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Professor of Physical & Computational Surface Chemistry

Our research is focussed upon the application of first-principles theory and ultra-high-vacuum single-crystal experiments to problems in surface chemistry and catalysis. We make use of fibre-optic low-energy electron diffraction (FO-LEED) to obtain structural information, reflection absorption infra-red spectroscopy (RAIRS) to obtain vibrational information, single-crystal adsorption calorimetry (SCAC) to obtain energetic information, supersonic molecular beams (SMB) to obtain kinetic information, and low- temperature scanning tunnelling microscopy (LT-STM) to obtain morphological, topographic and electronic information about surfaces and the molecules that adsorb, diffuse and react upon them. Density functional theory (DFT) provides a framework within which to calculate comparable data, which aids in the interpretation of our experimental work.

Our work is concentrated within four main research themes:

  • complex interadsorbate interactions; 
  • nanoscale surface phenomena; 
  • chiral surface systems;
  • and tuning reactivity and catalysis.

Individual research projects are chosen to reflect these themes, lending coherence to a diverse range of topical studies. Thus, by way of example, our work on the adsorption of alanine on Cu{531} addresses issues relating to the formation of complex hydrogen-bonded adsorbate networks, whilst also shedding light on the interaction of chiral molecules with an intrinsically chiral metal surface; moreover, certain adsorbates can cause this unstable surface to break up into nanoscale facets, whose catalytic properties will differ markedly from those of the notionally ideal surface. Tackling these interlinked aspects of surface science requires a flexible approach, making use of multiple experimental techniques complemented by a rigorously benchmarked theoretical methodology.

Professor Jenkins discusses his research

Publications

Aromatic adsorption on metals via first-principles density functional theory
SJ Jenkins
– Proceedings of the Royal Society A
(2009)
465,
2949
Ozonolysis of diamond.
CK Fink, SJ Jenkins
– Journal of physics. Condensed matter : an Institute of Physics journal
(2009)
21,
264010
Anchoring sites for initial Au nucleation on ceo2{111}: o vacancy versus ce vacancy
C Zhang, A Michaelides, DA King, SJ Jenkins
– Journal of Physical Chemistry C
(2009)
113,
6411
Surface geometry of Cu{531}
G Jones, MJ Gladys, J Ottal, SJ Jenkins, G Held
– Physical Review B - Condensed Matter and Materials Physics
(2009)
79,
165420
Anchoring Sites for Initial Au Nucleation on CeO2{111}: O Vacancy versus Ce Vacancy
CJ Zhang, A Michaelides, DA King, SJ Jenkins
– The Journal of Physical Chemistry C
(2009)
113,
6411
Adsorbate influence on the coercive field of ultrathin Co/Cu{110}
DSD Gunn, D Kupper, SJ Jenkins, JAC Bland
– Surface Science
(2009)
603,
L45
Silicon oxidation by ozone.
CK Fink, K Nakamura, S Ichimura, SJ Jenkins
– Journal of Physics Condensed Matter
(2009)
21,
183001
Oxygen vacancy clusters on ceria: Decisive role of ceriumfelectrons
CJ Zhang, A Michaelides, DA King, SJ Jenkins
– Physical Review B
(2009)
79,
075433
Oxygen vacancy clusters on ceria: Decisive role of cerium f electrons
C Zhang, A Michaelides, DA King, SJ Jenkins
– Physical Review B - Condensed Matter and Materials Physics
(2009)
79,
Surface Stress of Stepped Chiral Metal Surfaces
M Blanco-Rey, SJ Pratt, SJ Jenkins
– Physical Review Letters
(2009)
102,
026102
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Research Interest Groups

Telephone number

01223 336502

Email address