Room-temperature type-II multiferroic phase induced by pressure in cupric oxide
Physical Review Letters American Physical Society 129 (2022) 217601
Abstract:
According to previous theoretical work, the binary oxide CuO can become a room temperature multiferroic via tuning of the superexchange interactions by application of pressure. Thus far, however, there has been no experimental evidence for the predicted room-temperature multiferroicity. Here, we show by neutron diffraction that the multiferroic phase in CuO reaches 295 K with the application of 18.5 GPa pressure. We also develop a spin Hamiltonian based on density functional theory and employing superexchange theory for the magnetic interactions, which can reproduce the experimental results. The present study provides a stimulus to develop room-temperature multiferroic materials by alternative methods based on existing low temperature compounds, such as epitaxial strain, for tunable multifunctional devices and memory applications.Formation of new crystalline qtz-[Zn(mIm)2] polymorph from amorphous ZIF-8
Chemical Communications Royal Society of Chemistry (RSC) 58:85 (2022) 11949-11952
Modeling the Effect of Defects and Disorder in Amorphous Metal–Organic Frameworks
Chemistry of Materials American Chemical Society (ACS) 34:20 (2022) 9042-9054
Magnetotransport of single crystal Sm$_2$Ir$_2$O$_7$ across the pressure-induced quantum-critical phase boundary
(2022)
Ultrahigh Piezoelectric Strains in PbZr1−xTixO3 Single Crystals with Controlled Ti Content Close to the Tricritical Point
Materials MDPI 15:19 (2022) 6708