STMOLTRANSTS · Probing single molecule-metal contacts and electronic transport by STM-STS
6РП — Действия „Мария Кюри“
- Период
- 2006-10-18 → 2008-10-17
- Финансиране от ЕС
- 149 155 €
- Участници
- 1
- Схема
- EIF
Линиите свързват координатора с партньорите. За проекти отпреди 2014 г. CORDIS не винаги дава точни координати. Тези точки са на ниво град или държава.
Накратко на български
Електрическият транспорт през единични молекули и наноструктури върху метални или изолиращи повърхности се анализира с помощта на сканиращ тунелен микроскоп. Това помага за разбирането на електронните свойства, magnetisma и свръхпроводността на материята на атомно ниво.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Final Activity Report Summary - STMolTranSTS (Probing single molecule-metal contacts and electronic transport by STM-STS)
The project aimed to obtain a microscopic understanding of the transport through single molecules and nanostructures in atomistically controlled environments. In order to accomplish this aim it was mandatory to acquire an excellence control of the atomistic structure of the electrode surface and the molecular or nanostructure adsorption geometry. This goal was achieved by combining in situ analysis with scanning tunnelling microscopy at very low temperatures, less than one Kelvin, and ultra-high-vacuum preparation techniques. This unique combination provided us an atomistic control of the shape and cleanness of the molecules and nanostructures studied and allowed us to investigate their local electronic properties, e.g. transport, superconductivity and magnetism, with ultimate energy resolution. During this project we characterised the electronic transport through single molecules and nanostructures adsorbed at metal and insulating surfaces using the tip of a scanning tunnelling microscope (STM) as a second electrode. The most important scientific achievements made during the project can be summarised as follows: 1. optimisation of the performance of the experimental system, a step which was crucial for the excellence of the results achieved in the project. 2. control at the atomic scale of the environment where the individual molecules and nanostructures were deposited or grown. We proved that the exceptional electronic properties of the boron nitride (BN) nanomesh and of epitaxatial graphene on SiC made these two substrates ideal hosts to adsorb single molecules and nanostructures. 3. controlled deposition and characterisation of the molecules on the different substrates. We overcame the challenge of depositing complex functional molecules by means of electrospray ionisation. Thanks to this pioneering methodology we were able, for the first time, to bring the spin crossover complex [Fe(bpp)2]2+ intact into a surface. 4. study of the electronic properties of isolated superconducting and magnetic nanostructures. With the combination of very low temperature ultra high vacuum (UHV)-STM experiments with in situ growth of clean isolated superconducting Pb and Sn nanoparticles on top of a BN ultrathin insulating spacer layer, we were able to study for the first time the evolution of superconductivity in isolated single superconducting nanoparticles as a function of size and temperature.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The aim of this project is to investigate the electronic transport through a single molecule bonded to a metallic electrode by local probe spectroscopy at low temperatures (0.5-6K) in atomistically controlled environments.We want to complement morphology, electronic and vibrational structure of the molecules obtained by scanning tunnelling microscopy/spectroscopy by transport properties extracted from point contact spectroscopy.The direct comparison of point contact spectra with tunnelling spectra offers a unique opportunity to deepen our understanding of the role played by the electronic and vibrational excitations in molecular electronic transport, and to get insight into the determining influence of the molecule-metal contacts.Our research will focus on molecules, which can be considered as good candidates for the realization of an electronic switch. To this end, functional molecules with structural and/or electronic/magnetic bistability will be attached to a metal surface via carboxylate bonding.We aim t o characterize the metal-molecule contact and also to tune the electronic transport through manipulation of the local contact environment. Another important issue, which will be addressed in our investigation is the influence of magnetic interactions in the transport through a molecular wire, more specifically, we will focus on spin-polarized transport of electrons through single molecules and in the Kondo screening.With the realization of this project we expect to get insight into the microscopic understanding of the electronic transport through a single molecule bonded to a metal, which is crucial in order to be able to employ molecules as electronic components at the molecular scale.Moreover, the training objectives of the project will complement and ext end the applicants previous research experience resulting in a significant boost of his scientific career.
Оригинален текст от CORDIS (на английски).
Участници
- MAX-PLANCK-GESELLSCHAFT ZUR FOEDERUNG DER WISSENSCHAFTEN E. V., MAX-PLANCK-INSTITUTE FUR FESTKORPERFORSCHUNG · MUNICHКоординаторНиво градГермания
Връзки
Данни: CORDIS, © Европейски съюз
