TY - JOUR
T1 - Generation of high-dimensional energy-time-entangled photon pairs
AU - Zhang, Da
AU - Zhang, Yiqi
AU - Li, Xinghua
AU - Zhang, Dan
AU - Cheng, Lin
AU - Li, Changbiao
AU - Zhang, Yanpeng
N1 - Publisher Copyright:
© 2017 American Physical Society.
PY - 2017/11/22
Y1 - 2017/11/22
N2 - High-dimensional entangled photon pairs have many excellent properties compared to two-dimensional entangled two-photon states, such as greater information capacity, stronger nonlocality, and higher security. Traditionally, the degree of freedom that can produce high-dimensional entanglement mainly consists of angular momentum and energy time. In this paper, we propose a type of high-dimensional energy-time-entangled qudit, which is different from the traditional model with an extended propagation path. In addition, our method mainly focuses on the generation with multiple frequency modes, while two- and three-dimensional frequency-entangled qudits are examined as examples in detail through the linear or nonlinear optical response of the medium. The generation of high-dimensional energy-time-entangled states can be verified by coincidence counts in the damped Rabi oscillation regime, where the paired Stokes-anti-Stokes wave packet is determined by the structure of resonances in the third-order nonlinearity. Finally, we extend the dimension to N in the sequential-cascade mode. Our results have potential applications in quantum communication and quantum computation.
AB - High-dimensional entangled photon pairs have many excellent properties compared to two-dimensional entangled two-photon states, such as greater information capacity, stronger nonlocality, and higher security. Traditionally, the degree of freedom that can produce high-dimensional entanglement mainly consists of angular momentum and energy time. In this paper, we propose a type of high-dimensional energy-time-entangled qudit, which is different from the traditional model with an extended propagation path. In addition, our method mainly focuses on the generation with multiple frequency modes, while two- and three-dimensional frequency-entangled qudits are examined as examples in detail through the linear or nonlinear optical response of the medium. The generation of high-dimensional energy-time-entangled states can be verified by coincidence counts in the damped Rabi oscillation regime, where the paired Stokes-anti-Stokes wave packet is determined by the structure of resonances in the third-order nonlinearity. Finally, we extend the dimension to N in the sequential-cascade mode. Our results have potential applications in quantum communication and quantum computation.
UR - https://www.scopus.com/pages/publications/85036656798
U2 - 10.1103/PhysRevA.96.053849
DO - 10.1103/PhysRevA.96.053849
M3 - 文章
AN - SCOPUS:85036656798
SN - 2469-9926
VL - 96
JO - Physical Review A
JF - Physical Review A
IS - 5
M1 - 053849
ER -