论文标题
超快速量子计算的全光相敏感检测
All-optical phase-sensitive detection for ultra-fast quantum computation
论文作者
论文摘要
相位敏感的检测是基于测量的连续变量量子信息处理的基本投影测量。常规电相敏感探测器的带宽最大为几吉赫兹,这将限制量子计算的速度。从理论上讲,它通过使用光学参数放大器(OPA)的全光相位敏感检测来实现Terahertz-rorder检测带宽。但是,有实验性的障碍可以实现连续波的大参数增益,这是在量子计算中使用所必需的。在这里,我们采用了一个光纤耦合的$χ^{(2)} $ OPA,由定期螺旋的Linbo $ {} _ {3} $ WaveGuide制成,具有很高的耐用性,以实现强烈的连续波动泵灯。因此,我们设法检测到宽带连续挤压光的正交幅度。使用光谱分析仪,测量3 dB的挤压挤压率最高3 thz。此外,我们证明了宽带连续波挤压光的相锁定和分散补偿,因此挤压光的相位保持在1 THz之上。超宽带连续波检测方法和分散补偿将有助于以超级时钟频率实现全光量子计算。
Phase-sensitive detection is the essential projective measurement for measurement-based continuous-variable quantum information processing. The bandwidth of conventional electrical phase-sensitive detectors is up to several gigahertz, which would limit the speed of quantum computation. It is theoretically proposed to realize terahertz-order detection bandwidth by using all-optical phase-sensitive detection with an optical parametric amplifier (OPA). However, there have been experimental obstacles to achieve large parametric gain for continuous waves, which is required for use in quantum computation. Here, we adopt a fiber-coupled $χ^{(2)}$ OPA made of a periodically poled LiNbO${}_{3}$ waveguide with high durability for intense continuous-wave pump light. Thanks to that, we manage to detect quadrature amplitudes of broadband continuous-wave squeezed light. 3 dB of squeezing is measured up to 3 THz of sideband frequency with an optical spectrum analyzer. Furthermore, we demonstrate the phase-locking and dispersion compensation of the broadband continuous-wave squeezed light, so that the phase of the squeezed light is maintained over 1 THz. The ultra-broadband continuous-wave detection method and dispersion compensation would help to realize all-optical quantum computation with over-THz clock frequency.