Opening in Bureauify…
ActiveResearch

Phase transition in bilayer MoS <sub>2</sub> under tensile loading: a molecular dynamics study

DOE

Source: doe_osti
OverviewIntelligenceProposals

Key Details

Posted Date
Source
doe_osti

Description

Abstract <p>Molybdenum disulfide (MoS<sub>2</sub>), especially single-layer MoS<sub>2</sub>, has been experimentally and computationally discovered to exist in several different polymorphs exhibiting various electronic and mechanical properties. The morphology of MoS<sub>2</sub>can be tuned through strain engineering. Molecular dynamics simulations are conducted to systematically study the phase transition of single-layer MoS<sub>2</sub>and bilayer MoS<sub>2</sub>under the uniaxial tensile condition at room temperature. The roles of edge and S-line vacancy are investigated. Phase transitions are always triggered near the edge and vacancy sites. The initiation of the metastable T″ phase can release the tensile stress in the lattice, followed by I4/mmm phase initiation, regardless of the edge conditions. The growth of the I4/mmm phase can cause the local buckling of the MoS<sub>2</sub>plane. With a tilted S-line vacancy, I4/mmm phase is first initiated to reduce the local shear stress accumulated near the vacancy line. Overall, the phase transition mechanism of single layer and bilayer MoS<sub>2</sub>under the uniaxial tensile loading is provided, which guides the future strain engineering of MoS<sub>2</sub>in nanoelectronics applications.</p>. Authors: Rahman, Mahabubur (ORCID:0000000263064947); Zhao, Huijuan (ORCID:0000000297144515). DOE Contract: FE0031765. Subjects: Materials Science; Physics; Science & Technology - Other Topics

Frequently Asked Questions

Is this research still open?+
Yes — this research from DOE is currently accepting responses. Track it on Bureauify for deadline alerts.
How do I apply for this research?+
Review the full solicitation documents on the source website (SAM.gov or Grants.gov), prepare your proposal per the instructions, and submit before the deadline. Use Bureauify to track the opportunity and get reminders.

Track This Research

Get alerts and track updates with Bureauify.

Track in BureauifyView on doe_osti

Intelligence

  • Win probability analysis
  • Competitive landscape
  • Incumbent analysis
  • Price-to-win estimate
  • Similar awards history
Open in Bureauify for full intelligence →

Data sourced from doe_osti

Search Government Records

100M+ government records — search across all categories

Phase transition in bilayer MoS <sub>2</sub> under tensile l — DOE | Bureauify