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CMP
Credit: Jack Hobhouse

David Keen

Visiting Professor

Sub department

  • Condensed Matter Physics

Research groups

  • X-ray and neutron scattering
david.keen@physics.ox.ac.uk
Telephone: 01865 (2)72310
Clarendon Laboratory, room 106
  • About
  • Publications

Multivariate analysis of disorder in metal鈥搊rganic frameworks

Nature Communications Nature Research 13:1 (2022) 2173

Authors:

Adam F Sapnik, Irene Bechis, Alice M Bumstead, Timothy Johnson, Philip A Chater, David A Keen, Kim E Jelfs, Thomas D Bennett

Abstract:

The rational design of disordered frameworks is an appealing route to target functional materials. However, intentional realisation of such materials relies on our ability to readily characterise and quantify structural disorder. Here, we use multivariate analysis of pair distribution functions to fingerprint and quantify the disorder within a series of compositionally identical metal鈥搊rganic frameworks, possessing different crystalline, disordered, and amorphous structures. We find this approach can provide powerful insight into the kinetics and mechanism of structural collapse that links these materials. Our methodology is also extended to a very different system, namely the melting of a zeolitic imidazolate framework, to demonstrate the potential generality of this approach across many areas of disordered structural chemistry.JM11106 EPSRC iCASE Fundin

Atomic-Spring-like Effect in Glassy Silica-Helium Composites

The Journal of Physical Chemistry C American Chemical Society (ACS) 126:12 (2022) 5722-5727

Authors:

Daniel T Bowron, David A Keen, Mathieu Kint, Coralie Weigel, Benoit Ruffle, Leszek Konczewicz, Sylvie Contreras, Benoit Coasne, Gaston Garbarino, Mickael Beaudhuin, Julien Haines, Je虂ro虃me Rouquette

Post-Synthetic Modification of a Metal鈥揙rganic Framework Glass

Chemistry of Materials American Chemical Society (ACS) 34:5 (2022) 2187-2196

Authors:

Alice M Bumstead, Ignas Pakamore虈, Kieran D Richards, Michael F Thorne, Sophia S Boyadjieva, Celia Castillo-Blas, Lauren N McHugh, Adam F Sapnik, Dean S Keeble, David A Keen, Rachel C Evans, Ross S Forgan, Thomas D Bennett

Principles of melting in hybrid organic鈥搃norganic perovskite and polymorphic ABX 3 structures

Chemical Science Royal Society of Chemistry 13:7 (2022) 2033-2042

Authors:

Bikash Kumar Shaw, Celia Castillo-Blas, Michael F Thorne, Mar铆a Laura R铆os G贸mez, Tom Forrest, Maria Diaz Lopez, Philip A Chater, Lauren N McHugh, David A Keen, Thomas D Bennett

Abstract:

Increasing the size of the A-site cation from (C3H7)4N 鈫 (C4H9)4N 鈫 (C5H11)4N in hybrid organic鈥搃norganic ABX3 structures was observed to result in a decrease in Tm, through an increase in 螖Sf.

Neutron powder diffraction study of the phase transitions in deuterated methylammonium lead iodide

Journal of Physics: Condensed Matter IOP Publishing 34:14 (2022) 145401-145401

Authors:

Jiaxun Liu, Juan Du, Anthony E Phillips, Peter B Wyatt, David A Keen, Martin T Dove

Abstract:

Abstract We report the results of a neutron powder diffraction study of the phase transitions in deuterated methylammonium lead iodide, with a focus on the system of orientational distortions of the framework of PbI6 octahedra. The results are analysed in terms of symmetry-adapted lattice strains and normal mode distortions. The higher-temperature cubic鈥搕etragonal phase transition at 327聽K is weakly discontinuous and nearly tricritical. The variations of rotation angles and spontaneous strains with temperature are consistent with a standard Landau theory treatment. The lower-temperature transition to the orthorhombic phase at 165聽K is discontinuous, with two systems of octahedral rotations and internal distortions that together can be described by 5 order parameters of different symmetry. In this paper we quantify the various symmetry-breaking distortions and their variation with temperature, together with their relationship to the spontaneous strains, within the formalism of Landau theory. A number of curious results in the low-temperature phase are identified, particularly regarding distortion amplitudes that decrease rather than increase with lowering temperature.

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