# Quantum Multicriticality near the Dirac-Semimetal to Band-Insulator   Critical Point in Two Dimensions: A Controlled Ascent from One Dimension

**Authors:** Bitan Roy, Matthew S. Foster

arXiv: 1705.10798 · 2018-04-04

## TL;DR

This paper investigates the effects of short-range interactions on a two-dimensional anisotropic Dirac semimetal at a quantum critical point, revealing potential phase transitions and new multicritical behavior using a controlled RG approach.

## Contribution

It introduces a controlled RG analysis near the one-dimensional limit to study interaction effects at the Dirac-semimetal to insulator transition in two dimensions.

## Key findings

- Weak interactions do not destabilize the semimetal due to vanishing density of states.
- Strong interactions can induce first-order transition or broken-symmetry phases.
- Identifies possible ordered phases: CDW, AFM, and s-wave superconductivity.

## Abstract

We compute the effects of generic short-range interactions on gapless electrons residing at the quantum critical point separating a two-dimensional Dirac semimetal (DSM) and a symmetry-preserving band insulator (BI). The electronic dispersion at this critical point is anisotropic ($E_{\mathbf k}=\pm \sqrt{v^2 k^2_x + b^2 k^{2n}_y}$ with $n=2$), which results in unconventional scaling of physical observables. Due to the vanishing density of states ($\varrho(E) \sim |E|^{1/n}$), this anisotropic semimetal (ASM) is stable against weak short-range interactions. However, for stronger interactions the direct DSM-BI transition can either $(i)$ become a first-order transition, or $(ii)$ get avoided by an intervening broken-symmetry phase (BSP). We perform a renormalization group analysis by perturbing away from the one-dimensional limit with the small parameter $\epsilon = 1/n$, augmented with a $1/n$ expansion (parametrically suppressing quantum fluctuations in higher dimension). We identify charge density wave (CDW), antiferromagnet (AFM) and singlet s-wave superconductor as the three dominant candidates for the BSP. The onset of any such order at strong coupling $(\sim \epsilon)$ takes place through a continuous quantum phase transition across multicritical point. We also present the phase diagram of an extended Hubbard model for the ASM, obtained via the controlled deformation of its counterpart in one dimension. The latter displays spin-charge separation and instabilities to CDW, spin density wave, and Luther-Emery liquid phases at arbitrarily weak coupling. The spin density wave and Luther-Emery liquid phases deform into pseudospin SU(2)-symmetric quantum critical points separating the ASM from the AFM and superconducting orders, respectively. Our results can be germane for a uniaxially strained honeycomb lattice or organic compound $\alpha$-(BEDT-TTF)$_2\text{I}_3$.

## Full text

_Full body text omitted from this summary view._ Fetch the complete paper as Markdown: https://tomesphere.com/paper/1705.10798/full.md

## Figures

36 figures with captions in the complete paper: https://tomesphere.com/paper/1705.10798/full.md

## References

96 references — full list in the complete paper: https://tomesphere.com/paper/1705.10798/full.md

---
Source: https://tomesphere.com/paper/1705.10798