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Miniature Butler Matrix Design Using Glass-Based Thin-Film Integrated Passive Device Technology for 2.5-GHz Applications

机译:使用基于玻璃的薄膜集成无源器件技术的微型Butler矩阵设计,用于2.5 GHz应用

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摘要

In this paper, miniature branch-line coupler and Butler matrix designs for 2.5-GHz applications are proposed using the glass-based thin-film integrated passive device (TF-IPD) technology. The size reduction is achieved by replacing the quarter-wavelength transmission lines in a conventional branch-line coupler with the bridged-T coil. In this way, the circuit size can be largely reduced without sacrificing the operation bandwidth. The proposed miniature branch-line coupler is then applied to the design of a 4 $,times,$4 Butler matrix centered at 2.5 GHz using the glass-based TF-IPD technology. The measured results show a bandwidth of 2.4–2.6 GHz for better than 13-dB return loss with a maximal dissipation of 4 dB, amplitude imbalance within 1.1 dB, and phase imbalance less than 13$^{circ}$ . Notably, the proposed Butler matrix occupies a chip area of 3.13 mm$,times,$3.3 mm, which is only about 0.026 $lambda_{ 0} times 0.027 lambda_{ 0}$ at 2.5 GHz.
机译:本文使用基于玻璃的薄膜集成无源器件(TF-IPD)技术,提出了适用于2.5 GHz应用的微型支线耦合器和巴特勒矩阵设计。通过将传统的分支线耦合器中的四分之一波长传输线替换为桥式T线圈,可以实现尺寸的减小。这样,可以在不牺牲操作带宽的情况下大大减小电路尺寸。然后,将拟议的微型分支线耦合器应用于设计以中心为中心的4 $,times,$ 4 Butler矩阵。使用基于玻璃的TF-IPD技术的2.5 GHz。测量结果显示,带宽为2.4–2.6 GHz,具有优于13 dB的回波损耗,最大损耗为4 dB,幅度失衡在1.1 dB以内,相位失衡小于13 $ ^ {circ} $ 。值得注意的是,所提出的巴特勒矩阵的芯片面积为3.13毫米。<公式> => 3.3毫米,仅约0.026毫米在2.5 GHz频率下, $ lambda_ {0}乘以0.027 lambda_ {0} $

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