Heating of trapped ultracold atoms by collapse dynamics

被引:31
|
作者
Laloe, Franck [1 ,2 ]
Mullin, William J. [3 ]
Pearle, Philip [4 ]
机构
[1] UPMC, Associe ENS, Lab Kastler Brossel, F-75005 Paris, France
[2] CNRS, F-75005 Paris, France
[3] Univ Massachusetts, Dept Phys, Amherst, MA 01003 USA
[4] Hamilton Coll, Dept Phys, Clinton, NY 13323 USA
来源
PHYSICAL REVIEW A | 2014年 / 90卷 / 05期
关键词
WAVE-FUNCTION COLLAPSE; SPONTANEOUS LOCALIZATION; SPONTANEOUS RADIATION; MACROSCOPIC SYSTEMS; UNIFIED DYNAMICS; GAS; MODELS; CONDENSATION; COLLISIONS; REDUCTION;
D O I
10.1103/PhysRevA.90.052119
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The continuous spontaneous localization (CSL) theory alters the Schrodinger equation. It describes wave-function collapse as a dynamical process instead of an ill-defined postulate, thereby providing macroscopic uniqueness and solving the so-called measurement problem of standard quantum theory. CSL contains a parameter lambda giving the collapse rate of an isolated nucleon in a superposition of two spatially separated states and, more generally, characterizing the collapse time for any physical situation. CSL is experimentally testable, since it predicts some behavior different from that predicted by standard quantum theory. One example is the narrowing of wave functions, which results in energy imparted to particles. Here we consider energy given to trapped ultracold atoms. Since these are the coldest samples under experimental investigation, it is worth inquiring how they are affected by the CSL heating mechanism. We examine the CSL heating of a Bose-Einstein condensate (BEC) in contact with its thermal cloud. Of course, other mechanisms also provide heat and also particle loss. From varied data on optically trapped cesium BECs, we present an energy audit for known heating and loss mechanisms. The result provides an upper limit on CSL heating and thereby an upper limit on the parameter lambda. We obtain. lambda less than or similar to 1(+/- 1) x 10(-7) s(-1).
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Sympathetic cooling of fluorine atoms with ultracold atomic hydrogen
    Gonzalez-Martinez, Maykel L.
    Hutson, Jeremy M.
    PHYSICAL REVIEW A, 2013, 88 (05):
  • [22] Ultracold Hydrogen Atoms: A Versatile Coolant to Produce Ultracold Molecules
    Gonzalez-Martinez, Maykel L.
    Hutson, Jeremy M.
    PHYSICAL REVIEW LETTERS, 2013, 111 (20)
  • [23] Collapse in ultracold Bose Josephson junctions
    Bilardello, M.
    Trombettoni, A.
    Bassi, A.
    PHYSICAL REVIEW A, 2017, 95 (03)
  • [24] Quantum collapse dynamics with attractive densities
    Laloe, F.
    PHYSICAL REVIEW A, 2019, 99 (05)
  • [25] Transport with ultracold atoms at constant density
    Nietner, Christian
    Schaller, Gernot
    Brandes, Tobias
    PHYSICAL REVIEW A, 2014, 89 (01):
  • [26] Towards quantum magnetism with ultracold atoms
    Weld, David M.
    Ketterle, Wolfgang
    22ND INTERNATIONAL CONFERENCE ON ATOMIC PHYSICS, 2011, 264
  • [27] Zeeman Spectroscopy of Ultracold Thulium Atoms
    Tsyganok, V. V.
    Pershin, D. A.
    Khlebnikov, V. A.
    Davletov, E. T.
    Akimov, A. V.
    JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2019, 128 (02) : 199 - 206
  • [28] Nonequilibrium relaxation transport of ultracold atoms
    Gallego-Marcos, Fernando
    Platero, Gloria
    Nietner, Christian
    Schaller, Gernot
    Brandes, Tobias
    PHYSICAL REVIEW A, 2014, 90 (03)
  • [29] Functional integral for ultracold fermionic atoms
    Diehl, S.
    Wetterich, C.
    NUCLEAR PHYSICS B, 2007, 770 (03) : 206 - 272
  • [30] Exotic Chemistry with Ultracold Rydberg Atoms
    Sassmannshausen, Heiner
    Deiglmayr, Johannes
    Merkt, Frederic
    CHIMIA, 2016, 70 (04) : 263 - 267