Quantum walks of interacting Mott insulator defects with three-body
interactions
- URL: http://arxiv.org/abs/2001.08527v2
- Date: Thu, 7 May 2020 06:19:20 GMT
- Title: Quantum walks of interacting Mott insulator defects with three-body
interactions
- Authors: Suman Mondal and Tapan Mishra
- Abstract summary: We analyze the quantum walk of interacting defects on top of an uniform bosonic Mott insulator at unit filling in an one dimensional graph.
The case of two particles exhibits interesting phenomenon of quantum walk reversal as a function of additional onsite three-body attractive interactions.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Quantum walks of interacting particles may display non-trivial features due
to the interplay between the statistical nature and the many-body interactions
associated to them. We analyze the quantum walk of interacting defects on top
of an uniform bosonic Mott insulator at unit filling in an one dimensional
graph. While the quantum walk of single particle defect shows trivial features,
the case of two particles exhibits interesting phenomenon of quantum walk
reversal as a function of additional onsite three-body attractive interactions.
In the absence of the three-body interaction a quantum walk of pairs of
particles is obtained and as the strength of the three-body interaction becomes
more and more attractive, the independent particle behavior in quantum walk
appears. Interestingly, further increase in the three-body interaction leads to
the re-appearance of the quantum walk associated to a pair of particles. This
quantum-walk reversal phenomenon is studied using the real-space density
evolution, Bloch oscillation as well as two-particle correlation functions.
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