论文标题

具有自旋光子界面的能节能量子非解析测量

Energy-efficient quantum non-demolition measurement with a spin-photon interface

论文作者

Maffei, Maria, Goes, Bruno O., Wein, Stephen C., Jordan, Andrew N., Lanco, Loïc, Auffèves, Alexia

论文摘要

自旋光子接口(SPI)是量子技术的关键设备,旨在在自旋Qubits之间连贯地传递量子信息,并在偏振光的传播脉冲之间传播。我们研究了SPI对旋转状态的量子非拆卸(QND)测量的潜力。在被SPI初始化和散射后,光脉冲的状态取决于旋转状态。因此,它扮演着指针状态的角色,在光的时间和两极分化自由度中编码的信息。在自旋光动力学的完全汉密尔顿分辨率的基础上,我们表明零和单光子状态的量子叠加优于光的相干脉冲,从而产生指针状态,而指针态则可以通过相同的光子预算区分。当通过在光脉冲上进行投射测量,在经典水平提取有关自旋状态的信息时,量子脉冲提供的能量优势比相干脉冲提供的优势保持不变。所提出的方案与最先进的半导体设备状态下的瑕疵非常强大。

Spin-photon interfaces (SPIs) are key devices of quantum technologies, aimed at coherently transferring quantum information between spin qubits and propagating pulses of polarized light. We study the potential of a SPI for quantum non demolition (QND) measurements of a spin state. After being initialized and scattered by the SPI, the state of a light pulse depends on the spin state. It thus plays the role of a pointer state, information being encoded in the light's temporal and polarization degrees of freedom. Building on the fully Hamiltonian resolution of the spin-light dynamics, we show that quantum superpositions of zero and single photon states outperform coherent pulses of light, producing pointer states which are more distinguishable with the same photon budget. The energetic advantage provided by quantum pulses over coherent ones is maintained when information on the spin state is extracted at the classical level by performing projective measurements on the light pulses. The proposed schemes are robust against imperfections in state of the art semi-conducting devices.

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