JILA, National Institute of Standards and Technology and the University of Colorado, Boulder, CO 80309, USA.
Science. 2013 Nov 8;342(6159):710-3. doi: 10.1126/science.1244563. Epub 2013 Oct 3.
When two physical systems share the quantum property of entanglement, measurements of one system appear to determine the state of the other. This peculiar property is used in optical, atomic, and electrical systems in an effort to exceed classical bounds when processing information. We extended the domain of this quantum resource by entangling the motion of a macroscopic mechanical oscillator with a propagating electrical signal and by storing one half of the entangled state in the mechanical oscillator. This result demonstrates an essential requirement for using compact and low-loss micromechanical oscillators in a quantum processor, can be extended to sense forces beyond the standard quantum limit, and may enable tests of quantum theory.
当两个物理系统共享纠缠的量子特性时,对一个系统的测量似乎决定了另一个系统的状态。这种奇特的性质被用于光学、原子和电气系统,以努力在处理信息时超过经典界限。我们通过将宏观机械振荡器的运动与传播的电信号纠缠,并将纠缠态的一半存储在机械振荡器中,扩展了这种量子资源的应用范围。该结果展示了在量子处理器中使用紧凑且低损耗微机械振荡器的基本要求,可以扩展到感知超出标准量子极限的力,并可能实现对量子理论的检验。