AI Article Synopsis

  • Monolayer dialkali-metal monoxides in a 2H-MoS lattice exhibit unique symmetry-protected topological phases that can be fine-tuned through strain engineering.
  • In equilibrium, monolayer sodium oxide (NaO) behaves as a 2D double Weyl semimetal, while monolayer potassium oxide (KO) acts as a 2D pseudospin-1 metal, both displaying interesting optical and tunneling properties.
  • By applying biaxial or uniaxial strain, these materials can undergo quantum phase transitions, making them a promising platform for studying new physical phenomena related to 2D emergent fermions.

Article Abstract

2D materials with nontrivial energy bands are highly desirable for exploring various topological phases of matter, as low dimensionality opens unprecedented opportunities for manipulating the quantum states. Here, it is reported that monolayer (ML) dialkali-metal monoxides, in the well-known 2H-MoS type lattice, host multiple symmetry-protected topological phases with emergent fermions, which can be effectively tuned by strain engineering. Based on first-principles calculations, it is found that in the equilibrium state, ML NaO is a 2D double Weyl semimetal, while ML KO is a 2D pseudospin-1 metal. These exotic topological states exhibit a range of fascinating effects, including universal optical absorbance, super Klein tunneling, and super collimation effect. By introducing biaxial or uniaxial strain, a series of quantum phase transitions between 2D double Weyl semimetal, 2D Dirac semimetal, 2D pseudospin-1 metal, and semiconductor phases can be realized. The results suggest monolayer dialkali-metal monoxides as a promising platform to explore fascinating physical phenomena associated with novel 2D emergent fermions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7029633PMC
http://dx.doi.org/10.1002/advs.201901939DOI Listing

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Article Synopsis
  • Monolayer dialkali-metal monoxides in a 2H-MoS lattice exhibit unique symmetry-protected topological phases that can be fine-tuned through strain engineering.
  • In equilibrium, monolayer sodium oxide (NaO) behaves as a 2D double Weyl semimetal, while monolayer potassium oxide (KO) acts as a 2D pseudospin-1 metal, both displaying interesting optical and tunneling properties.
  • By applying biaxial or uniaxial strain, these materials can undergo quantum phase transitions, making them a promising platform for studying new physical phenomena related to 2D emergent fermions.
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