Ullah Mohammad Habib, Islam Mohammad Tariqul, Faruque Mohammad Rashed Iqbal
Institute of Space Science (ANGKASA), National University Malaysia, Bangi, Selangor 43600, Malaysia.
Department of Electrical, Electronic and System Engineering, Faculty of Engineering and Built Environment, National University Malaysia, Bangi, Selangor 43600, Malaysia.
Materials (Basel). 2013 Nov 6;6(11):5058-5068. doi: 10.3390/ma6115058.
A new meta-surface structure (MSS) with a near-zero refractive index (NZRI) is proposed to enhance the performance of a square loop antenna array. The main challenge to improve the antenna performance is increment of the overall antenna volume that is mitigated by assimilating the planar NZRI MSS at the back of the antenna structure. The proposed NZRI MSS-loaded CPW-fed (Co-Planar Waveguide) four-element array antenna is designed on ceramic-bioplastic-ceramic sandwich substrate using high-frequency structure simulator (HFSS), a finite-element-method-based simulation tool. The gain and directivity of the antenna are significantly enhanced by incorporating the NZRI MSS with a 7 × 6 set of elements at the back of the antenna structure. Measurement results show that the maximum gains of the antenna increased from 6.21 dBi to 8.25 dBi, from 6.52 dBi to 9.05 dBi and from 10.54 dBi to 12.15 dBi in the first, second and third bands, respectively. The effect of the slot configuration in the ground plane on the reflection coefficient of the antenna was analyzed and optimized. The overall performance makes the proposed antenna appropriate for UHFFM (Ultra High Frequency Frequency Modulation) telemetry-based space applications as well as mobile satellite, microwave radiometry and radio astronomy applications.
为提高方形环形天线阵列的性能,提出了一种具有近零折射率(NZRI)的新型超表面结构(MSS)。提高天线性能的主要挑战是整体天线体积的增加,而通过在天线结构背面采用平面NZRI MSS可以缓解这一问题。所提出的加载NZRI MSS的共面波导(CPW)馈电四元阵列天线,是使用基于有限元方法的高频结构模拟器(HFSS),在陶瓷-生物塑料-陶瓷夹层基板上设计的。通过在天线结构背面采用7×6组单元的NZRI MSS,天线的增益和方向性得到显著提高。测量结果表明,在第一、第二和第三频段,天线的最大增益分别从6.21 dBi增加到8.25 dBi、从6.52 dBi增加到9.05 dBi以及从10.54 dBi增加到12.15 dBi。分析并优化了接地平面中的缝隙配置对天线反射系数的影响。整体性能使得所提出的天线适用于基于超高频调频(UHFFM)遥测的空间应用以及移动卫星、微波辐射测量和射电天文学应用。