The University of Tokyo · 재료과학
Sébastian Volz 교수의 연구실은 나노스케일에서의 열전도 거동을 분석하고, 특히 나노와이어, 그래핀, 탄소나노튜브 등 나노구조물에서의 열전달 거동을 분자역학 시뮬레이션과 실험을 융합하여 연구합니다. 주요 연구 방향은 표면 효과, 포논의 간섭적 전도, 열접합 저항 감소 기술 등 나노전자소자에서의 열관리 문제 해결에 초점이 맞춰져 있습니다. 특히 표면 포논-폴라리톤의 형성과 그에 따른 열전도도 향상 메커니즘을 실험적으로 규명한 데에도 기여했습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
We investigate the thermal conductivity of silicon nanowires based on molecular dynamics (MD) simulations. The simulated thermal conductivities of nanowires with square cross sections are found to be about two orders of magnitude smaller than those of bulk Si crystals in a wide range of temperatures (200–500 K) for both rigid and free boundary conditions. A solution of the Boltzmann transport equation is used to explore the possibility of explaining the MD results based on boundary scattering.
We investigate the thermal conductivity of bulk silicon crystals based on molecular-dynamics (MD) simulations. If it is taken that the system size must be larger than the phonon mean free path, several hundreds of millions of atoms must be computed for crystals with large thermal conductivity values such as Si. We demonstrate in this work that the thermal conductivity of Si crystals can be simulated by MD techniques using several thousands of atoms with periodic boundary conditions. We identify
A carbon-nanotube architecture based on ceramic microparticles allows for strikingly reducing the number of thermal contact resistances between carbon nanotubes (CNT). The result is a 130% enhancement of the thermal conductivity of the nanocomposites at a remarkably low CNT mass fraction of 0.15 wt%.
Through nonequilibrium molecular dynamics simulations, we report the direct numerical evidence of the coherent phonons participating in thermal transport at room temperature in graphene phononic crystal (GPnC) structure and evaluate their contribution to thermal conductivity based on the two-phonon model. With decreasing period length in GPnC, the transition from the incoherent to coherent phonon transport is clearly observed. When a random perturbation to the positions of holes is introduced in
Using a molecular-dynamics (MD) numerical simulation, we test the validity of the generalized Fourier law predicted by Cattaneo and Vernotte (CV) and theoretically established in the extended irreversible thermodynamics. The numerical experiments are achieved at constant and high density in a Lennard-Jones (6-12) solid argon. The temperature domain is restricted to the so-called kinetic region where the thermal conductivity \ensuremath{\lambda}\ensuremath{\sim}${\mathit{T}}^{\mathrm{\ensuremath{
Improving heat dissipation in increasingly miniature microelectronic devices is a serious challenge, as the thermal conduction in nanostructures is markedly reduced by increasingly frequent scattering of phonons on the surface. However, the surface could become an additional heat dissipation channel if phonons couple with photons forming hybrid surface quasiparticles called surface phonon-polaritons (SPhPs). Here, we experimentally demonstrate the formation of SPhPs on the surface of SiN nanomem
Phase-change materials (crystalline at low temperatures and partial-crystalline partial-liquid state at high temperatures) are widely used as thermoelectric converters and battery electrodes. Here, we report the underlying mechanisms driving the thermal transport of the liquid component, and the thermal conductivity contributions from phonons, vibrations with extremely short mean free path, liquid and lattice-liquid interactions in phase-changed Li<sub>2</sub>S. In the crystalline state (T ≤ 100