Littérature scientifique sur le sujet « Ru(0001) interface »

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Articles de revues sur le sujet "Ru(0001) interface"

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Wasielewski, R., M. Grodzicki, J. Sito, K. Lament, P. Mazur et A. Ciszewski. « Ru/GaN(0001) Interface Properties ». Acta Physica Polonica A 132, no 2 (août 2017) : 354–57. http://dx.doi.org/10.12693/aphyspola.132.354.

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GODOWSKI, P. J., Z. S. LI, J. BORK et J. ONSGAARD. « STUDY OF THE Pt/Ru(0001) INTERFACE ». Surface Review and Letters 14, no 05 (octobre 2007) : 911–14. http://dx.doi.org/10.1142/s0218625x07010378.

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The growth process of platinum on Ru (0001) near room temperature was characterized using photoelectron spectroscopy of high resolution. The binding energy position and intensity of the Pt 4f7/2 and Ru 3d5/2 core levels as well as the shape and structure of the valence band spectra corresponding to the different stages of the deposition were analyzed. Up to ca. two adsorbate monolayers, the intensity changes of the peaks indicated layer-by-layer growth mode. The surface core level shifts of Ru and Pt levels were evaluated as -0.33 and -0.476 eV, respectively. The valence band spectra show a rather weak interaction between the d-bands of Pt and Ru .
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Wang, Changqing, Weiguang Chen et Jingpei Xie. « Effects of Transition Element Additions on the Interfacial Interaction and Electronic Structure of Al(111)/6H-SiC(0001) Interface : A First-Principles Study ». Materials 14, no 3 (29 janvier 2021) : 630. http://dx.doi.org/10.3390/ma14030630.

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In this work, the effects of 20 transition element additions on the interfacial adhesion energy and electronic structure of Al(111)/6H-SiC(0001) interfaces have been studied by the first-principles method. For pristine Al(111)/6H-SiC(0001) interfaces, both Si-terminated and C-terminated interfaces have covalent bond characteristics. The C-terminated interface has higher binding energy, which is mainly due to the stronger covalent bond formed by the larger charge transfer between C and Al. The results show that the introduction of many transition elements, such as 3d transitional group Mn, Fe, Co, Ni, Cu, Zn and 4d transitional group Tc, Ru, Rh, Pd, Ag, can improve the interfacial adhesion energy of the Si-terminated Al(111)/6H-SiC(0001) interface. However, for the C-terminated Al(111)/6H-SiC(0001) interface, only the addition of Co element can improve the interfacial adhesion energy. Bader charge analysis shows that the increase of interfacial binding energy is mainly attributed to more charge transfer.
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Tollefsen, H., E. O. Laastad, X. Yu et S. Raaen. « Initial oxidation of the Ce–Ru(0001) interface ». Philosophical Magazine 88, no 5 (11 février 2008) : 665–75. http://dx.doi.org/10.1080/14786430801946625.

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PROKOP, J., M. PRZYBYLSKI, T. SLEZAK et J. KORECKI. « NONMAGNETIC IRON LAYERS AT THE Fe/Ru INTERFACE ». Surface Review and Letters 04, no 06 (décembre 1997) : 1239–43. http://dx.doi.org/10.1142/s0218625x97001607.

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Magnetic dead layers near the Fe/Ru interface in iron films grown on Ru(0001) and in Fe/Ru multilayers have been reported previously. In this paper the CEMS analysis is applied to explain why these interfacial Fe atoms are nonmagnetic. The CEMS spectra of the uncoated bcc-Fe surface clearly show the ferromagnetic order. After covering with ruthenium, the characteristic changes in the conversion electron Mössbauer spectrum were observed, which indicate existence of a nonferromagnetic phase near the Fe/Ru interface. The measured value of the isomer shift of the interface component suggests that the bcc phase persists after covering of the Fe film with Ru.
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ANDERSEN, T. H., L. BECH, J. ONSGAARD, S. V. HOFFMANN et Z. LI. « HIGH RESOLUTION CORE LEVEL SPECTROSCOPY AT THE Cu/Ru(0001) INTERFACE ». Surface Review and Letters 09, no 02 (avril 2002) : 723–27. http://dx.doi.org/10.1142/s0218625x02002798.

