Academic literature on the topic 'Adsorption de la lumière parasite'
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Journal articles on the topic "Adsorption de la lumière parasite"
Karadimas, Dimitri. "Tlaloc, le dieu parasite." Recherches amérindiennes au Québec 47, no. 2-3 (June 12, 2018): 35–46. http://dx.doi.org/10.7202/1048594ar.
Full textBerrada Rkhami, O., and C. Gabrion. "Synchronisation par la lumière de l’éclosion des larves de deux espèces de Bothriocéphales." Annales de Parasitologie Humaine et Comparée 61, no. 2 (1986): 255–60. http://dx.doi.org/10.1051/parasite/1986612255.
Full textTardieux, Isabelle. "Lumière sur le « twist » final du parasite Toxoplasma pour envahir sa cellule hôte nourricière." médecine/sciences 35, no. 2 (February 2019): 109–12. http://dx.doi.org/10.1051/medsci/2019013.
Full textRoychoudhury, Pavitra, Neelima Shrestha, Valorie R. Wiss, and Stephen M. Krone. "Fitness benefits of low infectivity in a spatially structured population of bacteriophages." Proceedings of the Royal Society B: Biological Sciences 281, no. 1774 (January 7, 2014): 20132563. http://dx.doi.org/10.1098/rspb.2013.2563.
Full textAllan, J. C., and P. S. Craig. "Partial characterization and time course analysis of Hymenolepis diminuta coproantigens." Journal of Helminthology 68, no. 2 (June 1994): 97–103. http://dx.doi.org/10.1017/s0022149x00013596.
Full textThiramanas, Raweewan, Rujira Wanotayan, Sakon Rahong, Kulachart Jangpatarapongsa, Pramuan Tangboriboonrat, and Duangporn Polpanich. "Improving Malaria Diagnosis via Latex Immunoagglutination Assay in Microfluidic Device." Advanced Materials Research 93-94 (January 2010): 292–95. http://dx.doi.org/10.4028/www.scientific.net/amr.93-94.292.
Full textBarreiro-Costa, Olalla, Gabriela Morales-Noboa, Patricio Rojas-Silva, Eliana Lara-Barba, Javier Santamaría-Aguirre, Natalia Bailón-Moscoso, Juan Carlos Romero-Benavides, et al. "Synthesis and Evaluation of Biological Activities of Bis(spiropyrazolone)cyclopropanes: A Potential Application against Leishmaniasis." Molecules 26, no. 16 (August 17, 2021): 4960. http://dx.doi.org/10.3390/molecules26164960.
Full textPathak, Sulabha, K. Rajeshwari, Swati Garg, Sudarsan Rajagopal, Kalpesh Patel, Bidyut Das, Sylviane Pied, Balachandran Ravindran, and Shobhona Sharma. "PlasmodiumRiboprotein PfP0 Induces a Deviant Humoral Immune Response in Balb/cMice." Journal of Biomedicine and Biotechnology 2012 (2012): 1–11. http://dx.doi.org/10.1155/2012/695843.
Full textCampos-Neto, Antonio, Isabelle Suffia, Karen A. Cavassani, Shyian Jen, Kay Greeson, Pamela Ovendale, João S. Silva, Steven G. Reed, and Yasir A. W. Skeiky. "Cloning and Characterization of a Gene Encoding an Immunoglobulin-Binding Receptor on the Cell Surface of Some Members of the Family Trypanosomatidae." Infection and Immunity 71, no. 9 (September 2003): 5065–76. http://dx.doi.org/10.1128/iai.71.9.5065-5076.2003.
Full textPERETTI, LEANDRO E., VERÓNICA D. G. GONZALEZ, IVÁN S. MARCIPAR, and LUIS M. GUGLIOTTA. "Diagnosis of toxoplasmosis in pregnancy. Evaluation of latex–protein complexes by immnunoagglutination." Parasitology 144, no. 8 (March 14, 2017): 1073–78. http://dx.doi.org/10.1017/s0031182017000294.
Full textDissertations / Theses on the topic "Adsorption de la lumière parasite"
Diboune, Mathieu. "Elaboration de peintures zéolithiques pour la décontamination moléculaire en orbite." Thesis, Mulhouse, 2021. https://www.learning-center.uha.fr/.
