同时测量非通勤可观的量子动力学
Shay Hacohen-Gourgy1,2, Leigh S Martin1,2,3, Emmanuel Flurin1,2
1Quantum Nanoelectronics Laboratory, Department of Physics, University of California, Berkeley, California 94720, USA.
Nature
|October 6, 2016
概括
海森伯格的不确定性原理在对非通行可观的同时测量过程中控制量子态动力学. 这导致了新的扩散动态,并使量子状态断层扫描无需交替测量.
科学领域:
- 量子力学
- 量子信息科学
背景情况:
- 量子测量通常会导致波函数崩,从而产生精确的结果.
- 海森伯格的不确定性原理本质上限制了对位置和动量等非通行观测的同时精度.
研究的目的:
- 在非通行可观测的同时测量下探索量子状态的动态.
- 通过实验研究不确定性原则对测量引起的干扰的限制.
主要方法:
- 两个连续量子非破坏探测器同时应用于超导量子位.
- 通过将量子位连接到多个空洞模式来实现多个读取通道.
- 使用"单一方位"测量技术通过相对阶段控制测量可观测量.
主要成果:
- 证明不确定性原则规定了测量引起的干扰的下限.
- 观察到从波函数崩到持续扩散 (局部化和同位素) 的量子状态动态的转变,因为测量从通勤转向非通勤可观.
- 通过时间顺序测量记录成功提取了两种非通勤可观的信息,使量子状态断层扫描无需交替测量.
结论:
- 这项研究揭示了在同时进行非通行测量时,由不确定性原理支配的新量子态动态.
- 开发的技术为量子控制提供了新的能力,包括状态净化,自适应测量和错误校正.
- 通过非通勤自由度与环境相互作用的系统研究量子基础.
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