Beating the amorphous limit in thermal conductivity by superlattices design
arXiv:1503.04080 · doi:10.1038/srep14116
Abstract
The value measured in the amorphous structure with the same chemical composition is often considered as a lower bound for the thermal conductivity of any material: the heat carriers are strongly scattered by disorder, and their lifetimes reach the minimum time scale of thermal vibrations. An appropriate design at the nano-scale, however, may allow one to reduce the thermal conductivity even below the amorphous limit. In the present contribution, using molecular-dynamics simulation and the Green-Kubo formulation, we study systematically the thermal conductivity of layered phononic materials (superlattices), by tuning different parameters that can characterize such structures. We discover that the key to reach a lower-than-amorphous thermal conductivity is to block almost completely the propagation of the heat carriers, the superlattice phonons. We demonstrate that a large mass difference in the two intercalated layers, or weakened interactions across the interface between layers result in materials with very low thermal conductivity, below the values of the corresponding amorphous counterparts.
References in corpus (1)
Cited by in corpus (12)
- Suppression of coherent thermal transport in quasiperiodic graphene-hBN superlattice ribbons
- Hierarchical nanostructuring approaches for thermoelectric materials with high power factors
- Relation of vibrational excitations and thermal conductivity to elastic heterogeneities in disordered solids
- Cross-plane thermal conductivity of GaN/AlN superlattices
- Nanowires for heat conversion
- Hierarchically nanostructured thermoelectric materials: Challenges and opportunities for improved power factors
- Mode Localization and Suppressed Heat Transport in Amorphous Alloys
- Thermoelectric power factor of nanocomposite materials from two-dimensional quantum transport simulations
- Thermal transport in 2D and 3D nanowire networks
- Theoretical model for the Seebeck coefficient in superlattice materials with energy relaxation
- Subamorphous thermal conductivity of crystalline half-Heusler superlattices
- Thermoelectric power factor in nanostructured materials with randomized nanoinclusions