Atomic spin-chain realization of a model for quantum criticality

Journal Article (2016)
Author(s)

R. Toskovic (TU Delft - QN/Otte Lab)

R.J.B.H.N. van den Berg (Universiteit van Amsterdam)

A. Spinelli (TU Delft - QN/Mol. Electronics & Devices)

I. S. Eliens (Universiteit van Amsterdam)

B.W. van den Toorn (TU Delft - QN/Quantum Nanoscience)

B.E.M. Bryant (TU Delft - QN/Mol. Electronics & Devices)

J. S. Caux (Universiteit van Amsterdam)

Sander Otte (TU Delft - QN/Otte Lab)

Research Group
QN/Otte Lab
DOI related publication
https://doi.org/10.1038/nphys3722
More Info
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Publication Year
2016
Language
English
Research Group
QN/Otte Lab
Volume number
12
Pages (from-to)
656-660

Abstract

The ability to manipulate single atoms has opened up the door to constructing interesting and useful quantum structures from the ground up. On the one hand, nanoscale arrangements of magnetic atoms are at the heart of future quantum computing and spintronic devices; on the other hand, they can be used as fundamental building blocks for the realization of textbook many-body quantum models, illustrating key concepts such as quantum phase transitions, topological order or frustration as a function of system size. Here, we use low-temperature scanning tunnelling microscopy to construct arrays of magnetic atoms on a surface, designed to behave like spin-1/2 XXZ Heisenberg chains in a transverse field, for which a quantum phase transition from an antiferromagnetic to a paramagnetic phase is predicted in the thermodynamic limit. Site-resolved measurements on these finite-size realizations reveal a number of sudden ground state changes when the field approaches the critical value, each corresponding to a new domain wall entering the chains. We observe that these state crossings become closer for longer chains, suggesting the onset of critical behaviour. Our results present opportunities for further studies on quantum behaviour of many-body systems, as a function of their size and structural complexity.

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