Schaetz T, Barrett M D, Leibfried D, Britton J, Chiaverini J, Itano W M, Jost J D, Knill E, Langer C, Wineland D J
National Institute of Standards and Technology, 325 Broadway, Boulder, CO 80305, USA.
Phys Rev Lett. 2005 Jan 14;94(1):010501. doi: 10.1103/PhysRevLett.94.010501. Epub 2005 Jan 7.
We investigate theoretically and experimentally how quantum state-detection efficiency is improved by the use of quantum information processing (QIP). Experimentally, we encode the state of one 9Be(+) ion qubit with one additional ancilla qubit. By measuring both qubits, we reduce the state-detection error in the presence of noise. The deviation from the theoretically allowed reduction is due to infidelities of the QIP operations. Applying this general scheme to more ancilla qubits suggests that error in the individual qubit measurements need not be a limit to scalable quantum computation.
我们通过理论和实验研究了如何利用量子信息处理(QIP)来提高量子态检测效率。在实验中,我们用一个额外的辅助量子比特对一个⁹Be⁺离子量子比特的状态进行编码。通过对两个量子比特进行测量,我们在存在噪声的情况下降低了状态检测误差。与理论上允许的降低值之间的偏差是由于QIP操作的非保真度造成的。将这个通用方案应用于更多的辅助量子比特表明,单个量子比特测量中的误差不一定是可扩展量子计算的限制因素。