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Increasing the orbital angular momentum bandwidth of entangled photons

机译:纠缠光子的轨道角动量带宽的增加

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The bandwidth of any communication system, classical or quantum, is limited by the number of orthogonal states in which the information can be encoded. Quantum key distribution systems available commercially rely on the two-dimensional polarisation state of photons. Quantum computation has also been largely designed on the basis of qubits. However, a photon is endowed with other degrees of freedom, such as orbital angular momentum (OAM). OAM is an attractive basis to be used for quantum information because it is discrete and theoretically infinite-dimensional. This promises a higher information capacity per photon which can lead to more complex quantum computation protocols and more security and robustness for quantum cryptography. Entanglement of OAM naturally arises from spontaneous parametric down-conversion (SPDC). However, any practical experiment utilising the innately high-dimensional entanglement of the orbital angular momentum (OAM) state space of photons is subject to the modal capacity of the detection system. Only a finite subset of this space is accessible experimentally. Given such a constraint, we show that the number of measured, entangled OAM modes in photon pairs generated by SPDC can be increased by tuning the phase-matching conditions in the SPDC process. We achieve this by tuning the orientation angle of the nonlinear crystal generating the entangled photons.
机译:任何经典或量子通信系统的带宽都受到可以在其中编码信息的正交状态数量的限制。商业上可获得的量子密钥分配系统依赖于光子的二维偏振态。量子计算在很大程度上还基于量子位进行设计。但是,光子具有其他自由度,例如轨道角动量(OAM)。 OAM是用于量子信息的有吸引力的基础,因为它是离散的并且理论上是无穷大的。这保证了每个光子具有更高的信息容量,这可以导致更复杂的量子计算协议以及量子密码术的更高安全性和鲁棒性。 OAM的纠缠自然来自于自发的参数下转换(SPDC)。但是,任何利用光子的轨道角动量(OAM)状态空间固有的高维纠缠的实际实验都取决于检测系统的模态容量。实验只能访问此空间的有限子集。给定这样的约束,我们表明可以通过调整SPDC过程中的相位匹配条件来增加SPDC生成的光子对中被测纠缠OAM模式的数量。我们通过调整生成纠缠光子的非线性晶体的取向角来实现。

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