Suppression of thermal conductivity by rattling modes in thermoelectric sodium cobaltate

Nature Materials 12:11 (2013) 1028-1032

Authors:

DJ Voneshen, K Refson, E Borissenko, M Krisch, A Bosak, A Piovano, E Cemal, M Enderle, MJ Gutmann, M Hoesch, M Roger, L Gannon, AT Boothroyd, S Uthayakumar, DG Porter, JP Goff

Abstract:

The need for both high electrical conductivity and low thermal conductivity creates a design conflict for thermoelectric systems, leading to the consideration of materials with complicated crystal structures. Rattling of ions in cages results in low thermal conductivity, but understanding the mechanism through studies of the phonon dispersion using momentum-resolved spectroscopy is made difficult by the complexity of the unit cells. We have performed inelastic X-ray and neutron scattering experiments that are in remarkable agreement with our first-principles density-functional calculations of the phonon dispersion for thermoelectric Na 0.8 CoO2, which has a large-period superstructure. We have directly observed an Einstein-like rattling mode at low energy, involving large anharmonic displacements of the sodium ions inside multi-vacancy clusters. These rattling modes suppress the thermal conductivity by a factor of six compared with vacancy-free NaCoO2. Our results will guide the design of the next generation of materials for applications in solid-state refrigerators and power recovery. © 2013 Macmillan Publishers Limited. All rights reserved.

The First 24 Years of Reverse Monte Carlo Modelling, Budapest, Hungary, 20–22 September 2012

Journal of Physics Condensed Matter IOP Publishing 25:45 (2013) 450301

Authors:

David A Keen, László Pusztai

Suppression of thermal conductivity by rattling modes in thermoelectric sodium cobaltate.

Nat Mater 12:11 (2013) 1028-1032

Authors:

DJ Voneshen, K Refson, E Borissenko, M Krisch, A Bosak, A Piovano, E Cemal, M Enderle, MJ Gutmann, M Hoesch, M Roger, L Gannon, AT Boothroyd, S Uthayakumar, DG Porter, JP Goff

Abstract:

The need for both high electrical conductivity and low thermal conductivity creates a design conflict for thermoelectric systems, leading to the consideration of materials with complicated crystal structures. Rattling of ions in cages results in low thermal conductivity, but understanding the mechanism through studies of the phonon dispersion using momentum-resolved spectroscopy is made difficult by the complexity of the unit cells. We have performed inelastic X-ray and neutron scattering experiments that are in remarkable agreement with our first-principles density-functional calculations of the phonon dispersion for thermoelectric Na(0.8)CoO2, which has a large-period superstructure. We have directly observed an Einstein-like rattling mode at low energy, involving large anharmonic displacements of the sodium ions inside multi-vacancy clusters. These rattling modes suppress the thermal conductivity by a factor of six compared with vacancy-free NaCoO2. Our results will guide the design of the next generation of materials for applications in solid-state refrigerators and power recovery.

Absence of strong magnetic fluctuations in FeP-based systems LaFePO and Sr₂ScO₃FeP.

J Phys Condens Matter 25:42 (2013) 425701

Authors:

AE Taylor, RA Ewings, TG Perring, DR Parker, J Ollivier, SJ Clarke, AT Boothroyd

Abstract:

We report neutron inelastic scattering measurements on polycrystalline LaFePO and Sr2ScO3FeP, two members of the iron phosphide families of superconductors. No evidence is found for any magnetic fluctuations in the spectrum of either material in the energy and wavevector ranges probed. Special attention is paid to the wavevector at which spin-density-wave-like fluctuations are seen in other iron-based superconductors. We estimate that the magnetic signal, if present, is at least a factor of four (Sr2ScO3FeP) or seven (LaFePO) smaller than in the related iron arsenide and chalcogenide superconductors. These results suggest that magnetic fluctuations are not as influential on the electronic properties of the iron phosphide systems as they are in other iron-based superconductors.

Coupling of the local defect and magnetic structure of wüstite Fe 1-xO

Physical Review B - Condensed Matter and Materials Physics 88:13 (2013)

Authors:

PJ Saines, MG Tucker, DA Keen, AK Cheetham, AL Goodwin

Abstract:

The local nuclear and magnetic structure of wüstite, Fe 1-xO, and the coupling between them, have been examined using reverse Monte Carlo refinements of variable-temperature neutron total scattering data. The results from this analysis suggest that the individual units in a tetrahedral defect cluster are connected along 〈110â Œ vectors into a Koch-Cohen-like arrangement, with the majority of octahedral vacancies concentrated near these defects. Bond valence calculations indicate a change in the charge distribution on the cations with the charge on the tetrahedral interstitials increasing on cooling. The magnetic structure is more complex than previously thought, corresponding to a noncollinear spin arrangement described by a superposition of a condensed spin wave on the established type-II antiferromagnetic ordering. This leads to an architecture with four groups of cations, each with different spin directions. The cations within the interstitial clusters appear to be weakly ferromagnetically coupled, and their spins are correlated to the spins of the octahedral cations closest to them. This work not only provides further insight into the local structure of wüstite but also enables a better understanding of the coupling between defect structures and magnetic and charge ordering in complex materials. © 2013 American Physical Society.