量子位元
物理
自旋工程
量子计算机
量子力学
自旋晶体管
磁通量子比特
自旋(空气动力学)
相位量子位
交换互动
凝聚态物理
量子
自旋极化
铁磁性
热力学
电子
作者
Simon Geyer,Bence Hetényi,Stefano Bosco,Leon C. Camenzind,Rafael S. Eggli,Andreas Fuhrer,Daniel Loss,Richard J. Warburton,Dominik M. Zumbühl,Andreas V. Kuhlmann
出处
期刊:Nature Physics
[Nature Portfolio]
日期:2024-05-06
卷期号:20 (7): 1152-1157
被引量:16
标识
DOI:10.1038/s41567-024-02481-5
摘要
Semiconductor spin qubits offer the potential to employ industrial transistor technology to produce large-scale quantum computers. Silicon hole spin qubits benefit from fast all-electrical qubit control and sweet spots to counteract charge and nuclear spin noise. However, the demonstration of a two-qubit interaction has remained an open challenge. One missing factor is an understanding of the exchange coupling in the presence of a strong spin-orbit interaction. Here we study two hole-spin qubits in a silicon fin field-effect transistor, the workhorse device of today's semiconductor industry. We demonstrate electrical tunability of the exchange splitting from above 500 MHz to close-to-off and perform a conditional spin-flip in 24 ns. The exchange is anisotropic because of the spin-orbit interaction. Upon tunnelling from one quantum dot to the other, the spin is rotated by almost 180 degrees. The exchange Hamiltonian no longer has the Heisenberg form and can be engineered such that it enables two-qubit controlled rotation gates without a trade-off between speed and fidelity. This ideal behaviour applies over a wide range of magnetic field orientations, rendering the concept robust with respect to variations from qubit to qubit, indicating that it is a suitable approach for realizing a large-scale quantum computer.
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