论文标题
半导体量子点自旋链中的绝热量子状态转移
Adiabatic quantum state transfer in a semiconductor quantum-dot spin chain
论文作者
论文摘要
半导体量子点旋转量子位是量子计算的有前途的平台,因为它们是可扩展的,并且具有较长的连贯性时间。但是,为了实现这一全部潜力,量子误差校正和有效算法需要高保真信息传输机制。在这里,我们提供了在半导体量子点电子旋转链中绝热量子状态转移的证据。通过绝热修改交换耦合,我们在小于127 ns的遥远电子之间将单旋和两旋态转移。我们还表明,可以将这种方法级联以长期自旋链中的自旋态转移。基于模拟,我们估计,对于此处研究的实验参数,正确传递单旋植物和两旋式单线状态的概率可能超过0.95。将来,将需要状态和过程断层扫描来验证超过经典界限的任意单量子态的转移。绝热量子状态转移对噪声和脉搏定时误差是可靠的。此方法可用于用于基于门的量子计算的大型自旋量阵列中的初始化,状态分布和读数。它还打开了半导体量子点旋转量子台中通用绝热量子计算的可能性。
Semiconductor quantum-dot spin qubits are a promising platform for quantum computation, because they are scalable and possess long coherence times. In order to realize this full potential, however, high-fidelity information transfer mechanisms are required for quantum error correction and efficient algorithms. Here, we present evidence of adiabatic quantum-state transfer in a chain of semiconductor quantum-dot electron spins. By adiabatically modifying exchange couplings, we transfer single- and two-spin states between distant electrons in less than 127 ns. We also show that this method can be cascaded for spin-state transfer in long spin chains. Based on simulations, we estimate that the probability to correctly transfer single-spin eigenstates and two-spin singlet states can exceed 0.95 for the experimental parameters studied here. In the future, state and process tomography will be required to verify the transfer of arbitrary single qubit states with a fidelity exceeding the classical bound. Adiabatic quantum-state transfer is robust to noise and pulse-timing errors. This method will be useful for initialization, state distribution, and readout in large spin-qubit arrays for gate-based quantum computing. It also opens up the possibility of universal adiabatic quantum computing in semiconductor quantum-dot spin qubits.