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Hall Effect Gyrators and Circulators

机译:霍尔效应陀螺仪和循环器

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The electronic circulator and its close relative the gyrator are invaluable tools for noise management and signal routing in the current generation of low-temperature microwave systems for the implementation of new quantum technologies. The current implementation of these devices using the Faraday effect is satisfactory but requires a bulky structure whose physical dimension is close to the microwave wavelength employed. The Hall effect is an alternative nonreciprocal effect that can also be used to produce desired device functionality. We review earlier efforts to use an Ohmically contacted four-terminal Hall bar, explaining why this approach leads to unacceptably high device loss. We find that capacitive coupling to such a Hall conductor has much greater promise for achieving good circulator and gyrator functionality. We formulate a classical Ohm-Hall analysis for calculating the properties of such a device, and show how this classical theory simplifies remarkably in the limiting case of the Hall angle approaching 90°. In this limit, we find that either a four-terminal or a three-terminal capacitive device can give excellent circulator behavior, with device dimensions far smaller than the ac wavelength. An experiment is proposed to achieve GHz-band gyration in millimeter (and smaller) scale structures employing either semiconductor heterostructure or graphene Hall conductors. An inductively coupled scheme for realizing a Hall gyrator is also analyzed.
机译:电子循环器及其近端回转器是当前实施新量子技术的低温微波系统中用于噪声管理和信号路由的宝贵工具。这些使用法拉第效应的设备的当前实现是令人满意的,但是需要其物理尺寸接近所采用的微波波长的庞大结构。霍尔效应是另一种不可逆的效应,也可用于产生所需的设备功能。我们回顾了使用欧姆接触四端子霍尔棒的早期工作,并解释了为什么这种方法会导致不可接受的高器件损耗。我们发现,电容耦合到这种霍尔导体对于实现良好的循环器和回转器功能具有更大的希望。我们制定了经典的Ohm-Hall分析来计算此类设备的性能,并展示了在霍尔角接近90°的极限情况下,该经典理论如何显着简化。在此限制下,我们发现四端或三端电容设备可以提供出色的环行器性能,并且设备尺寸远小于交流波长。提出了一项实验,以采用半导体异质结构或石墨烯霍尔导体的毫米(或更小)尺度结构实现GHz波段回转。还分析了用于实现霍尔回转器的电感耦合方案。

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