Investigation of the nonlinearity of PIN diode on frequency reconfigurable patch antenna

Umar Musa, Shaharil Mohd Shah, Huda A Majid, Ismail Ahmat Mahadi, Kamal A Rahim Mohamad, Muhammad Sani Yahya, Zuhairiah Zainal Abidin
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Abstract

Abstract In this work, the nonlinearity of PIN diode on frequency reconfigurable patch antenna is investigated. To perform frequency reconfiguration, the proposed design makes use of the switching capabilities of a PIN diode. The antenna has a dimension of 41 × 44 mm 2 corresponding to 0.33 λ 0 × 0.35 λ 0 , where λ 0 represents the wavelength in free space at 2.4 GHz fabricated on Rogers Duroid RO3003 TM material. In the OFF state of the PIN diode, a single resonance (ISM 5.8 GHz) is achieved. However, in the ON state of the PIN diode, a dual‐resonance (ISM 5.8 GHz and 2.4 GHz) is achieved. A directional and bidirectional radiation pattern can be observed in the E ‐plane at 5.8 GHz and 2.4 GHz, respectively, and omnidirectional radiation patterns can be viewed in the H ‐plane for both 5.8 GHz and 2.4 GHz. The gain is measured to be 4.84 dBi at 2.4 GHz and 5.87 dBi at 5.8 GHz, with total efficiencies of 91.8% and 92.5% at 5.8 GHz and 2.4 GHz, respectively. Two‐tone nonlinear measurements at 2.4 GHz and 5.8 GHz are used to evaluate the PIN diode. Several third‐order intermodulation distortion products (IMD3) frequencies are observed with input powers between 0 and 20 dBm. The IMD3 at 2.4 GHz is −36.18 dBm, while at 5.8 GHz is −47.19 dBm and the third‐order input intercept point (IIP3) of +66.65 dBm is obtained at 2.4 GHz, while +22.69 dBm at 5.8 GHz. Additionally, at 2.4 GHz, the 1‐dB gain compression (P 1‐dB ) could not be identified, showing that the antenna behaves linearly within the spectrum of input power. Similarly, the P 1‐dB is detected at 14.8 dBm input power at 5.8 GHz. The proposed antenna works in the linear region up to an input power level of 15 dBm, where the received signal strength of the IMD3 is minimal, according to the measurement of the nonlinearity caused by the PIN diode. The nonlinearity results confirm that the active reconfigurable antenna designed and implemented in this work is suitable for use in the 2.4 GHz and 5.8 GHz bands for indoor and short‐range communication applications. Furthermore, the assessment of nonlinearity provides a deeper understanding of and helps mitigate the negative effects of nonlinearity on the proposed antenna. This measurement assists in refining biasing, selecting suitable linearization methods, improving the design, and evaluating performance at the system level. Ultimately, it enhances antenna performance and expands frequency reconfigurability by enabling optimization across multiple aspects.
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频率可重构贴片天线PIN二极管非线性特性研究
摘要本文研究了频率可重构贴片天线上PIN二极管的非线性特性。为了执行频率重新配置,所提出的设计利用了PIN二极管的开关能力。天线尺寸为41 × 44 mm 2,对应于0.33 λ 0 × 0.35 λ 0,其中λ 0表示在Rogers Duroid RO3003 TM材料上制作的2.4 GHz自由空间波长。在引脚二极管的OFF状态下,实现了单次谐振(ISM 5.8 GHz)。然而,在PIN二极管的ON状态下,实现了双谐振(ISM 5.8 GHz和2.4 GHz)。在E面可以分别观察到5.8 GHz和2.4 GHz的定向和双向辐射图,在H面可以观察到5.8 GHz和2.4 GHz的全向辐射图。在2.4 GHz和5.8 GHz时的增益分别为4.84 dBi和5.87 dBi,在5.8 GHz和2.4 GHz时的总效率分别为91.8%和92.5%。使用2.4 GHz和5.8 GHz的双音调非线性测量来评估PIN二极管。当输入功率在0到20 dBm之间时,可以观察到几个三阶互调失真积(IMD3)频率。2.4 GHz时IMD3为−36.18 dBm, 5.8 GHz时IMD3为−47.19 dBm, 2.4 GHz时三阶输入截距点(IIP3)为+66.65 dBm, 5.8 GHz时为+22.69 dBm。此外,在2.4 GHz时,无法识别1‐dB增益压缩(P 1‐dB),这表明天线在输入功率的频谱内表现为线性。同样,在5.8 GHz的输入功率为14.8 dBm时检测到p1‐dB。根据PIN二极管引起的非线性测量,所提出的天线工作在输入功率为15 dBm的线性区域,其中IMD3的接收信号强度最小。非线性结果证实,本工作设计和实现的有源可重构天线适用于2.4 GHz和5.8 GHz频段的室内和短距离通信应用。此外,非线性的评估提供了更深入的理解,并有助于减轻非线性对所提出的天线的负面影响。这种测量有助于改善偏置,选择合适的线性化方法,改进设计,并在系统级评估性能。最终,它可以通过多个方面的优化来增强天线性能并扩展频率可重构性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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