Fermion parity gap and exponential ground state degeneracy of the one-dimensional Fermi gas with intrinsic attractive interaction

Monalisa Singh Roy, Manoranjan Kumar, J. Sau, S. Tewari
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Abstract

We examine the properties of a one-dimensional (1D) Fermi gas with attractive intrinsic (Hubbard) interactions in the presence of spin-orbit coupling and Zeeman field by numerically computing the pair binding energy, excitation gap, and susceptibility to local perturbations using the density matrix renormalization group. Such a system can, in principle, be realized in a system of ultracold atoms confined in a 1D optical lattice. We note that, in the presence of spatial interfaces introduced by a smooth parabolic potential, the pair binding and excitation energy of the system decays exponentially with the system size, pointing to the existence of an exponential ground state degeneracy, and is consistent with recent works. However, the susceptibility of the ground state degeneracy of this number-conserving system to local impurities indicates that the energy gap vanishes as a power law with the system size in the presence of local perturbations. We compare this system with the more familiar system of an Ising antiferromagnet in the presence of a transverse field realized with Rydberg atoms and argue that the exponential splitting in the clean number-conserving 1D Fermi system is similar to a phase with only conventional order.
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具有本征吸引相互作用的一维费米气体的费米子宇称隙和指数基态简并
在自旋轨道耦合和塞曼场存在的情况下,我们通过使用密度矩阵重整化群数值计算对结合能、激发间隙和对局部扰动的敏感性,研究了具有吸引本征相互作用的一维费米气体的性质。原则上,这种系统可以在一维光学晶格中的超冷原子系统中实现。我们注意到,在光滑抛物势引入的空间界面的存在下,系统的对结合能和激发能随系统大小呈指数衰减,表明存在指数基态简并,这与最近的研究结果一致。然而,这种守恒系统的基态简并对局部杂质的敏感性表明,在存在局部扰动的情况下,能隙随系统大小的幂律而消失。我们将该系统与我们更熟悉的伊辛反铁磁体系统进行了比较,在Rydberg原子实现的横向场存在下,我们认为干净守恒数的一维费米系统中的指数分裂类似于只有常规秩序的相。
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