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Long-Range Order, 'Tower' of States, and Symmetry Breaking in Lattice Quantum Systems

机译:晶格量子系统中的远程顺序,“塔”和对称性突破

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摘要

In a quantum many-body system where the Hamiltonian and the order operator do not commute, it often happens that the unique ground state of a finite system exhibits long-range order (LRO) but does not show spontaneous symmetry breaking (SSB). Typical examples include antiferromagnetic quantum spin systems with Neel order, and lattice boson systems which exhibits Bose-Einstein condensation. By extending and improving previous results by Horsch and von der Linden and by Koma and Tasaki, we here develop a fully rigorous and almost complete theory about the relation between LRO and SSB in the ground state of a finite system with continuous symmetry. We show that a ground state with LRO but without SSB is inevitably accompanied by a series of energy eigenstates, known as the tower of states, which have extremely low excitation energies. More importantly, we also prove that one gets a physically realistic ground state by taking a superposition of these low energy excited states.
机译:在汉密尔顿人和订单操作员不通勤的量子数量,通常恰及有限系统的独特地位呈现远程顺序(LRO),但不显示自发对称性断裂(SSB)。 典型的实例包括具有鼻子顺序的反铁磁量子旋转系统,以及表现出Bose-Einstein冷凝的格子玻色子系统。 通过通过卷曲和von der Linden和Koma和Tasaki扩展和改进以前的结果,我们在这里开发了一个完全严格,并且几乎完全完全的理论,涉及连续对称的有限系统的LRO和SSB之间的关系。 我们表明,带RRO但没有SSB的地面状态不可避免地伴随着一系列能源特征,称为具有极低励磁能量的状态塔。 更重要的是,我们还证明了一个通过叠加这些低能量兴奋状态来获得物理上现实的基础状态。

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