Monte Carlo Study of Phonon Heat Conduction in Silicon Thin Films Including Contributions of Optical Phonons
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- Type
- article
- Published
- 2010-05-01
- Cited by
- 109
- References
- 28
- OpenAlex
- https://openalex.org/W1979428870
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:119621978
Keywords
Phonon, Thermal conductivity, Thermal conduction, Condensed matter physics, Materials science
References
- Self-heating and scaling of thin body transistors
- Microscale energy transport
- Spectral Phonon Transport Properties of Silicon Based on Molecular Dynamics Simulations and Lattice Dynamics
- Monte Carlo Simulation of Silicon Nanowire Thermal Conductivity
- Role of optical phonon in Ge thermal conductivity
- Modeling the Thermal Conductivity and Phonon Transport in Nanoparticle Composites Using Monte Carlo Simulation
- Phonon scattering in silicon films with thickness of order 100 nm
- Review of Multiscale Simulation in Submicron Heat Transfer
- Submicron heat transport model in silicon accounting for phonon dispersion and polarization
- Hierarchical modeling of heat transfer in silicon-based electronic devices
- Monte Carlo simulation of cross-plane thermal conductivity of nanostructured porous silicon films
- Anharmonic thermal resistivity of dielectric crystals at low temperatures.
- Variational Calculation of the Thermal Conductivity of Germanium
- Direct simulation of phonon-mediated heat transfer in a Debye crystal
- Lattice Vibrations in Silicon and Germanium
- Analysis of Lattice Thermal Conductivity
- In: Electrons and Phonons
- Monte Carlo Simulation of Steady-State Microscale Phonon Heat Transport
- Role of Phonon Dispersion in Lattice Thermal Conductivity Modeling role of phonon dispersion in the prediction of the thermal conductivity of germanium
- introduction to lattice dynamics
Cited by
- Towards a microscopic understanding of phonon heat conduction
- Prediction of Non-Equilibrium Heat Conduction in Crystalline Materials Using the Boltzmann Transport Equation for Phonons
- Atomistic modeling of phonon bandstructure and transport for optimal thermal management in nanoscale devices
- A Statistical phonon transport model for thermal transport in cyrstalline materials from the diffuse to ballistic regime
- Prediction of thermal conductivity of silicon nanowires via phonon Monte Carlo simulation: Exact treatment of cylindrical boundary
- Thermal rectification from nanostructured interfaces and boundaries
- Low variance methods for Monte Carlo simulation of phonon transport
- Phonon transport analysis of semiconductor nanocomposites using monte carlo simulations
- An efficient solution procedure for simulating phonon transport in multiscale multimaterial systems
- Phonon Heat Conduction in Multidimensional Heterostructures: Predictions Using the Boltzmann Transport Equation
- Ultraviolet Raman spectra of single uncoated and SiO2-coated silicon-on-insulator nanowires: Phonon boundary scattering, wave-vector relaxation and stress
- Monte Carlo simulation of phonon transport in silicon including a realistic dispersion relation
- Hydrodynamic modeling of the electro-thermal transport in silicon semiconductors
- Advances in the measurement and computation of thermal phonon transport properties
- Investigation of the thermal‐transport properties for silicon nanofilm covered with graphene via nonequilibrium molecular dynamics
- Out-of-Plane Thermal Conductivity of Silicon Thin Film Doped with Germanium
- Monte Carlo study of phonon dynamics in III-V compounds
- Full-dispersion Monte Carlo simulation of phonon transport in micron-sized graphene nanoribbons
- Phonon ballistic-diffusive heat conduction in silicon nanofilms by Monte Carlo simulations
- Solution of the Boltzmann Transport Equation for Phonon Transport via the Speed-Up Transient Monte Carlo Method Using Reference Temperature
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