论文标题
通过电子自旋量子置量核合奏目睹量子相关性
Witnessing quantum correlations in a nuclear ensemble via an electron spin qubit
论文作者
论文摘要
连贯的旋转合奏与代理量子标式连接在一起,是一个有吸引力的平台,可以创建多体相干并探究集体激发的制度。半导体量子点中的电子自旋量子置量置位可以充当与由多个高自旋原子种类组成的量子点中密集的核自旋整体的接口。较早的工作表明,电子可以通过其平均场相互作用与总核极化(即其平均值和方差)的统计数据中传递其核环境的性质。在这里,我们展示了一种探测核合一体旋转状态的方法,该方法利用了其对集体旋转激发的反应,从而使物种选择性重建超出了平均场。对于可访问的光学均值范围的范围,重建的人群表明该合奏处于非热,相关的核状态。重建的物种分辨极化的总和超过了经典的预测三倍。这种鲜明的偏差是从一个包含粒子间相干的旋转合奏开始的,并作为纠缠见证人,证实了黑暗多体状态的形成。
A coherent ensemble of spins interfaced with a proxy qubit is an attractive platform to create many-body coherences and probe the regime of collective excitations. An electron spin qubit in a semiconductor quantum dot can act as such an interface to the dense nuclear spin ensemble within the quantum dot consisting of multiple high-spin atomic species. Earlier work has shown that the electron can relay properties of its nuclear environment through the statistics of its mean-field interaction with the total nuclear polarisation, namely its mean and variance. Here, we demonstrate a method to probe the spin state of a nuclear ensemble that exploits its response to collective spin excitations, enabling a species-selective reconstruction beyond the mean field. For the accessible range of optically prepared mean fields, the reconstructed populations indicate that the ensemble is in a non-thermal, correlated nuclear state. The sum over reconstructed species-resolved polarisations exceeds the classical prediction threefold. This stark deviation follows from a spin ensemble that contains inter-particle coherences, and serves as an entanglement witness that confirms the formation of a dark many-body state.