Academic literature on the topic 'Microscopie tunnel a balayage'
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Journal articles on the topic "Microscopie tunnel a balayage"
Dufour, J. P., E. Bourillot, and J. P. Goudonnet. "Etude et étalonnage des déplacements d'un tube piézoélectrique utilisé dans le systeme de balayage d'un microscope à effet tunnel." Journal de Physique III 1, no. 7 (July 1991): 1337–48. http://dx.doi.org/10.1051/jp3:1991193.
Full textSchmid, Rudolf, J. Wuest, D. Jeanmonod, M. Figeat-Hug, and R. Palese. "Morphologie florale: En microscopie electronique a balayage." Taxon 38, no. 3 (August 1989): 452. http://dx.doi.org/10.2307/1222292.
Full textSauvalle, A., and J. Izard. "Etude Comparee Du Meme Spermatozoide En Microscopie Optique Et En Microscopie Electronique A Balayage." Biology of the Cell 75, no. 3 (January 1992): 266. http://dx.doi.org/10.1016/0248-4900(92)90183-2.
Full textBryon, P. A., R. Delorme, and C. Souchier. "La microscopie confocale à balayage laser et ses applications hématologiques." Revue Française des Laboratoires 1995, no. 275 (April 1995): 37–43. http://dx.doi.org/10.1016/s0338-9898(95)80059-x.
Full textRiviere, M., M. Rautureau, G. Besson, M. Steinberg, and M. Amouri. "Complementarite des rayons X et de la microscopie electronique pour la determination des diverses phases d'une argile zincifere." Clay Minerals 20, no. 1 (March 1985): 53–67. http://dx.doi.org/10.1180/claymin.1985.020.1.05.
Full textFu, Bin, Huaye Jiang, Yanjun Che, Huilin Yang, and Zongping Luo. "Microanatomie du corps vertébral lombaire au moyen de la microscopie électronique à balayage." Revue de Chirurgie Orthopédique et Traumatologique 106, no. 4 (June 2020): 412. http://dx.doi.org/10.1016/j.rcot.2020.03.015.
Full textKahn, E. "Imagerie spectrale et analyse de séquences d’images en microscopie confocale à balayage laser." IRBM 28, no. 3-4 (September 2007): 107–16. http://dx.doi.org/10.1016/j.rbmret.2007.07.002.
Full textMortier, Eric, Stéphanie Jager, David Gerdolle, and Abdesselam Dahoun. "La microscopie électronique à balayage environnementale : application à l’observation des tissus dentaires minéralisés." Actualités Odonto-Stomatologiques, no. 255 (September 2011): 221–29. http://dx.doi.org/10.1051/aos/2011305.
Full textFoliguet, B., F. Vicari, J. C. Guedenet, J. D. De Korwin, L. Marchal, and G. Jeanvoine. "Dépistage duCampylobacter pylori en microscopie électronique à balayage Etude chez 1 200 patients." Acta Endoscopica 17, no. 5 (September 1987): 303–8. http://dx.doi.org/10.1007/bf02968456.
Full textDe Deyn, Gerlinde, Adriaan Van Aelst, and Gerrit Karssen. "Scanning electron microscopical observations on the coastal marine nematode Epsilonema pustulatum (Gerlach, 1952) Lorenzen, 1973 (Nematoda: Epsilonematidae)." Nematology 2, no. 6 (2000): 685–93. http://dx.doi.org/10.1163/156854100509547.
Full textDissertations / Theses on the topic "Microscopie tunnel a balayage"
La, Broïse Xavier de. "Calcul du courant en microscopie à effet tunnel." Lille 1, 1998. https://pepite-depot.univ-lille.fr/LIBRE/Th_Num/1998/50376-1998-243.pdf.
Full textGuaino, Philippe. "Du rôle de la surface dans l'émission de lumière induite par STM." Aix-Marseille 2, 2001. http://www.theses.fr/2001AIX22090.
Full textLavigne, Claude. "Etude et réalisation d'un nouvel ensemble microscopique à effet tunnel et microscope à force atomique." Châtenay-Malabry, Ecole centrale de Paris, 1993. http://www.theses.fr/1993ECAP0334.
Full textPelletier, Sylvain. "Etude de l'interface siliciure d'erbium sur silicium par microscopie en champ proche à effet tunnel sous ultravide." Besançon, 1999. http://www.theses.fr/1999BESA2060.
