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Quantum decoherence of a single ion qubit induced by photon-number fluctuations

机译:光子数波动引起的单离子QUB Qual qubit的量子消失

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Quantum measurement is based on the interaction between a quantum object and a meter entangled with the object. While information about the object is being extracted by the interaction, the quantum fluctuations of the object are imprinted onto the meter as a form of decoherence. Here, we study the nondestructive reconstruction of the photon number in an optical cavity, harnessing the quantum decoherence. We consider a single ~(40)Ca~+ ion that is dispersively coupled to a high-finesse cavity. While the cavity is populated with weak coherent states, Ramsey spectroscopy is performed on the qubit transition to identify the shift and the broadening of the atomic energy levels. The shift is due to the ac Stark effect induced by cavity photons, and the broadening is attributed to the photon-number fluctuations of the cavity field. We show theoretically that photon-number distributions of the intracavity fields can be reconstructed in a basis of up to eleven Fock states with the maximum likelihood method. Furthermore, we show that the photon number of each polarization component can also be reconstructed, taking advantage of the rich energy-level structure of the ion. In combination with currently available mirror-coating technology, quantum non-demolition (QND) measurement of cavity photons will make it possible to create and manipulate nonclassical cavity-field states in the optical domain.
机译:量子测量基于量子物体和仪表之间的相互作用基于与对象缠结的仪表。虽然通过交互提取有关对象的信息,但是物体的量子波动被印在仪表上,作为一种脱干的形式。这里,我们研究光学腔中的光子数的非破坏性重建,利用量子脱机。我们考虑一种单〜(40)Ca〜+离子,其分散地耦合到高度精细腔。虽然腔体被弱相干状态填充,但在量子位过渡时执行RAMSEY光谱,以识别转变和宽度的原子能水平。换档是由于腔光子引起的交流齿条效应,并且宽度归因于腔场的光子数波动。理论上,我们在理论上证明了腔内场的光子数分布可以基于最大似然方法的最大偏向的11个北部状态来重建。此外,我们表明,也可以重建每个偏振分量的光子数,从而利用离子的富能量水平结构。与目前可用的镜涂技术相结合,腔光子的量子非拆卸(QND)测量将使可以在光学域中创建和操纵非分化腔场状态。

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