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Copper adsorption on Ru(0001) has been studied by synchrotron radiation. The clean Ru 3d 5/2 spectra were found to consist of two components with a binding energy shift of 400 meV. The component with the lower binding energy represents the first layer of ruthenium atoms. Adsorption of copper gives rise to core level shifts of the Ru 3d 5/2 components, which were studied as a function of Cu coverage. Experiments were carried out with copper coverages varying from the submonolayer range up to two monolayers of copper. The binding energy of the Cu 2p 3/2 level was measured by X-ray photoemission spectroscopy.
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Jiang, De-en, Mao-Hua Du et Sheng Dai. « First principles study of the graphene/Ru(0001) interface ». Journal of Chemical Physics 130, no 7 (21 février 2009) : 074705. http://dx.doi.org/10.1063/1.3077295.

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Wang, Miao, Gang Liu, Min Huang, Yabo Fu, Changhong Lin, Jianbo Wu et Vladimir A. Levchenko. « Investigation of the Adhesion Strength, Fracture Toughness, and Stability of M/Cr2N and M/V2N (M = Ti, Ru, Ni, Pd, Al, Ag, and Cu) Interfaces Based on First-Principles Calculations ». Coatings 12, no 1 (7 janvier 2022) : 66. http://dx.doi.org/10.3390/coatings12010066.

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Obtaining detailed information regarding the interfacial characteristics of metal/hexagonal-TMN composites is imperative for developing these materials with optimal mechanical properties. To this end, we systematically investigate the work of adhesion, fracture toughness, and interfacial stability of M/Cr2N and M/V2N interfaces using first-principles calculations. The orientation (0001) of hexagonal phases and (111) of fcc phases are selected as the interface orientations. Accordingly, we construct M/Cr2N interface models by considering 1N, 2N, and Cr terminations of Cr2N(0001), as well as two stacking sequences (top and hollow sites) for the 1N- and 2N-terminated interface models, respectively. The M/V2N interface models are constructed in the same way. The V-terminated Ni/V2N interface is demonstrated to provide a good combination of the work of adhesion, fracture toughness, and interfacial stability. Therefore, the Ni/V2N interface model can be regarded as the preferred configuration among the metal/hexagonal-TMN interface models considered. The present results offer a practical perspective for tailoring the interfaces in metal/hexagonal-TMN composite materials to obtain improved mechanical properties.
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Godowski, P. J., J. Onsgaard, Z. Ryszka, Ł. Rok et Zhe Shen Li. « Phase transformations of the Pt/Ru(0001) interface studied by photoemission ». Surface Science 602, no 2 (janvier 2008) : 465–69. http://dx.doi.org/10.1016/j.susc.2007.10.038.

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Houston, J. E., J. M. White, P. J. Feibelman et D. R. Hamann. « Interface-state properties for strained-layer Ni adsorbed on Ru(0001) ». Physical Review B 38, no 17 (15 décembre 1988) : 12164–70. http://dx.doi.org/10.1103/physrevb.38.12164.

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Thèses sur le sujet "Ru(0001) interface"

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Lacovig, Paolo. « Electronic structure, morphology and chemical reactivity of nanoclusters and low-dimensional systems : fast photoemission spectroscopy studies ». Doctoral thesis, Università degli studi di Trieste, 2010. http://hdl.handle.net/10077/3685.