Full textWe studied the growth of Er compounds on Si(111) 7x7, boron doped Si(111) and Ge(111) c(2x8) surfaces using STM. The invistigation of the Er/Si(111) system revealed a very complex interface with numerous silicides and a growth mode layer-by-layer. Two stable silicides phases are detected : a two-dimensional ErSi2 1x1 and a 3 dimensional ErSi1,7 √3x√3 R30° silicides. There is a critical Er adatom density for the formation of 2D ErSi2 silicide upon Er reaction with Si(111) 7x7. Below this density, several Er induced metastable reconstructions like 5x2 and 2√3x2√3 R30° have been observed. In order to clarify the influence of the surface reactivity on the Er silicide growth, we deposited Er on highly boron-doped silicon(111) substrate. The surface reactivity can thus be adjusted by the boron concentration at the interface. When the boron concentration is weak, the erbium silicides are similar to those on the high reactive Si(111) 7x7. For highly boron-doped surface, the metastable phases disappear. ISS and ARUPS investigations performed on this system showed that no noticeable substitution of boron occurs from the substrate to the silicide. Furthermore, this silicide presents a crystallographic structure similar to that of the 2D silicide on Si(111) 7x7. Its surfaces is metallic. High-resolution STM images clearly reveal a defected 1x1 reconstruction on the 2D silicide. At the interface, the boron atoms induce local strain, which is due to the difference in covalent atomic radius between boron and silicon. We also investigated the Er/Ge(111) interface. We found that Er reacts with Ge(111) c(2x8) reconstruction and forms either 2D germanide with a 1x1 surface periodicity or a 3D germanide with a √3x√3 R30° bulk periodicity. This close similarity between Er/Ge(111) and Er/Si(111) systems suggest that the crystallographic structure of this ErGex alloys is close to that of the 2D ErSi2 and 3D ErSi1. 7 silicides
Sivel, Valérie. "Emission photonique en microscopie à effet tunnel dans l'air." Toulouse 3, 1994. http://www.theses.fr/1994TOU30156.
Full textChahboun, Adil. "Etude d'électrons balistiques en microscopie à effet tunnel et autres applications en microscopie à champ proche." Toulouse 3, 1992. http://www.theses.fr/1992TOU30212.
Full textBakhma, Amina. "Conception, synthèse et caractérisation de tectons Janus pour le contrôle d’auto-assemblages moléculaires tridimensionnels fonctionnels sur HOPG." Paris 6, 2012. http://www.theses.fr/2012PA066718.
Full textThe nanostructuration of surfaces by self-assembly of organic molecules (tectons) is an area that has been the subject of numerous studies in recent years. If the control of the organization is a major issue in the field of nanoscience, the maintaining of the integrity of the electronic properties of adsorbed compounds by allowing the decoupling of functional entities from metallic surfaces is essential for some applications. In this context, a new approach (Janus tecton) combining not only the control of the 2D organization but also the control of the organization in the direction perpendicular to the substrate, the third dimension, in order to decouple the molecules from their substrate has been developed. In this manuscript, we take advantage from previous concept of « Janus tectons » to put off the plan of the substrate photoactive compounds (chromophores) in order to obtain electronic or optoelectronic properties specific, and to study them by scanning tunneling microscopy (STM). Therefore, we synthesized originals pi-conjugated compounds containing two faces (A and B) connected by rigid bridge (pillar). The face A is designed to guide the 2D self-assembly on substrate of graphite HOPG (Highly Oriented Graphite Pyrolitic) and the face B is a functional entity (chromophore) to expose out of the plane in order to decouple it from the substrate and to preserve the electronic properties. One of the main criteria allowing the decoupling requires that the chromophore attached at the top of the pillar present an optical gap smaller than that of the base to prevent the excitation by energy transfer. To do this we have chosen as chromophores the oligothiophenes of varying size. The formation of 3D molecular nanostructures self-assembled well defined was obtained. The formation of 3D molecular nanostructures self-assembled well-defined was obtained for each of these compounds and a decoupling by nano-pillar has been observed for the compound containing six thiophene units as functional entity
Grandidier, Bruno. "Contribution à l'étude de faces clivées (110) de semiconducteurs III-V par spectroscopie STM en UHV : application au dopage planaire de silicium dans GaAs." Lille 1, 1997. http://www.theses.fr/1997LIL10112.
