| Literature DB >> 26259103 |
Jin Wang1,2, Ben Wylie-van Eerd3, Tomas Sluka1, Cosmin Sandu1, Marco Cantoni4, Xian-Kui Wei1,5, Alexander Kvasov1, Leo John McGilly1, Pascale Gemeiner6, Brahim Dkhil6, Alexander Tagantsev1, Joe Trodahl3, Nava Setter1.
Abstract
Ferroelectrics are widespread in technology, being used in electronics and communications, medical diagnostics and industrial automation. However, extension of their operational temperature range and useful properties is desired. Recent developments have exploited ultrathin epitaxial films on lattice-mismatched substrates, imposing tensile or compressive biaxial strain, to enhance ferroelectric properties. Much larger hydrostatic compression can be achieved by diamond anvil cells, but hydrostatic tensile stress is regarded as unachievable. Theory and ab initio treatments predict enhanced properties for perovskite ferroelectrics under hydrostatic tensile stress. Here we report negative-pressure-driven enhancement of the tetragonality, Curie temperature and spontaneous polarization in freestanding PbTiO3 nanowires, driven by stress that develops during transformation of the material from a lower-density crystal structure to the perovskite phase. This study suggests a simple route to obtain negative pressure in other materials, potentially extending their exploitable properties beyond their present levels.Entities:
Year: 2015 PMID: 26259103 DOI: 10.1038/nmat4365
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841