Zhu Bao-Hua, Kim Nam-Young, Wang Zhi-Ji, Kim Eun-Seong
RFIC Center, Kwangwoon University, 447-1 Wolgye-Dong, Nowon-Ku, Seoul 139-701, Korea.
Materials (Basel). 2019 Sep 19;12(18):3045. doi: 10.3390/ma12183045.
In this work, a miniaturized bandpass filter (BPF) constructed of two spiral intertwined inductors and a central capacitor, with several interdigital structures, was designed and fabricated using integrated passive device (IPD) technology on a GaAs wafer. Five air-bridge structures were introduced to enhance the mutual inductive effect and form the differential geometry of the outer inductors. In addition, the design of the differential inductor combined with the centrally embedded capacitor results in a compact construction with the overall size of 0.037 × 0.019 (1537.7 × 800 μm) where is the wavelength of the central frequency. For the accuracy evolution of the equivalent circuit, the frequency-dependent lumped elements of the proposed BPF was analyzed and modeled through the segment method, mutual inductance approach, and simulated scattering parameters (S-parameters). Afterward, the BPF was fabricated using GaAs-based IPD technology and a 16-step manufacture flow was accounted for in detail. Finally, the fabricated BPF was wire-bonded with Au wires and packaged onto a printed circuit board for radio-frequency performance measurements. The measured results indicate that the implemented BPF possesses a center frequency operating at 2 GHz with the insertion losses of 0.38 dB and the return losses of 40 dB, respectively, and an ultrawide passband was achieved with a 3-dB fraction bandwidth of 72.53%, as well. In addition, a transmission zero is located at 5.32 GHz. Moreover, the variation of the resonant frequency with different inductor turns and metal thicknesses was analyzed through the simulation results, demonstrating good controllability of the proposed BPF.
在这项工作中,使用集成无源器件(IPD)技术在砷化镓晶圆上设计并制造了一种由两个螺旋缠绕电感和一个中心电容构成的小型带通滤波器(BPF),该滤波器带有多个叉指结构。引入了五个空气桥结构以增强互感效应并形成外部电感的差分几何形状。此外,差分电感与中心嵌入式电容的设计使得结构紧凑,整体尺寸为0.037×0.019(1537.7×800μm),其中λ是中心频率的波长。为了等效电路的精度优化,通过分段法、互感方法以及模拟散射参数(S参数)对所提出的BPF的频率相关集总元件进行了分析和建模。之后,使用基于砷化镓的IPD技术制造了BPF,并详细说明了16步制造流程。最后,将制造好的BPF用金线进行引线键合,并封装到印刷电路板上进行射频性能测量。测量结果表明,所实现的BPF中心频率工作在2GHz,插入损耗为0.38dB,回波损耗分别为40dB,并且还实现了3dB分数带宽为72.53%的超宽带通。此外,传输零点位于5.32GHz。而且,通过仿真结果分析了谐振频率随不同电感匝数和金属厚度的变化,证明了所提出的BPF具有良好的可控性。