Time-bin entangled Bell state generation and tomography on thin-film lithium niobate

IF 6.6 1区 物理与天体物理 Q1 PHYSICS, APPLIED npj Quantum Information Pub Date : 2024-12-30 DOI:10.1038/s41534-024-00925-7
Giovanni Finco, Filippo Miserocchi, Andreas Maeder, Jost Kellner, Alessandra Sabatti, Robert J. Chapman, Rachel Grange
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Abstract

Optical quantum communication technologies are making the prospect of unconditionally secure and efficient information transfer a reality. The possibility of generating and reliably detecting quantum states of light, with the further need of increasing the private data-rate is where most research efforts are focusing. The physical concept of entanglement is a solution guaranteeing the highest degree of security in device-independent schemes, yet its implementation and preservation over long communication links is hard to achieve. Lithium niobate-on-insulator has emerged as a revolutionising platform for high-speed classical telecommunication and is equally suited for quantum information applications owing to the large second-order nonlinearities that can efficiently produce entangled photon pairs. In this work, we generate maximally entangled quantum states in the time-bin basis using lithium niobate-on-insulator photonics at the fibre optics telecommunication wavelength, and reconstruct the density matrix by quantum tomography on a single photonic integrated circuit. We use on-chip periodically-poled lithium niobate as source of entangled qubits with a brightness of 242 MHz/mW and perform quantum tomography with a fidelity of 91.9 ± 1.0 %. Our results, combined with the established large electro-optic bandwidth of lithium niobate, showcase the platform as perfect candidate to realise fibre-coupled, high-speed time-bin quantum communication modules that exploit entanglement to achieve information security.

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铌酸锂薄膜的时间bin纠缠贝尔态生成与层析成像
光量子通信技术正在使无条件安全、高效的信息传输成为现实。随着私人数据速率的进一步提高,产生并可靠地探测光的量子态的可能性是大多数研究的重点。纠缠的物理概念是一种在设备无关方案中保证最高程度安全性的解决方案,但它在长通信链路上的实现和保存很难实现。绝缘体上的铌酸锂已经成为高速经典电信的革命性平台,由于可以有效地产生纠缠光子对的大二阶非线性,它同样适用于量子信息应用。在这项工作中,我们利用光纤通信波长的绝缘体上铌酸锂光子学在时间盒基础上产生最大纠缠量子态,并在单个光子集成电路上通过量子层析重建密度矩阵。我们使用片上周期性极化铌酸锂作为纠缠量子比特源,亮度为242 MHz/mW,并进行了保真度为91.9±1.0%的量子层析成像。我们的研究结果,结合铌酸锂已建立的大电光带宽,表明该平台是实现光纤耦合、高速时间bin量子通信模块的完美候选者,该模块利用纠缠来实现信息安全。
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来源期刊
npj Quantum Information
npj Quantum Information Computer Science-Computer Science (miscellaneous)
CiteScore
13.70
自引率
3.90%
发文量
130
审稿时长
29 weeks
期刊介绍: The scope of npj Quantum Information spans across all relevant disciplines, fields, approaches and levels and so considers outstanding work ranging from fundamental research to applications and technologies.
期刊最新文献
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