Estimating bounds on collisional relaxation rates of spin-polarized Rb-87 atoms at ultracold temperatures

被引:110
作者
Mies, FH
Williams, CJ
Julienne, PS
Krauss, M
机构
[1] Natl. Inst. of Std. and Technology, Gaithersburg
[2] Quantum Processes Group, Atomic Physics Division
关键词
ab initio calculations; cold trapped atoms; rubidium atom collisions; second-order spin-orbit; spin-relaxation rate; spin-spin interactions;
D O I
10.6028/jres.101.052
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
We present quantum scattering calculations for the collisional relaxation rate coefficient of spin-polarized Rb-87(f = 2, m = 2) atoms, which determines the loss rate of cold Rb atoms from a magnetic trap. Unlike the lighter alkali atoms, spin-polarized Rb-87 atoms can undergo dipolar relaxation due to both the normal spin-spin dipole interaction and a second-order spinorbit interaction with distant electronic states of the dimer. We present ab initio calculations for the second-order spin-orbit terms for both Rb-2 and Cs-2. The corrections lead to a reduction in the relaxation rate for Rb-87. Our primary concern is to analyze the sensitivity of the Rb-87 trap loss to the uncertainties in the ground state molecular potentials. Since the scattering length for the a(3) Sigma(u)(+), state is already known, the major uncertainties are associated with the X(1) Sigma(g)(+), potential. After testing the effect of systematically modifying the short-range form of the molecular potentials over a reasonable range, and introducing our best estimate of the second-order spin-orbit interaction, we estimate that in the low temperature limit the rare coefficient for loss of Rb atoms from the f = 2,m = 2 state is between 0.4 x 10(-15) cm(3)/s and 2.4 x 10(-15) cm(3)/s (where this number counts two atoms lost per collision). In a pure condensate the rate coefficient would be reduced by 1/2.
引用
收藏
页码:521 / 535
页数:15
相关论文
共 31 条
[1]   CALCULATION OF NUCLEAR-SPIN-RELAXATION RATE FOR SPIN-POLARIZED ATOMIC-HYDROGEN [J].
AHN, RMC ;
VANDEREIJNDE, JPHW ;
VERHAAR, BJ .
PHYSICAL REVIEW B, 1983, 27 (09) :5424-5432
[2]   OBSERVATION OF BOSE-EINSTEIN CONDENSATION IN A DILUTE ATOMIC VAPOR [J].
ANDERSON, MH ;
ENSHER, JR ;
MATTHEWS, MR ;
WIEMAN, CE ;
CORNELL, EA .
SCIENCE, 1995, 269 (5221) :198-201
[3]   HALF AND FULL COLLISION MATRIX-METHODS FOR SCATTERING - APPLICATION TO MULTICHANNEL CURVE CROSSING [J].
BAND, YB ;
MIES, FH .
JOURNAL OF CHEMICAL PHYSICS, 1988, 88 (04) :2309-2319
[4]  
BOESTEN HMJ, 1996, IN PRESS PHYS REV A
[5]   EVIDENCE OF BOSE-EINSTEIN CONDENSATION IN AN ATOMIC GAS WITH ATTRACTIVE INTERACTIONS [J].
BRADLEY, CC ;
SACKETT, CA ;
TOLLETT, JJ ;
HULET, RG .
PHYSICAL REVIEW LETTERS, 1995, 75 (09) :1687-1690
[6]  
CHILD MS, 1974, MOL COLLISION THEORY, P116
[7]   SPIN-CHANGE CROSS-SECTIONS FOR COLLISIONS BETWEEN ALKALI ATOMS [J].
DALGARNO, A ;
RUDGE, MRH .
PROCEEDINGS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL AND PHYSICAL SCIENCES, 1965, 286 (1407) :519-&
[8]   BOSE-EINSTEIN CONDENSATION IN A GAS OF SODIUM ATOMS [J].
DAVIS, KB ;
MEWES, MO ;
ANDREWS, MR ;
VANDRUTEN, NJ ;
DURFEE, DS ;
KURN, DM ;
KETTERLE, W .
PHYSICAL REVIEW LETTERS, 1995, 75 (22) :3969-3973
[9]   TOTAL ELASTIC SCATTERING AND SPIN-CHANGE CROSS SECTIONS FOR COLLISIONS BETWEEN ALKALI ATOMS [J].
DICKINSON, HO ;
RUDGE, MRH .
JOURNAL OF PHYSICS PART B ATOMIC AND MOLECULAR PHYSICS, 1970, 3 (11) :1448-+
[10]   INTERSYSTEM CROSSING IN COLLISIONS OF ALIGNED CA(4S5PP1)+HE - A HALF COLLISION ANALYSIS USING MULTICHANNEL QUANTUM DEFECT THEORY [J].
DUBS, RL ;
JULIENNE, PS ;
MIES, FH .
JOURNAL OF CHEMICAL PHYSICS, 1990, 93 (12) :8784-8792