Atomic scale spectral control of thermal transport in phononic crystal superlattices
arXiv:2009.14532
Abstract
We present experimental and theoretical investigations of phonon thermal transport in (LaMnO)/(SrMnO) superlattices (LMO/SMO SLs) with the thickness of individual layers u.c. and the thickness ratio . Optical transient thermal reflectivity measurements reveal a pronounced difference in the thermal conductivity between SLs with , and SLs with . State-of-the art electron microscopy techniques and ab-initio density functional calculations enables us to assign the origin of this difference to the absence () or presence () of spatially periodic, static oxygen octahedral rotation (OOR) inside the LMO layers. The experimental data analysis shows that the effective thermal conductance of the LMO/SMO interfaces strongly changes from GW/mK for SLs with OOR to a surprisingly large value of GW/mK for SLs without OOR. An instructive lattice dynamical model rationalizes our experimental findings as a result of coherent phonon transmission for versus coherent phonon blocking in SLs with . We briefly discuss the possibilities to exploit these results for atomic-scale engineering of a crystalline phonon insulator. The thermal resistivity of this proposal for a thermal metamaterial surpasses the amorphous limit, although phonons still propagate coherently.
Revision changes article focus from structural properties to thermal transport properties of SL