Department of Electrical and Computer Engineering, Shinshu University, Wakasato 4-17-1, Nagano 380-8553, Japan.
School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen, Guangdong 518172, China.
Phys Rev Lett. 2023 Mar 10;130(10):106701. doi: 10.1103/PhysRevLett.130.106701.
We propose a skyrmion-based universal quantum computer. Skyrmions have the helicity degree of freedom in frustrated magnets, where twofold degenerated Bloch-type skyrmions are energetically favored by the magnetic dipole-dipole interaction. We construct a qubit based on them. A skyrmion must become a quantum-mechanical object when its size is of the order of nanometers. It is shown that the universal quantum computation is possible based on nanoscale skyrmions in a magnetic bilayer system. The one-qubit quantum gates are materialized by controlling the electric field and the spin current. The two-qubit gate is materialized with the use of the Ising-type exchange coupling. The merit of the present mechanism is that external magnetic field is not necessary. Our results may open a possible way toward universal quantum computation based on nanoscale topological spin textures.
我们提出了一种基于斯格明子的通用量子计算机。在受挫磁体中,斯格明子具有螺旋度自由度,其中双简并布洛赫型斯格明子在磁偶极力的作用下是能量有利的。我们基于它们构建了一个量子比特。当斯格明子的尺寸达到纳米量级时,它必须成为一个量子力学物体。结果表明,基于双层磁体系统中的纳米级斯格明子,可以实现通用量子计算。通过控制电场和自旋电流,可以实现单量子比特量子门。利用伊辛型交换耦合可以实现双量子比特门。本机制的优点是不需要外磁场。我们的结果可能为基于纳米尺度拓扑自旋结构的通用量子计算开辟了一条可能的途径。