Professor of Chemical Physics

The self-assembly of complex mesoscopic structures, the folding of proteins, and the complicated phenomenology of glasses are all manifestations of the underlying potential energy surface (PES). In each of these fields related ideas have emerged to explain and predict chemical and physical properties in terms of the PES. In studies of clusters and glasses the PES itself is often investigated directly, whereas for proteins and other biomolecules it is also common to define free energy surfaces, as the figure below illustrates for lysozyme.

Applications of energy landscape theory in my group range from studies of tunnelling splitting patterns in small molecules to computer simulation of protein folding and misfolding, including aggregation of misfolded proteins. Other active research topics include global optimisation and investigation of how the thermodynamic and dynamic properties of glasses are related to the underlying PES.

Two recent advances are now providing new insight into larger systems. Discrete path sampling enables dynamical properties to be obtained efficiently, and is being used to calculate folding rates for proteins. Unexpected connections between dynamics and thermodynamics have also been revealed by the application of catastrophe theory to energy landscapes, and new results are now being obtained to characterize phase transitions.

Publications

Dynamics of a molecular glass former: Energy landscapes for diffusion in ortho-terphenyl.
SP Niblett, VK de Souza, JD Stevenson, DJ Wales
The Journal of Chemical Physics
(2016)
145
Kinetic Transition Networks for the Thomson Problem and Smale's Seventh Problem
D Mehta, J Chen, DZ Chen, H Kusumaatmaja, DJ Wales
Physical review letters
(2016)
117
The potential energy landscape for crystallisation of a Lennard-Jones fluid
VK de Souza, DJ Wales
Journal of Statistical Mechanics Theory and Experiment
(2016)
2016
Energy landscapes for a machine-learning prediction of patient discharge
R Das, DJ Wales
Phys Rev E
(2016)
93
Conformational Energy Landscape of the Ritonavir Molecule
D Chakraborty, N Sengupta, DJ Wales
The Journal of Physical Chemistry B
(2016)
120
Dynamical properties of two- and three-dimensional colloidal clusters of six particles.
B Fačkovec, JWR Morgan, DJ Wales
Physical chemistry chemical physics : PCCP
(2016)
18
Energy landscapes for a machine learning application to series data.
AJ Ballard, JD Stevenson, R Das, DJ Wales
Journal of Chemical Physics
(2016)
144
Quantum tunneling splittings from path-integral molecular dynamics.
E Mátyus, DJ Wales, SC Althorpe
Journal of Chemical Physics
(2016)
144
Concerted hydrogen-bond breaking by quantum tunneling in the water hexamer prism.
JO Richardson, C Pérez, S Lobsiger, AA Reid, B Temelso, GC Shields, Z Kisiel, DJ Wales, BH Pate, SC Althorpe
Science (New York, N.Y.)
(2016)
351
Energy landscapes and persistent minima
JM Carr, D Mazauric, F Cazals, DJ Wales
The Journal of Chemical Physics
(2016)
144

Head of group

Research Interest Groups

Telephone number

01223 336354

Email address

Upcoming Events

Energy Landscapes 2026 Telluride

Click on an image to view animations from Energy Landscapes of Model Knotted Polymers, Journal of Chemical Theory and Computation, Tongfan Hao, Yinghao Ge, Mark A. Miller, Agustin L. N. Francesco, David J. Wales, DOI 10.1021/acs.jctc.5c01005

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