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Metamaterial-inspired wideband biocompatible antenna for implantable applications

机译:灵感源自超材料的宽带生物兼容天线

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摘要

A compact wideband coplanar waveguide (CPW)-fed antenna is designed for body implantable applications. The proposed antenna has an electrical dimension of only 0.42nλn × 0.42nλn × 0.0072nλnat 2.3 GHz resonating frequency. Fractional bandwidth of 93.5% (1.35–3.5 GHz) is achieved with the low-profile antenna. To understand the extent of miniaturisation and bandwidth enhancement of the antenna, the characteristic modal analysis is performed. The wideband feature is achieved with the application of asymmetric complementary split-ring resonator structure through multiple mode excitations. Additional miniaturisation and impedance matching are obtained with a pair of asymmetrical arc-shaped annular ring slots within the main radiator. The substrate and radiator have been realised using silicon and gold due to their inherent property of excellent bio-compatibility with the human body. Single layer, as well as multi-layers phantom model, was used to assess the performance of the antenna. Owing to the inherent wideband feature of the designed antenna, it is able to cover the desired band efficiently even after detuning in different phantom models. The designed antenna is tested in vitro with the development of proper muscle mimicking liquid and the measured results are found to be in good agreement with the simulated ones.
机译:紧凑型宽带共面波导(CPW)馈电天线设计用于人体植入应用。提出的天线的电气尺寸仅为0.42n <斜体xmlns:mml =“ http://www.w3.org/1998/Math/MathML” xmlns:xlink =“ http://www.w3.org/1999 / xlink“>λ n×0.42n <斜体xmlns:mml =” http://www.w3.org/1998/Math/MathML“ xmlns:xlink =” http://www.w3.org / 1999 / xlink“>λ n××0.0072n <斜体xmlns:mml =” http://www.w3.org/1998/Math/MathML“ xmlns:xlink =” http://www.w3 .org / 1999 / xlink“>λnat 2.3 GHz共振频率。薄型天线可实现93.5%(1.35–3.5 GHz)的部分带宽。为了了解天线的小型化程度和带宽增强程度,进行了特征模态分析。宽带特性是通过非对称互补开口环谐振器结构通过多模激励实现的。通过在主辐射器内使用一对不对称的弧形环形圈槽可以获得额外的小型化和阻抗匹配。由于硅和金具有与人体极好的生物相容性的固有特性,因此已经使用硅和金实现了衬底和散热器。单层以及多层幻象模型用于评估天线的性能。由于所设计天线的固有宽带特性,即使在不同的幻象模型中失谐后,它也能够有效地覆盖所需的频带。所设计的天线在体外测试时会产生适当的肌肉模拟液,其测量结果与模拟结果非常吻合。

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