Zhang Xin, Li Hai-Ou, Cao Gang, Xiao Ming, Guo Guang-Can, Guo Guo-Ping
Key Laboratory of Quantum Information, CAS, University of Science and Technology of China, Hefei 230026, China.
Synergetic Innovation Center of Quantum Information & Quantum Physics, University of Science and Technology of China, Hefei 230026, China.
Natl Sci Rev. 2019 Jan;6(1):32-54. doi: 10.1093/nsr/nwy153. Epub 2018 Dec 22.
Semiconductors, a significant type of material in the information era, are becoming more and more powerful in the field of quantum information. In recent decades, semiconductor quantum computation was investigated thoroughly across the world and developed with a dramatically fast speed. The research varied from initialization, control and readout of qubits, to the architecture of fault-tolerant quantum computing. Here, we first introduce the basic ideas for quantum computing, and then discuss the developments of single- and two-qubit gate control in semiconductors. Up to now, the qubit initialization, control and readout can be realized with relatively high fidelity and a programmable two-qubit quantum processor has even been demonstrated. However, to further improve the qubit quality and scale it up, there are still some challenges to resolve such as the improvement of the readout method, material development and scalable designs. We discuss these issues and introduce the forefronts of progress. Finally, considering the positive trend of the research on semiconductor quantum devices and recent theoretical work on the applications of quantum computation, we anticipate that semiconductor quantum computation may develop fast and will have a huge impact on our lives in the near future.
半导体作为信息时代一种重要的材料类型,在量子信息领域正变得越来越强大。近几十年来,半导体量子计算在全球范围内得到了深入研究,并以极快的速度发展。研究内容涵盖了量子比特的初始化、控制和读出,以及容错量子计算的架构。在这里,我们首先介绍量子计算的基本概念,然后讨论半导体中单比特和双比特门控制的发展情况。到目前为止,量子比特的初始化、控制和读出可以以相对较高的保真度实现,甚至已经展示了可编程的双比特量子处理器。然而,为了进一步提高量子比特的质量并扩大其规模,仍有一些挑战需要解决,例如读出方法的改进、材料开发和可扩展设计。我们讨论这些问题并介绍前沿进展。最后,考虑到半导体量子器件研究的积极趋势以及近期量子计算应用的理论工作,我们预计半导体量子计算可能会快速发展,并在不久的将来对我们的生活产生巨大影响。