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Synchronized conductivity modulation to realize broadband lossless magnetic-free non-reciprocity

机译:同步电导率调制实现宽带无损无磁互逆

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摘要

Recent research has explored the spatiotemporal modulation of permittivity to break Lorentz reciprocity in a manner compatible with integrated-circuit fabrication. However, permittivity modulation is inherently weak and accompanied by loss due to carrier injection, particularly at higher frequencies, resulting in large insertion loss, size, and/or narrow operation bandwidths. Here, we show that the presence of absorption in an integrated electronic circuit may be counter-intuitively used to our advantage to realize a new generation of magnet-free non-reciprocal components. We exploit the fact that conductivity in semiconductors provides a modulation index several orders of magnitude larger than permittivity. While directly associated with loss in static systems, we show that properly synchronized conductivity modulation enables loss-free, compact and extremely broadband non-reciprocity. We apply these concepts to obtain a wide range of responses, from isolation to gyration and circulation, and verify our findings by realizing a millimeter-wave (25 GHz) circulator fully integrated in complementary metal-oxide-semiconductor technology.
机译:最近的研究已经探索了介电常数的时空调制,以与集成电路制造兼容的方式打破了洛伦兹互易性。然而,介电常数调制固有地较弱,并且由于载波注入而伴随着损耗,特别是在较高的频率下,从而导致较大的插入损耗,尺寸和/或较窄的操作带宽。在这里,我们表明,集成电路中吸收的存在可能会反直觉地用于我们的优势,以实现新一代的无磁不可逆组件。我们利用半导体中的电导率提供的调制指数比介电常数大几个数量级的事实。虽然与静态系统中的损耗直接相关,但我们表明,适当同步的电导率调制可实现无损耗,紧凑且极宽的宽带互惠性。我们应用这些概念来获得从隔离到回转和循环的广泛响应,并通过实现完全集成在互补金属氧化物半导体技术中的毫米波(25 GHz)循环器来验证我们的发现。

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