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2008/2009
L'obiettivo di questa tesi è l'applicazione della spettroscopia di fotoemissione allo studio di nanoparticelle supportate e di sistemi a bassa dimensionalità. Ad una primo periodo dedicato allo sviluppo del rivelatore e del software per un nuovo analizzatore d'energia per elettroni installato presso la linea di luce SuperESCA ad Elettra, è seguita una fase durante la quale ho eseguito una serie di esperimenti mirati ad esplorare le potenzialità del nuovo apparato sperimentale. Il primo risultato ottenuto riguarda la comprensione della relazione che intercorre tra le variazioni della reattività chimica del sistema Pd/Ru(0001) e il numero degli strati di Pd cresciuti in modo pseudomorfico sul substrato di rutenio. La risoluzione temporale raggiunta con la nuova strumentazione ci ha permesso di studiare processi dinamici su una scala temporale fino ad ora inaccessibile per la spettroscopia di fotoemissione dai livelli di core: in particolare abbiamo studiato la crescita del grafene ad alta temperatura sulla superficie (111) dell'iridio e la reattività chimica di nanocluster di Pt supportati su MgO. Nel primo caso abbiamo messo in evidenza come la formazione del grafene proceda attraverso la nucleazione di nano-isole di carbonio che assumono una peculiare forma di cupola. Nel secondo caso siamo riusciti a seguire sia la dinamica del processo di adsorbimento di CO, sia la reazione CO + 1/2 O2 -> CO2 sulle nanoparticelle di Pt depositate su un film ultra-sottile di ossido di magnesio. Infine, abbiamo caratterizzato la morfologia di nanoparticelle di Pd, Pt, Rh e Au cresciute su diversi substrati a base di carbonio, in particolare grafite, nanotubi a parete singola e grafene. Tra i vari risultati abbiamo compreso come l'interazione metallo-substrato dipenda dalla dimensione delle nano-particelle e abbiamo evidenziato il ruolo centrale dei difetti del substrato nei processi di nucleazione e intercalazione.
The objective of this thesis is the application of photoelectron spectroscopy for the investigation of supported nanoclusters and low-dimensional systems. After a first stage devoted to the development of the detector and the software for the electron energy analyser installed on the SuperESCA beamline at Elettra, during the PhD project I've performed a series of experiments aimed to explore the capabilities of the new experimental apparatus. One of the first results concerns the understanding of the relation between the modifications in the chemical reactivity of the Pd/Ru(0001) system and the thickness of the pseudomorphically grown Pd overlayer. The temporal resolution achieved with the new experimental set-up allowed us to study dynamical processes on a new time scale, in particular the graphene growth process at high temperature on the Ir(111) surface and the chemical reactivity of Pt nanoclusters supported on MgO. In the former case, we discovered that graphene formation proceeds via preliminary nucleation of dome-shaped C nano-islands. In the second case, we succeded in following both the dynamics of CO adsorption process and the CO + 1/2 O2 -> CO2 reaction on Pt nanoclusters grown on a ultra-thin film of magnesium oxide. Finally, the morphology of Pd, Pt, Rh and Au nanoclusers grown on different carbon-based substrates (namely graphite, single-walled carbon nanotubes and graphene) has been characterized. Among the results we report the understanding of the dependence of the metal-substrate interaction on the cluster size and the role of defects in the nucleation and intercalation processes.
XXII Ciclo
1972
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Chapitres de livres sur le sujet "Ru(0001) interface"

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Lewandowski, M., N. Michalak, Z. Miłosz, R. Ranecki, T. Luciński et S. Jurga. « Structure of Fe3O4(111) Films on Pt(111) and Ru(0001) : The Role of Epitaxial Strain at the Iron Oxide/Metal Single Crystal Interface ». Dans Nanoscience Advances in CBRN Agents Detection, Information and Energy Security, 319–24. Dordrecht : Springer Netherlands, 2014. http://dx.doi.org/10.1007/978-94-017-9697-2_32.

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George, S. M. « Surface Diffusion Measured Using Laser Induced Thermal Desorption : Hydrogen on Ru (001) ». Dans Diffusion at Interfaces : Microscopic Concepts, 2–18. Berlin, Heidelberg : Springer Berlin Heidelberg, 1988. http://dx.doi.org/10.1007/978-3-642-73632-2_1.

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Badyal, Jas Pal S., Andrew J. Gellman, Robert W. Judd et Richard M. Lambert. « Model Studies of the Smsi Phenomenon at the Tiox/Ru(0001) Interface ». Dans Structure and Reactivity of Surfaces, 19–30. Elsevier, 1989. http://dx.doi.org/10.1016/s0167-2991(08)60666-7.

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