Academic literature on the topic 'Translocation; Radical'
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Journal articles on the topic "Translocation; Radical"
Robertson, Jeremy, Jayasheela Pillai, and Rachel K. Lush. "Radical translocation reactions in synthesis." Chemical Society Reviews 30, no. 2 (2001): 94–103. http://dx.doi.org/10.1039/b000705f.
Full textBrown, Christopher D. S., Nigel S. Simpkins, and Keith Clinch. "A route to spiroketals using radical translocation." Tetrahedron Letters 34, no. 1 (January 1993): 131–32. http://dx.doi.org/10.1016/s0040-4039(00)60075-8.
Full textVellucci, Jessica K., and Christopher M. Beaudry. "Total Synthesis of (±)-Goniomitine via Radical Translocation." Organic Letters 17, no. 18 (September 8, 2015): 4558–60. http://dx.doi.org/10.1021/acs.orglett.5b02277.
Full textRobertson, Jeremy, Jayasheela Pillai, and Rachel K. Lush. "ChemInform Abstract: Radical Translocation Reactions in Synthesis." ChemInform 32, no. 41 (May 24, 2010): no. http://dx.doi.org/10.1002/chin.200141269.
Full textMontevecchi, Pier Carlo, and Maria Luisa Navacchia. "Rearrangements and cyclizations in vinyl radicals. Unusual example of 1,4-radical translocation." Tetrahedron Letters 37, no. 36 (September 1996): 6583–86. http://dx.doi.org/10.1016/0040-4039(96)01405-0.
Full textCapella, Laura, Pier Carlo Montevecchi, and Maria Luisa Navacchia. "Radical Sequential Processes Promoted by 1,5-Radical Translocation Reaction: Formation and [3 + 2] Anulation of Alkenesulfanyl Radicals." Journal of Organic Chemistry 61, no. 20 (January 1996): 6783–89. http://dx.doi.org/10.1021/jo960279v.
Full textHollister, Kyle A., Elizabeth S. Conner, Mark L. Spell, Kristina Deveaux, Léa Maneval, Michael W. Beal, and Justin R. Ragains. "Remote Hydroxylation through Radical Translocation and Polar Crossover." Angewandte Chemie 127, no. 27 (May 26, 2015): 7948–52. http://dx.doi.org/10.1002/ange.201500880.
Full textHollister, Kyle A., Elizabeth S. Conner, Mark L. Spell, Kristina Deveaux, Léa Maneval, Michael W. Beal, and Justin R. Ragains. "Remote Hydroxylation through Radical Translocation and Polar Crossover." Angewandte Chemie International Edition 54, no. 27 (May 26, 2015): 7837–41. http://dx.doi.org/10.1002/anie.201500880.
Full textCurran, Dennis P., and Wang Shen. "Radical translocation reactions of vinyl radicals: substituent effects on 1,5-hydrogen-transfer reactions." Journal of the American Chemical Society 115, no. 14 (July 1993): 6051–59. http://dx.doi.org/10.1021/ja00067a021.
Full textCAPELLA, L., P. C. MONTEVECCHI, and M. L. NAVACCHIA. "ChemInform Abstract: Radical Sequential Processes Promoted by 1,5-Radical Translocation Reaction: Formation and (3 + 2) Annulation of Alkenesulfanyl Radicals." ChemInform 28, no. 5 (August 4, 2010): no. http://dx.doi.org/10.1002/chin.199705086.
Full textDissertations / Theses on the topic "Translocation; Radical"
Brown, Christopher. "Applications of free-radical translocation chemistry." Thesis, University of Nottingham, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.359598.
Full textPillai, Jayasheela. "Heterocycle synthesis by hydrogen atom transfer and cyclisation." Thesis, University of Oxford, 1998. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.298644.
Full textTyagi, Prashant. "Elaboration de membranes polymères auto-réparables." Thesis, Montpellier, Ecole nationale supérieure de chimie, 2012. http://www.theses.fr/2012ENCM0015/document.
Full textThe objective of this thesis is to develop such kind of polymeric membranes which can repair themselves autonomously in an event of damage. Such damage in a membrane, if left undetected can pose serious health issues in some of the intended applications. In the first approach, a dynamic polymeric membrane based on ABA type triblock copolymer micelles has been prepared. The block “A” is represented by mechanically robust poly(styrene-co-acrylonitrile) copolymer while block “B” by relatively soft and flexible poly(ethylene oxide). When pressure is applied to the membrane, its morphology can be fine-tuned thanks to the compressible nature of micelles as well as intermicellar dynamic bridges. A range of porosities are accessible which can be regulated by pressure and thereby controlling the filtration performance. The same dynamic nature has also been utilized to display an effective pressure driven autonomous healing. The efficiency of healing process has been found to be dependent on the extent of damage, pressure value and time duration of application of pressure. Using the self-healing property of above membrane, “Direct Mode Translocation” of nanoparticles has also been studied. Four different classes of nanoparticles were used with varied intrinsic and extrinsic properties. The findings of the work prove that the size, shape and surface characteristics of the nanoparticles as well as the applied force govern the translocation process. In a second approach, a 2D and 3D reversible coating based on the self-assembly of micelles of diblock copolymer consisting of poly(methyl methacrylate) (PMMA) and poly(n-octadecyl methacrylate) (PODMA) blocks have been developed. The assembly of micelles is accomplished via so called “Zipper” effect, thanks to the long pendant chains of PODMA block. The same “zipper” effect plays the role of removing the coating easily by washing in a selective solvent, thus giving the ability to alter the surface of substrate for many times in reversible manner. The room temperature crystallization of PODMA block provides huge implications for a thermally assisted self-healing coating without affecting the global micelle morphology. Finally, another approach has been conceptualized in which self-healing occurs via encapsulated nano-gel dispersed within a membrane. The nano-gel is based on a partially crosslinked hydrophilic star shaped block copolymer which has to be synthesized by “Reversible Addition-Fragmentation Transfer” (RAFT) polymerization technique. The synthesis of a 4- arm RAFT agent for polymerization has been accomplished however ; a substantial amount of work is still needed to validate the synthetic route towards the nano-gel synthesis as well as its further application for the self-healing process
Attouche, Angie. "Développement de nouvelles réactions radicalaires sans étain en glycochimie : élaboration de spirocétals et débenzylations régiosélectives." Phd thesis, Université Paris Sud - Paris XI, 2011. http://tel.archives-ouvertes.fr/tel-00923135.
Full textBook chapters on the topic "Translocation; Radical"
Bachi, Mario D., Edward E. Korshin, Yaroslav V. Bilokin, and Hailin Zheng. "Stereoselective Synthesis of 2,4-cis-Substituted Pyrrolidines through a Free Radical Sulfur to Carbon Translocation Reaction." In 19th International Congress on Heterocyclic Chemistry, 87. Elsevier, 2003. http://dx.doi.org/10.1016/b978-0-08-044304-1.50080-0.
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