Full textWang, Chang Cun. "Caractérisation quantitative par l'analyse des images en microscopie en champs proche des systèmes de charges et élastomères." Mulhouse, 2002. http://www.theses.fr/2002MULH0693.
Full textColas, Antoine. "Conception, synthèse et caractérisation de tecton Janus photoisomérisables aptes à l'auto-assemblage sur HOPG : vers le développment de trappes optiques." Paris 6, 2013. http://www.theses.fr/2013PA066026.
Full textThe nanostructuring of surfaces by supramolecular self-assembly of organic molecules enables the creation of nano-porous networks and controlling the opening/closing of these cavities is still a challenge. Recently, a new approach has been developed that combines the 2D self-assembly into a nano-porous network and the control of the organization in the third dimension (Janus tecton concept). Herein, this concept was used to place a photoswitch above cavities. The azobenzenes were chosen as photoswitch. Five Janus tectons were then designed, synthesized and characterized. They are made of two decks linked by a dithia-[3. 3]cyclophane bridge. The lower deck (identical for each compound) leads to the 2D self-assembly on HOPG into a nano-porous network. Each upper deck was designed to incorporate an azobenzene with intrinsic photoisomerization properties and possessing an optical gap smaller than the one of the lower deck to avoid loss of optical properties. The photoisomerization in solution was observed and the self-assembly on HOPG was demonstrated by Scanning Tunneling Microscopy (STM) at the liquid/solid interface. Moreover, the addition of hexabenzocoronene type guest molecules into the Janus tecton nano-porous network has proven its host-guest properties. Finally the photoisomerization on HOPG was highlighted with the STM study of the optimal Janus tecton (photoisomerization time in solution appropriate for STM study and easily observable self-assembly on HOPG surface). Ongoing studies focus on controlling the access of guest molecules to the cavities via cis-trans photoisomerization of the azobenzenes
Books on the topic "Microscopie tunnel a balayage"
Sarid, Dror. Scanning force microscopy: With applications to electric, magnetic, and atomic forces. New York: Oxford University Press, 1994.
Find full textJ, Bard Allen, and Mirkin Michael V. 1961-, eds. Scanning electrochemical microscopy. New York: Marcel Dekker, 2001.
Find full textR, Oltra, European Federation of Corrosion, and Institute of Materials, Minerals, and Mining., eds. Local probe techniques for corrosion research. Cambridge: Woodhead for European Federation of Corrosion on behalf of Institute of Materials, Minerals & Mining, 2007.
Find full textReimer, Ludwig. Scanning electron microscopy: Physics of image formation and microanalysis. 2nd ed. Berlin: Springer, 1998.
Find full textR, Lindström, European Federation of Corrosion, and Institute of Materials, Minerals, and Mining., eds. The use of electrochemical scanning tunnelling microscopy (EC-STM) in corrosion analysis: Reference material and procedural guidelines. Cambridge, England: Woodhead, 2007.
Find full textToca-Herrera, José L. (José Luis), 1967-, ed. Hybridizing surface probe microscopies: Towards a full description of the meso- and nanoworlds. Boca Raton: CRC Press, 2013.
Find full textKlein, L., R. Lindstrom, and V. Maurice. The Use of Electrochemical Scanning Tunnel Microscopy (Ec-stm) in Corrosion Analysis: Reference Material and Procedural Guidelines (Efc 44) (EFC). Woodhead Publishing Ltd, 2006.
Find full textIntroduction to Scanning Transmission Electron Microscopy. Taylor & Francis Group, 2018.
Find full textKeyse, Robert. Introduction to Scanning Transmission Electron Microscopy. CRC Press LLC, 2018.
Find full textBook chapters on the topic "Microscopie tunnel a balayage"
Brisset, François, Florence Robaut, Guillaume Wille, Philippe Jonnard, Jacky Ruste, Denis Boivin, Georges Slodzian, D. Blavette, and E. Cadel. "16 . Division Groupement National de Microscopie Électronique à Balayage et microAnalyse (GN-MEBA)." In Les 150 ans de la Société Française de Physique, 257–65. EDP Sciences, 2023. http://dx.doi.org/10.1051/978-2-7598-3076-3.c017.
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