Chiral two-dimensional p-wave superfluid from s-wave pairing in the Bose-Einstein-condensate regime

被引:7
作者
Thompson, K. [1 ,2 ]
Brand, J. [2 ,3 ,4 ]
Zuelicke, U. [1 ,2 ,5 ]
机构
[1] Victoria Univ Wellington, Sch Chem & Phys Sci, POB 600, Wellington 6140, New Zealand
[2] Dodd Walls Ctr Photon & Quantum Technol, POB 56, Dunedin 9056, New Zealand
[3] Massey Univ, Ctr Theoret Chem & Phys, NSMC, Private Bag 102904, Auckland 0745, New Zealand
[4] Massey Univ, New Zealand Inst Adv Study, NSMC, Private Bag 102904, Auckland 0745, New Zealand
[5] Univ Basel, Dept Phys, Klingelbergstr 82, CH-4056 Basel, Switzerland
关键词
CRITICAL FIELD; GAS; CROSSOVER; VORTICES; STATES; MODES;
D O I
10.1103/PhysRevA.101.013613
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Two-dimensional spin-orbit-coupled Fermi gases subject to s-wave pairing can be driven into a topological phase by increasing the Zeeman spin splitting beyond a critical value. In the topological phase, the system exhibits the hallmarks of chiral p-wave superfluidity, including exotic Majorana excitations. Previous theoretical studies of this realization of a two-dimensional topological Fermi superfluid have focused on the BCS regime where the s-wave Cooper pairs are only weakly bound and, hence, the induced chiral p-wave order parameter has a small magnitude. Motivated by the goal to identify potential new ways for the experimental realization of robust topological superfluids in ultracold-atom gases, we study the BCS-to-BEC crossover driven by increasing the Cooper-pair binding energy for this system. In particular, we obtain phase diagrams in the parameter space of two-particle bound-state energy and Zeeman spin-splitting energy. Ordinary characteristics of the BCS-to-BEC crossover, in particular the shrinking and eventual disappearance of the Fermi surface, are observed in the nontopological phase. In contrast, the topological phase retains all features of chiral p-wave superfluidity, including a well-defined underlying Fermi surface, even for large s-wave pair-binding energies. Compared to the BCS limit, the topological superfluid in the BEC regime turns out to be better realizable even for only moderate magnitude of spin-orbit coupling because the chiral p-wave order parameter is generally larger and remnants of s-wave pairing are suppressed. We identify optimal parameter ranges that can aid further experimental investigations and elucidate the underlying physical reason for the persistence of the chiral p-wave superfluid.
引用
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页数:11
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