Matthias Gutmann
Lead Research Organisation:
Science and Technology Facilities Council
Abstract
Materials are all around us and underpin our lifestyle and technology. Knowing their microscopic properties such as the
crystal, magnetic and electronic structures is of key importance, since this leads to new insights into the mechanisms
responsible for the macroscopic properties, which is required in order to develop materials for novel functionalities. The
structural/magnetic degrees of freedom responsible for the crystal/magnetic structure are usually determined by elastic
scattering, while the electronic degrees of freedom responsible for the electronic band structure are determined by inelastic
scattering experiments. The coupling of the electronic, structural and magnetic degrees of freedom (called also electronic-structural interplay) is responsible for macroscopic properties such as metallic, semiconducting or insulating states. Many
materials found in current technologies, such as ferroelectrics (finite polarization), multiferroics (finite polarization and
magnetization) and barocalorics (strong reversible thermic responses to pressure), are a direct consequence of the
electronic-structural interplay. Functionalities related to materials containing elements with unfilled d or f atomic shells
(called correlated materials), are a consequence of the temperature dependence of the electronic-structural interplay.
In this proposal we aim to study the electronic-structural interplay, at finite temperatures, in correlated materials using the
state of the art theoretical and experimental methods. We would also like to address the temperature dependence of the
electronic-structural interplay in order to get a better understanding of what is responsible for phase transitions, the
electronic or the structural degrees of freedom.
To achieve our goals, we are using the synergy of state-of-the-art experimental techniques at Rutherford laboratory (in
particular diffuse scattering), experimental and theoretical techniques applied to barocalorics (such as DFT and molecular
dynamics) through collaborations with the group of Prof. Felix Fernandez-Alonso based at the Materials Physics Center in
San Sebastian, Spain and theoretical techniques such as density functional theory plus embedded dynamical mean field
theory (DFT+eDMFT) through collaborations with the theory group of Prof. Gheorghe Lucian Pascut at Stefan cel Mare
University of Suceava, Romania.
Diffuse scattering is a rather novel technique providing detailed insights of the crystal collective vibrations or any type of
disorder inside the crystal, thus materials information such as the elastic tensor as well as the sound velocity.
DFT+eDMFT is our method of choice to study the electronic and magnetic properties of correlated materials. The recent
development of forces for structural relaxations at finite temperatures and the implementation of efficient ways to compute
the lattice vibrations, makes it the state-of-the-art method to study the electronic-structural interplay in correlated materials
and its temperature dependence.
The applicants novel experimental techniques are suitable for studies of many classes of materials, thus by visiting both the
group of Prof. Felix Fernandez-Alonso and the group of Prof. Gheorghe Lucian Pascut, is aiming to bring together
collaborators from different fields, such as ferroelectrics, multiferroics and barocalorics in order to shed new light on the old
subjects (ferroelectrics, multiferroics) and bring new insights on the current subjects (barocalorics). Recently, barocalorics
are of great interest in cooling applications with the potential to replace toxic refrigerants in the future. To close the triangle
and foster new collaborations, Prof. Gheorghe Lucian Pascut will also visit Prof. Felix Fernandez-Alonso's group at the
same time with the applicant. Secondary outcomes of these research visits are to generate new users for our facilities on
the Rutherford Appleton Laboratory campus.
crystal, magnetic and electronic structures is of key importance, since this leads to new insights into the mechanisms
responsible for the macroscopic properties, which is required in order to develop materials for novel functionalities. The
structural/magnetic degrees of freedom responsible for the crystal/magnetic structure are usually determined by elastic
scattering, while the electronic degrees of freedom responsible for the electronic band structure are determined by inelastic
scattering experiments. The coupling of the electronic, structural and magnetic degrees of freedom (called also electronic-structural interplay) is responsible for macroscopic properties such as metallic, semiconducting or insulating states. Many
materials found in current technologies, such as ferroelectrics (finite polarization), multiferroics (finite polarization and
magnetization) and barocalorics (strong reversible thermic responses to pressure), are a direct consequence of the
electronic-structural interplay. Functionalities related to materials containing elements with unfilled d or f atomic shells
(called correlated materials), are a consequence of the temperature dependence of the electronic-structural interplay.
