Research paperComputational MDTheoreticalComputed PhononEnhancing heat transport in MoS₂ via defect-engineeringRiccardo Dettori, Francesco Siddi, Luciano Colombo, Claudio Melis2024·10.48550/arxiv.2407.19891·arXiv:2407.19891AbstractMoS₂ is one of the most investigated and promising transition-metal dichalcogenides. Its popularity stems from the interesting properties of the monolayer phase, which can serve as the fundamental block for numerous applications. In this paper, we propose an atomistic perspective on the modulation of thermal transport properties in monolayer MoS₂ through strategic defect engineering, specifically the introduction of sulfur vacancies. Using a combination of molecular dynamics simulations and lattice dynamics calculations, we show how various distributions of sulfur vacancies-ranging from random to periodically arranged configurations-affect its thermal conductivity. Notably, we observe that certain periodic arrangements restore the thermal conductivity of the pristine system, due to a minimized interaction between acoustic and optical phonons facilitated by the imposed superperiodicity. This research deepens the understanding of phononic heat transport in two-dimensional materials and introduces a different point-of-view for phonon engineering in nanoscale devices, offering a pathway to enhance device performance and longevity through tailored thermal management strategies.Read more
Pristine monolayer MoS₂ simulated as a rectangular conventional cell replicated along x and 16b in y for thermal-transport calculations.2 propertiesSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 1% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 2.5% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 5% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 10% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 1% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 2.5% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 5% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 10% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Research paperComputational MDTheoreticalComputed PhononEnhancing heat transport in MoS₂ via defect-engineeringRiccardo Dettori, Francesco Siddi, Luciano Colombo, Claudio Melis2024·10.48550/arxiv.2407.19891·arXiv:2407.19891AbstractMoS₂ is one of the most investigated and promising transition-metal dichalcogenides. Its popularity stems from the interesting properties of the monolayer phase, which can serve as the fundamental block for numerous applications. In this paper, we propose an atomistic perspective on the modulation of thermal transport properties in monolayer MoS₂ through strategic defect engineering, specifically the introduction of sulfur vacancies. Using a combination of molecular dynamics simulations and lattice dynamics calculations, we show how various distributions of sulfur vacancies-ranging from random to periodically arranged configurations-affect its thermal conductivity. Notably, we observe that certain periodic arrangements restore the thermal conductivity of the pristine system, due to a minimized interaction between acoustic and optical phonons facilitated by the imposed superperiodicity. This research deepens the understanding of phononic heat transport in two-dimensional materials and introduces a different point-of-view for phonon engineering in nanoscale devices, offering a pathway to enhance device performance and longevity through tailored thermal management strategies.Read more
Pristine monolayer MoS₂ simulated as a rectangular conventional cell replicated along x and 16b in y for thermal-transport calculations.2 propertiesSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 1% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 2.5% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 5% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 10% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 1% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 2.5% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 5% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 10% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Research paperComputational MDTheoreticalComputed PhononEnhancing heat transport in MoS₂ via defect-engineeringRiccardo Dettori, Francesco Siddi, Luciano Colombo, Claudio Melis2024·10.48550/arxiv.2407.19891·arXiv:2407.19891AbstractMoS₂ is one of the most investigated and promising transition-metal dichalcogenides. Its popularity stems from the interesting properties of the monolayer phase, which can serve as the fundamental block for numerous applications. In this paper, we propose an atomistic perspective on the modulation of thermal transport properties in monolayer MoS₂ through strategic defect engineering, specifically the introduction of sulfur vacancies. Using a combination of molecular dynamics simulations and lattice dynamics calculations, we show how various distributions of sulfur vacancies-ranging from random to periodically arranged configurations-affect its thermal conductivity. Notably, we observe that certain periodic arrangements restore the thermal conductivity of the pristine system, due to a minimized interaction between acoustic and optical phonons facilitated by the imposed superperiodicity. This research deepens the understanding of phononic heat transport in two-dimensional materials and introduces a different point-of-view for phonon engineering in nanoscale devices, offering a pathway to enhance device performance and longevity through tailored thermal management strategies.Read more
Pristine monolayer MoS₂ simulated as a rectangular conventional cell replicated along x and 16b in y for thermal-transport calculations.2 propertiesSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 1% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 2.5% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 5% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 10% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 1% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 2.5% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 5% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 10% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Research paperComputational MDTheoreticalComputed PhononEnhancing heat transport in MoS₂ via defect-engineeringRiccardo Dettori, Francesco Siddi, Luciano Colombo, Claudio Melis2024·10.48550/arxiv.2407.19891·arXiv:2407.19891AbstractMoS₂ is one of the most investigated and promising transition-metal dichalcogenides. Its popularity stems from the interesting properties of the monolayer phase, which can serve as the fundamental block for numerous applications. In this paper, we propose an atomistic perspective on the modulation of thermal transport properties in monolayer MoS₂ through strategic defect engineering, specifically the introduction of sulfur vacancies. Using a combination of molecular dynamics simulations and lattice dynamics calculations, we show how various distributions of sulfur vacancies-ranging from random to periodically arranged configurations-affect its thermal conductivity. Notably, we observe that certain periodic arrangements restore the thermal conductivity of the pristine system, due to a minimized interaction between acoustic and optical phonons facilitated by the imposed superperiodicity. This research deepens the understanding of phononic heat transport in two-dimensional materials and introduces a different point-of-view for phonon engineering in nanoscale devices, offering a pathway to enhance device performance and longevity through tailored thermal management strategies.Read more
Pristine monolayer MoS₂ simulated as a rectangular conventional cell replicated along x and 16b in y for thermal-transport calculations.2 propertiesSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 1% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 2.5% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 5% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Random sulfur-vacancy monolayer MoS₂ with 10% top-sulfur vacancies.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 1% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 2.5% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 5% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand
Ordered-strip sulfur-vacancy monolayer MoS₂ superlattice-like structure at 10% vacancy density.No measurements recordedSimulated Supercell DftMoS₂Studied MaterialExpand