TY - JOUR
T1 - Dissipation driven coherent dynamics observed in Bose-Einstein condensates
AU - Tian, Ye
AU - Zhao, Yajuan
AU - Wu, Yue
AU - Ye, Jilai
AU - Mei, Shuyao
AU - Chi, Zhihao
AU - Tian, Tian
AU - Wang, Ce
AU - Shi, Zhe Yu
AU - Chen, Yu
AU - Hu, Jiazhong
AU - Zhai, Hui
AU - Chen, Wenlan
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/12
Y1 - 2025/12
N2 - We report the first experimental observation of dissipation-driven coherent quantum many-body oscillation, and this oscillation is manifested as the coherent exchange of atoms between the thermal and condensate components in a three-dimensional partially condensed Bose gas. Firstly, we observe that the dissipation leads to two different atom loss rates between the thermal and the condensate components, such that the thermal fraction increases as dissipation time increases. Therefore, this dissipation process serves as a tool to uniformly ramp up the system’s temperature without introducing extra density excitation. Subsequently, a coherent pair exchange of atoms between the thermal and the condensate components occurs, resulting in coherent oscillation of atom numbers in both components. This oscillation, permanently embedded in the atom loss process, is revealed clearly when we inset a duration of dissipation-free evolution into the entire dynamics, manifested as an oscillation of total atom number at the end. Finally, we also present a theoretical calculation to support this physical mechanism, which simultaneously includes dissipation, interaction, finite temperature, and harmonic trap effects. Our work introduces a highly controllable dissipation as a new tool to control quantum many-body dynamics.
AB - We report the first experimental observation of dissipation-driven coherent quantum many-body oscillation, and this oscillation is manifested as the coherent exchange of atoms between the thermal and condensate components in a three-dimensional partially condensed Bose gas. Firstly, we observe that the dissipation leads to two different atom loss rates between the thermal and the condensate components, such that the thermal fraction increases as dissipation time increases. Therefore, this dissipation process serves as a tool to uniformly ramp up the system’s temperature without introducing extra density excitation. Subsequently, a coherent pair exchange of atoms between the thermal and the condensate components occurs, resulting in coherent oscillation of atom numbers in both components. This oscillation, permanently embedded in the atom loss process, is revealed clearly when we inset a duration of dissipation-free evolution into the entire dynamics, manifested as an oscillation of total atom number at the end. Finally, we also present a theoretical calculation to support this physical mechanism, which simultaneously includes dissipation, interaction, finite temperature, and harmonic trap effects. Our work introduces a highly controllable dissipation as a new tool to control quantum many-body dynamics.
KW - Bose-Einstein Condensate
KW - Coherent Oscillation
KW - Dissipation
KW - Quantum Many-Body Dynamics
UR - https://www.scopus.com/pages/publications/105025474055
U2 - 10.1007/s44214-025-00097-1
DO - 10.1007/s44214-025-00097-1
M3 - 文章
AN - SCOPUS:105025474055
SN - 2731-6106
VL - 4
JO - Quantum Frontiers
JF - Quantum Frontiers
IS - 1
M1 - 24
ER -