Full textThe phenomenon of on-orbit molecular contamination is one of the major issues encountered by the space industry. Indeed, when satellites are placed in orbit, organic molecules contained in coatings, adhesives or glues used in the conception of satellites can degas and thus form films or droplets by depositing themselves on sensitive surfaces such as optical and electronic instruments or thermal control surfaces. This contamination leads to a drastic decrease of on-board equipment performance. Hydrocarbons as well as plasticizers have been identified as major contaminants. Among several porous materials tested for the adsorption of these organic pollutants, zeolites were found to be the most efficient due to their ability to trap organic molecules at a very low concentration in space conditions. The synthesis of zeolites generally leads to powders that would themselves be a source of particulate contamination, therefore a shaping of these zeolites appears to be necessary. Pellets, beads and zeolite films were developed in previous projects, but these processes have some disadvantages such as the addition of additional equipment to insert pellets into the structure of satellites, poor mechanical properties of beads or the small quantity of zeolite involved in the case of films and the difficulty of applying them to large surfaces. That is why, zeolite coatings were selected because they can be applied directly to the internal surface of satellites. The main goal of this project is to develop zeolite coatings that adhere to the surface elements of satellites, that are mechanically stable (shocks and vibrations undergone by satellites, temperature gradients) and that can trap organic pollutants. FAU-type (hydrophilic) and MFI-type (hydrophobic)zeolites were used in combination with silicone resins as binders in order to develop zeolite coatings that can that can fulfill spatial requirements. These zeolite coatings showed good adhesion properties (adhesion note of 0 according the ISO 2409 standard) as well as good mechanical and thermal stability under conditions encountered in orbit. Zeolite coatings porosity remain mostly accessible despite the use of a binder and good n-hexane adsorption capacities were obtained. Different quantities of black pigment (bone char or carbon black) were also added to some zeolite coatings to develop black zeolite coatings with the aim of absorbing light in order to respond to another phenomenon responsible of optial equipment contamination: stray light
Henry, Matthew S. "Characterization of a lambdoid phage gene encoding a host cell attachment spike." Bowling Green, Ohio : Bowling Green State University, 2008. http://rave.ohiolink.edu/etdc/view?acc%5Fnum=bgsu1214189208.
Full textDubois-Clochard, Marie-Claude. "Dispersants en milieu organique synthèse et étude physico-chimique de dispersants pour carburants et lubrifiants." Paris 6, 1998. http://www.theses.fr/1998PA066479.
Full textRodriguez-Ferreira, Julian. "Étalonnage au sol de l’instrument SIMBIO-SYS à bord de la mission ESA/BEPICOLOMBO." Thesis, Paris 11, 2015. http://www.theses.fr/2015PA112011/document.
Full textBepiColombo is one of the cornerstones of the scientific program of ESA. It will study the planet Mercury with two spacecrafts in orbit around the planet. One of the two spacecrafts, the Mercury Planetary Orbiter (MPO), will be dedicated to the study of the surface and interior of the planet. The mission is scheduled for launch in 2016 and arrival at Mercury in January 2024. IAS is responsible for the calibration of the imaging system SIMBIO-SYS (Spectrometers and Imagers for MPO BepiColombo Integrated Observatory-SYStem) which consists of a high-resolution camera (HRIC), a stereoscopic camera (STC) and a visible and near-infrared hyperspectral imager (VIHI). These instruments should deeply change our understanding of the composition and geomorphology of Mercury surface. My research subject allowed me to participate in all the activities concerning the definition, implementation and validation of the calibration facilities at the IAS. These facilities are divided into different sub-systems: a thermal vacuum chamber containing the instrument during all the calibration campaign that shall simulate the environmental conditions (temperature and pressure), an optical bench with optical components and radiometrically calibrated sources reproducing the observational conditions as it will be seen by the instrument once placed in Mercury’s orbit, mechanical interfaces allowing the positioning and guidance of the instrument when placed inside the vacuum chamber with the required precision and accuracy, thermal interfaces facilitating the thermal excursion of the detectors, software interfaces so as to automatize and control the entire system. I developed a radiometric model of the calibration system and instrument to refine the calibration sources. In parallel, I performed several measurements of some subsystems so as to validate the optical assembly and to improve its control. Finally as a result of a close collaboration with the three Italian scientific teams of the instrument, I elaborate the fully package of the calibration sequences and the detailed instrument configuration that will be used during the calibration campaign
Conference papers on the topic "Adsorption de la lumière parasite"
Mazuray, L., and JF Petilon. "NiP black: vers l'utilisation d'un traitement plus noir que noir contre la lumière parasite." In International Conference on Space Optics 2000, edited by Georges Otrio. SPIE, 2018. http://dx.doi.org/10.1117/12.2307921.
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