| Literature DB >> 31596599 |
Eric Langenberg1,2, Dipanjan Saha3, Megan E Holtz1,4, Jian-Jun Wang5, David Bugallo2, Elias Ferreiro-Vila2, Hanjong Paik1, Isabelle Hanke6, Steffen Ganschow6, David A Muller4, Long-Qing Chen5, Gustau Catalan7, Neus Domingo7, Jonathan Malen3, Darrell G Schlom1,8, Francisco Rivadulla2.
Abstract
Achieving efficient spatial modulation of phonon transmission is an essential step on the path to phononic circuits using "phonon currents". With their intrinsic and reconfigurable interfaces, domain walls (DWs), ferroelectrics are alluring candidates to be harnessed as dynamic heat modulators. This paper reports the thermal conductivity of single-crystal PbTiO3 thin films over a wide variety of epitaxial-strain-engineered ferroelectric domain configurations. The phonon transport is proved to be strongly affected by the density and type of DWs, achieving a 61% reduction of the room-temperature thermal conductivity compared to the single-domain scenario. The thermal resistance across the ferroelectric DWs is obtained, revealing a very high value (≈5.0 × 10-9 K m2 W-1), comparable to grain boundaries in oxides, explaining the strong modulation of the thermal conductivity in PbTiO3. This low thermal conductance of the DWs is ascribed to the structural mismatch and polarization gradient found between the different types of domains in the PbTiO3 films, resulting in a structural inhomogeneity that extends several unit cells around the DWs. These findings demonstrate the potential of ferroelectric DWs as efficient regulators of heat flow in one single material, overcoming the complexity of multilayers systems and the uncontrolled distribution of grain boundaries, paving the way for applications in phononics.Entities:
Keywords: Epitaxial strain engineering; domain walls; ferroelectrics; phononics; thermal conductivity; thin films
Year: 2019 PMID: 31596599 DOI: 10.1021/acs.nanolett.9b02991
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189