Chowdhury Nazimul Mowla, Hakim Mohammad Lutful, Alam Touhidul, Maash Abdulwadoud A, SinghSingh Mandeep Jit, Soliman Mohamed S, Islam Mohammad Tariqul, Islam Md Shabiul
Department of Electronic and Telecommunication Engineering, International Islamic University Chittagong, Kumira, Bangladesh.
Department of Electrical, Electronic and Systems Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, 43600, Bangi, Malaysia.
Sci Rep. 2025 Jul 1;15(1):21230. doi: 10.1038/s41598-025-00040-3.
Metamaterial sensors are gaining popularity for their numerous application possibilities, including sensing, imaging, energy harvesting, explosive detection, military radar, wavelength detection, and other sensor applications. This work presents a simple interconnected four-split rectangular ring resonator metamaterial (MTM) for microwave sensing applications. The novelty of the proposed MTM is reusability since it can detect sensitivity utilizing both of its sides in two distinct methods. It has an electrical size of approximately 0.178 λ × 0.178 λ. The MTM unit cell demonstrates transmission resonance with Mu Negative (MNG) metamaterial properties for both the C and X-band. It has an excellent effective medium ratio (EMR) of 5.57 at 6.7 GHz and 4.33 at 8.6 GHz, which indicates its compactness and efficacy. Two sensing methods are investigated to determine which is more effective for sensitivity measurement and its potential in microwave sensing applications. The resonance frequency fluctuates based on the permittivity and refractive index changes. The MTM unit cell amplifies this resonance with the E-field intensity. The MTM demonstrates flexibility features for various bending degrees. The measured findings demonstrate that the proposed metamaterial has excellent sensitivity, high Q-factor (Q-factor > 10), and FoM for its first method. The sensitivity, Q-factor, FoM, flexibility and good EMR results suggested that the proposed MTM is a viable solution for microwave sensing applications.
超材料传感器因其众多的应用可能性而越来越受欢迎,包括传感、成像、能量收集、爆炸物检测、军事雷达、波长检测以及其他传感器应用。这项工作提出了一种用于微波传感应用的简单互连四分裂矩形环谐振器超材料(MTM)。所提出的MTM的新颖之处在于其可重复使用性,因为它可以通过两种不同的方法利用其两侧来检测灵敏度。它的电尺寸约为0.178λ×0.178λ。MTM单元在C波段和X波段均表现出具有负磁导率(MNG)超材料特性的传输谐振。它在6.7GHz时具有5.57的优异有效介质比(EMR),在8.6GHz时具有4.33,这表明了它的紧凑性和有效性。研究了两种传感方法,以确定哪种方法在灵敏度测量及其在微波传感应用中的潜力方面更有效。谐振频率会根据介电常数和折射率的变化而波动。MTM单元通过电场强度放大这种谐振。MTM展示了针对各种弯曲程度的灵活性特征。测量结果表明,所提出的超材料在其第一种方法中具有优异的灵敏度、高Q因子(Q因子>10)和品质因数。灵敏度、Q因子、品质因数、灵活性和良好的EMR结果表明,所提出的MTM是微波传感应用的可行解决方案。