Finite temperature phase transition in a cross-dimensional triangular lattice

Author:

Jin Shengjie,Guo Xinxin,Peng Peng,Chen Xuzong,Li Xiaopeng,Zhou Xiaoji

Abstract

Abstract Atomic many-body phase transitions and quantum criticality have recently attracted much attention in non-standard optical lattices. Here we perform an experimental study of finite temperature superfluid transition of bosonic atoms confined in a three dimensional triangular lattice, whose structure can be continuously deformed to dimensional crossover regions including quasi-one and two dimensions. This non-standard lattice system provides a versatile platform to investigate many-body correlated phases. For the three dimensional case, we find that the finite temperature superfluid transition agrees quantitatively with the Gutzwiller mean field theory prediction, whereas tuning towards reduced dimensional cases, both quantum and thermal fluctuation effects are more dramatic, and the experimental measurement for the critical point becomes strongly deviated from the mean field theory. We characterize the fluctuation effects in the whole dimension crossover process. Our experimental results imply strong many-body correlations in the system beyond mean field description, paving a way to study quantum criticality near Mott-superfluid transition in finite temperature dimension-crossover lattices.

Funder

National Natural Science Foundation of China

Thousand-YouthTalent Program of China

National Science Foundation

National Program on Key Basic Research Project of China

Publisher

IOP Publishing

Subject

General Physics and Astronomy

Reference61 articles.

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