In this proposal we aim to study the electronic-structural interplay, at finite temperatures, in correlated materials using the
state of the art theoretical and experimental methods. We would also like to address the temperature dependence of the
electronic-structural interplay in order to get a better understanding of what is responsible for phase transitions, the
electronic or the structural degrees of freedom.
To achieve our goals, we are using the synergy of state-of-the-art experimental techniques at Rutherford laboratory (in
particular diffuse scattering), experimental and theoretical techniques applied to barocalorics (such as DFT and molecular
dynamics) through collaborations with the group of Prof. Felix Fernandez-Alonso based at the Materials Physics Center in
San Sebastian, Spain and theoretical techniques such as density functional theory plus embedded dynamical mean field
theory (DFT+eDMFT) through collaborations with the theory group of Prof. Gheorghe Lucian Pascut at Stefan cel Mare
University of Suceava, Romania.
Diffuse scattering is a rather novel technique providing detailed insights of the crystal collective vibrations or any type of
disorder inside the crystal, thus materials information such as the elastic tensor as well as the sound velocity.
DFT+eDMFT is our method of choice to study the electronic and magnetic properties of correlated materials. The recent
development of forces for structural relaxations at finite temperatures and the implementation of efficient ways to compute
the lattice vibrations, makes it the state-of-the-art method to study the electronic-structural interplay in correlated materials
and its temperature dependence.
The applicants novel experimental techniques are suitable for studies of many classes of materials, thus by visiting both the
group of Prof. Felix Fernandez-Alonso and the group of Prof. Gheorghe Lucian Pascut, is aiming to bring together
collaborators from different fields, such as ferroelectrics, multiferroics and barocalorics in order to shed new light on the old
subjects (ferroelectrics, multiferroics) and bring new insights on the current subjects (barocalorics). Recently, barocalorics
are of great interest in cooling applications with the potential to replace toxic refrigerants in the future. To close the triangle
and foster new collaborations, Prof. Gheorghe Lucian Pascut will also visit Prof. Felix Fernandez-Alonso's group at the
same time with the applicant. Secondary outcomes of these research visits are to generate new users for our facilities on
the Rutherford Appleton Laboratory campus.
People |
ORCID iD |
| Matthias Gutmann (Principal Investigator) |
Publications
Gutmann M
(2025)
Anharmonic phonons in the high-temperature phase of KNiCl3
in Structural Dynamics
| Description | We have published a first paper on the high temperature phase of KNiCl3 where we show that anharmonic phonon-phonon interactions play an important role in the stabilisation of the crystal structure. Furthermore, the arrangements of the atoms in each crystallographic phase has been successfully determined. The stability of each phase is further supported by theoretical calculations. In particular, the so-called intermediate phase is shown to be associated with a maximum in the dielectric constant and electric polarisation. This is being written up suitable for publication at present. The magnetism in the synthetic mineral Fe3(PO3OH)4(H2O)4 has been determined using neutron diffraction. A paper is being written at present. For the determination of elastic constants using neutron diffraction good progress has been made to date. The key formulas have been identified to determine sound velocities for both the isotropic and anisotropic case. Work is in progress to get from here to the elastic constants. |
| Exploitation Route | The methodology to compute anharmonic phonons for a given material will likely be of more general interest to theoreticians working in this field. There are other compositions similar to KNiCl3 showing a similar sequence of phase transitions and the crystal structures obtained in our study may be directly relevant to these. The determination of elastic constants is still work in progress. Once completed, it can be readily applied by others. |
| Sectors | Chemicals Other |
| URL | https://pubs.aip.org/aca/sdy/article/12/5/054103/3368807/Anharmonic-phonons-in-the-high-temperature-phase |
| Description | Theoretical materials modelling |
| Organisation | University of Cambridge |
| Department | Department of Materials Science & Metallurgy |
| Country | United Kingdom |
| Sector | Academic/University |
| PI Contribution | We solved the crystal structures in the various crystallographic phases of KNiCl3. These were taken as input to theory calculations using density functional theory by the group in Cambridge. |
| Collaborator Contribution | The stability of the different phases as well as the origin of the structural phase transitions has been identified. |
| Impact | https://pubs.aip.org/aca/sdy/article/12/5/054103/3368807/Anharmonic-phonons-in-the-high-temperature-phase |
| Start Year | 2025 |