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Terahertz magnonics: Feasibility of using terahertz magnons for information processing

机译:Terahertz Magnonics:使用Terahertz Magnons进行信息处理的可行性

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An immediate need of information technology is designing fast, small and low-loss devices. One of the ways to design such devices is using the bosonic quasiparticles, such as magnons, for information transfer/processing. This is the main idea behind the field of magnonics. When a magnon propagates through a magnetic medium, no electrical charge transport is involved and therefore no energy losses, creating Joule heating, occur. This is the most important advantage of using magnons for information transfer. Moreover the mutual conversion between magnons and the other carriers e.g. electrons, photons and plasmons shall open new opportunities to realize tunable multifunctional devices. Magnons cover a very wide range of frequency, from sub-gigahertz up to a few hundreds of terahertz. The magnon frequency has an important impact on the performance of magnon-based devices (the larger the excitation frequency, the faster the magnons). This means that the use of high-frequency (terahertz) magnons would provide a great opportunity for the design of ultrafast devices. However, up to now the focus in magnonics has been on the low-frequency gigahertz magnons. Here we discuss the feasibility of using terahertz magnons for application in magnonic devices. We shall bring the concept of terahertz magnonics into discussion. We discuss how the recently discovered phenomena in the field of terahertz magnons may inspire ideas for designing new magnonic devices. We further introduce methods to tune the fundamental properties of terahertz magnons, e.g. their eigenfrequency and lifetime.
机译:信息技术的直接需求正在设计快速,小而低损耗的设备。设计这种设备的方法之一是使用诸如粗龙的Bosonic Quasiply,用于信息传输/处理。这是千兆菌领域背后的主要观点。当MAGN通过磁性介质传播时,不会涉及电荷传输,因此发生产生焦耳加热的能量损失。这是使用Magnons进行信息传输的最重要优势。此外,隆起和其他载体之间的相互转换例如。电子,光子和等离子体应打开新的机会来实现可调式多功能设备。 Magnons涵盖了非常广泛的频率,从次千兆赫兹高达几百的太赫兹。 MAGNON频率对基于MAGNON的器件的性能(激发频率越大,摩尔速度越快)具有重要影响。这意味着使用高频(Terahertz)Magnons将为UltraFast设备的设计提供一个很好的机会。然而,到目前为止,千禧年的焦点一直处于低频千兆赫兹·莫斯。在这里,我们讨论了使用太赫兹扬电厂在agagnic装置中应用的可行性。我们将把Terahertz Magnonics的概念讨论。我们讨论Terahertz Magnons领域最近发现的现象可以激发设计新的千种装置的想法。我们进一步介绍了曲调太赫兹·莫斯龙的基本属性的方法,例如,他们的特征频繁和终身。

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