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Recipes for spin-based quantum computing

机译:基于自旋的量子计算的食谱

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Technological growth in the electronics industry has historically been measured by the number of transistors that can be crammed onto a single microchip. Unfortunately, all good things must come to an end; spectacular growth in the number of transistors on a chip requires spectacular reduction of the transistor size. For electrons in semiconductors, the laws of quantum mechanics take over at the nanometre scale, and the conventional wisdom for progress (transistor cramming) must be abandoned. This realization has stimulated extensive research on ways to exploit the spin (in addition to the orbital) degree of freedom of the electron, giving birth to the field of spintronics. Perhaps the most ambitious goal of spintronics is to realize complete control over the quantum mechanical nature of the relevant spins. This prospect has motivated a race to design and build a spintronic device capable of complete control over its quantum mechanical state, and ultimately, performing computations: a quantum computer. In this tutorial we summarize past and very recent developments which point the way to spin-based quantum computing in the solid state. After introducing a set of basic requirements for any quantum computer proposal, we offer a brief summary of some of the many theoretical proposals for solid-state quantum computers. We then focus on the Loss-DiVincenzo proposal for quantum computing with the spins of electrons confined to quantum dots. There are many obstacles to building such a quantum device. We address these, and survey recent theoretical, and then experimental progress in the field. To conclude the tutorial, we list some as-yet unrealized experiments, which would be crucial for the development of a quantum dot quantum computer.
机译:从历史上看,电子行业的技术增长是通过可塞在单个微芯片上的晶体管数量来衡量的。不幸的是,所有美好的事物都必须结束。芯片上晶体管数量的惊人增长需要晶体管尺寸的惊人减小。对于半导体中的电子,量子力学定律以纳米尺度接管,必须放弃传统的进步思想(晶体管塞满)。这种认识激发了人们对利用电子的自旋(除了轨道)自由度的方法的广泛研究,从而催生了自旋电子学领域。自旋电子学最雄心勃勃的目标也许是实现对相关自旋的量子力学性质的完全控制。这一前景促使人们开始设计和制造能够完全控制其量子力学状态并最终执行计算的自旋电子设备:量子计算机。在本教程中,我们总结了过去和最近的发展,这些发展为固态自旋量子计算指明了道路。在介绍了任何量子计算机提案的一系列基本要求之后,我们简要介绍了固态量子计算机的许多理论提案。然后,我们将重点放在针对量子计算的Loss-DiVincenzo建议中,将电子的自旋限制在量子点内。建立这样的量子装置有很多障碍。我们解决了这些问题,并调查了该领域的最新理论和实验进展。总结本教程,我们列出了一些尚未实现的实验,这对于开发量子点量子计算机至关重要。

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