FP6Individual fellowship2005–2007

SMS-STM · Single molecule on surfaces: manipulation and study of chemical, electronic and vibrational properties with a low temperature ultra high vacuum scanning tunnelling microscopy

FP6 — Marie Curie Actions (Human Resources and Mobility)

Duration
2005-04-15 → 2007-10-14
EU contribution
€207,562
Participants
2
Scheme
OIF

Lines connect the coordinator with its partners.

Results in brief

Final Activity Report Summary - SMS-STM (Single molecule on surfaces: manipulation and study of chemical, electronic and vibrational properties with Ultra High Vacuum Scanning Tunnelling microscopy)

The central idea of the project has been the study of chemical, electronic and vibrational properties of adsorbates on metals studied at a single-molecule level. This information can only be obtained by means of low temperature scanning tunnelling microscopy (LT-STM). Two different LT-STM systems have been used throughout the project, both with an optimised design for performing single-molecule manipulation and spectroscopy. The first one, home-built by the same author, and a second commercial one installed in the returning institution. The first study has been focused on a detailed understanding of the adsorption configuration and stability of water on the clean and C and O precovered Ru(0001) surface. The results clarify long standing controversies about whether water adsorbs intact or dissociatively on the clean surface and its exact configuration. The most recent predictions of a thermally activated partial dissociation were confirmed. In addition, molecular-resolution images revealed an intriguing and complex structure of the mixed water-hydroxyl phase, which provides crucial information about the reaction details. By acquiring an atomic level picture of the configuration and energy of water adsorption for different pre-adsorbed O coverage we have been able to explain the mechanism for the O coverage dependent transition from thermally activated dissociation to intact adsorption. Within this study, individual water molecules have been manipulated by exciting internal vibrational modes by inelastic electrons coming from / to the tip. In this way we could induce diffusion, dissociation, desorption, and controlled tip-surface transfer of the molecule. This controlled chemistry not only represents an elegant way of manipulating matter at the atomic scale, but also provide us with essential information about the energetics, adsorption sites and reaction products of the different paths involved in the reactions. The second study has been carried out in the returning institution, and consisted on the study of the electronic properties of different molecular and atomic adsorbates deposited on metallic surfaces. In particular, we have focused on the many-body interaction between the spin-polarised localised states of magnetic adsorbates and the free electrons of the host substrate, known as the Kondo effect. As magnetic adsorbates, we have studied atomic Co impurities and metallorganic molecules such as Co or Fe phthalocyanines (Co / Fe-Pc). By doing local spectroscopic measurements, we have studied the lateral localization of the Kondo related peak along the magnetic impurity, and the effect of the adsorption configuration and the presence of other impurities on the Kondo interaction. In particular, we have been able to follow the evolution of the Kondo feature as we chemically transform the molecule with the STM tip. These experiments are part of a more general study consisting on the controlled modification of the electronic and magnetic properties of atoms and molecules adsorbed on a surface.

Data: CORDIS, © European Union

Project objective

This project consists on the study of the interaction of single molecules on surfaces and their manipulation with a Low Temperature Ultra High Vacuum Scanning Tunnelling Microscopy (LT UHV STM). In order to study the interaction between single molecules, t he electronic and vibrational properties of individually selected and targeted molecules will be measured.The project can be divided into two parts: The first part, carried out during the outgoing phase of the project, will be dedicated to study the interaction of water with different systems. First, the interaction of water with hydrophobic and hydrophylic molecules will be studied in order to understand the wetting of water at the molecular level. After that, the interaction of water molecules with biological molecules such as aminoacids and nucleotides will be studied. The exact atomic positions at the water-adsorbate and water-surface interfaces will be determined by means of electronic and vibrational spectroscopy and arranging a controlled environment by manipulating the molecules with the STM tip.The second part, carried out in the re-integration phase, will consist on the study of the electronic properties of nano-objects, focusing on single organic molecules that can be used in molecular electronics. The main part of the project will consist on how these are integrated into the electronic devices, i.e. the interface between the molecules and the leads. In order to understand the effect of the leads on the electronic properties of the molecules, a precise analysis is needed at the atomic scale, and LT UHV STM has proved so far to be the only technique capable of relating in-situ atomic structure to electronic properties. The interest of the project covers a large number of fields, such as nanoelectronics , nanocatalysis, biophysics or environmental science.

Original text from CORDIS.

Participants

  • CONSEJO SUPERIOR DE INVESTIGACIONES CIENTIFICAS · MADRIDCoordinatorSpain
  • LAWRENCE BERKELEY NATIONAL LABORATORY · BERKELEY, CAUnited States

Links

Data: CORDIS, © European Union