Strongly correlated electron physics in novel materials
Lead Research Organisation:
University of Edinburgh
Department Name: Sch of Physics and Astronomy
Abstract
The basic physical theories of matter have been known for many decades but increasingly scientists are uncovering materials that challenge some of these accepted tenets, and within these new classes of compounds there is considerable potential for technological innovation. However, before we can run we must walk and a full understanding of the physics of these novel properties is required so the materials can be bent to our will. Notably, recent research has pointed to glaring errors in our standard theory of metals, the underlying cause of which are strong interactions between the constituent electrons. Traditionally, electron-electron interactions have been treated as negligible within metals and generally ignored. However, over the last few decades novel materials have been uncovered in which electron interaction energies are comparable to the electronic kinetic (or translational) energies; the electrons are said to be 'strongly correlated'. As well as appearing to defy the standard theories of metals these systems quite often display striking magnetic phenomena. A particularly exciting aspect is that these phenomena offer us excellent opportunities for technological development. Indeed, several new correlated electron systems discovered in the last few decades have been adapted for solid state devices. Examples include substations for mobile phone networks that incorporate the high-Tc cuprate superconductors and new magnetic read head technologies that exploit the giant magnetoresistance properties of the Fe/Cr/Fe trilayers. This scientific research proposal is centred on producing and studying exotic materials with the goal of discovering new correlated electron quantum states. It focuses two unexplored families of materials, the niobates and iridates that we believe should provide new and interesting avenues of research in the correlated electron field. The research is fundamental in nature but benefits from a very clear connection to electronic device development since new electronic quantum phenomena offer excellent opportunities for applied science.On a broader view, the physics of materials represents a new frontier for scientific pioneering. Physicists are analogous to the intrepid explorers who, in their thirst for discovery and adventure, set out to explore and map the world. In their course of their adventures, those pioneers discovered some startling facts about our planet that challenged many long-held conceptual viewpoints, for example the world was not flat, as had been previously supposed, but spherical. In a similar manner (although with considerably less danger!), we hope to uncover exciting new phenomena that challenge our current perceptions of nature and enhance our understanding of the universe that we live in. It is this thrill of discovery that drives people in materials physics to explore and quantify strange new compounds that will hopefully one day benefit all.
Organisations
People |
ORCID iD |
Robin Perry (Principal Investigator) |
Publications

Allan M
(2013)
Formation of heavy d-electron quasiparticles in Sr 3 Ru 2 O 7
in New Journal of Physics

Battisti I
(2016)
Universality of pseudogap and emergent order in lightly doped Mott insulators
in Nature Physics

Battisti I
(2020)
Direct comparison of ARPES, STM, and quantum oscillation data for band structure determination in Sr2RhO4
in npj Quantum Materials


Borzi R
(2011)
Hall coefficient anomaly in the low-temperature high-field phase of Sr 3 Ru 2 O 7
in Physical Review B

Boseggia S
(2013)
Robustness of basal-plane antiferromagnetic order and the J(eff)=1/2 state in single-layer iridate spin-orbit Mott insulators.
in Physical review letters

Boseggia S
(2013)
Locking of iridium magnetic moments to the correlated rotation of oxygen octahedra in Sr2IrO4 revealed by x-ray resonant scattering.
in Journal of physics. Condensed matter : an Institute of Physics journal

Brodsky DO
(2017)
Strain and vector magnetic field tuning of the anomalous phase in Sr3Ru2O7.
in Science advances

Bruin J
(2013)
Study of the electronic nematic phase of Sr 3 Ru 2 O 7 with precise control of the applied magnetic field vector
in Physical Review B

Bruin JA
(2013)
Similarity of scattering rates in metals showing T-linear resistivity.
in Science (New York, N.Y.)
Description | We have determined the optimal conditions for the crystal growth of Sr2IrO4 and Sr3Ru2O7 by flux growth. Furthermore, we have developed methods for electron doping the crystals by adding lanthanum. This development has enabled unprecedented ARPES studies at Diamond in collaboration with F.Baumberger (Geneva) to study the collapse of the Mott state as a function of temperature and doping furthering our understanding of the electronic correlations in these materials. We have also pursued spectroscopic STM measurements in collaboration with M.Allan (Leiden) probing the electronic state around dopant atoms to produce definitive evidence of a pseudogap phase commonly observed in the cuprate superconductors. Pressure studies of both materials were undertaken at Diamond in collaboration with D.McMorrow (UCL). Novel structural phase transitions were discovered above 60 GPa relating to an unusual slide in the perovskite lattice planes. Work is continuing on the issue. Resonant Elastic and Inelastic X-ray studies have been made on the crystals at Diamond and ESRF in collaboration with D.McMorrow. Highlights of these measurements include determination of the ground state Hamiltonians of the systems and observation of critical scattering. |
Exploitation Route | Our work (continuing) has provided the definitive determination of the ground state of the materials. These materials are valuable due to their structural and electronic similarity with the cuprate high temperature superconductors. We expect theorists to use our results to model the system and so provide quantitative comparisons with the cuprate materials. The cuprates are one of the major unsolved problems in condensed matter physics. |
Sectors | Digital/Communication/Information Technologies (including Software) Electronics Energy |
Description | EPSRC responsive mode |
Amount | £567,000 (GBP) |
Funding ID | EP/N034694/1 |
Organisation | Engineering and Physical Sciences Research Council (EPSRC) |
Sector | Public |
Country | United Kingdom |
Start | 11/2016 |
End | 10/2019 |