表明,基于二阶斐波那契序列设计的准周期拓扑PnC表现出卓越的性能。通过在160 - 240°C范围内对丙醇进行温度检测,该传感工具分别提供了104,533.33 Hz/°C、223.69和0.5221(/°C)的灵敏度、品质因数和品质因数优值。