Academic literature on the topic 'Diphenyloxazole'

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Journal articles on the topic "Diphenyloxazole"

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Jacobsen, NW, and A. Philippides. "The Unambiguous Syntheses of the 2,5-Diphenyloxazole Metabolites." Australian Journal of Chemistry 38, no. 9 (1985): 1335. http://dx.doi.org/10.1071/ch9851335.

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Agbaria, Rezik A., and David Gill. "Extended 2,5-diphenyloxazole-.gamma.-cyclodextrin aggregates emitting 2,5-diphenyloxazole excimer fluorescence." Journal of Physical Chemistry 92, no. 5 (1988): 1052–55. http://dx.doi.org/10.1021/j100316a012.

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Banciu, Mircea, Daniela Istrati, Dan Mihaiescu, and Constantin Draghici. "Flash Vacuum Pyrolysis of 2,5-Diphenyloxazole." Molecules 5, no. 12 (2000): 1004–10. http://dx.doi.org/10.3390/50801004.

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Dharamsi, A. N., and Shawpin Jong. "Triplet-State Kinetics of 2,5 Diphenyloxazole (PPO)." Applied Spectroscopy 42, no. 1 (1988): 27–31. http://dx.doi.org/10.1366/0003702884428473.

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Time-resolved excited-state triplet-triplet absorption spectra were measured for solutions of 2,5 diphenyloxazole (PPO) in various solvents, with the use of a pump and probe technique. The rate constants for intersystem crossing, triplet deactivation by oxygen, and triplet-triplet self-quenching are obtained. The latter two rate constants are substantially larger than the corresponding rate constants for 2-(1 naphthyl)-5-phenyloxazole-αNPO.
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Meanwell, Nicholas A., Michael J. Rosenfeld, Ashok K. Trehan, et al. "Nonprostanoid prostacyclin mimetics. 2. 4,5-diphenyloxazole derivatives." Journal of Medicinal Chemistry 35, no. 19 (1992): 3483–97. http://dx.doi.org/10.1021/jm00097a006.

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Losytskyy, Mykhaylo, Lyudmyla Vretik, Olena Nikolaeva, Daryna Getya, Andrii Marynin, and Valeriy Yashchuk. "Energy Transfer in Polystyrene Nanoparticles with Encapsulated 2,5-Diphenyloxazole." French-Ukrainian Journal of Chemistry 3, no. 2 (2015): 119–24. http://dx.doi.org/10.17721/fujcv3i2p119-124.

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As the first step to design nanosystems for X-ray excited sensitising of singlet oxygen, nanoparticles of polystyrene (PS NP) and polystyrene with encapsulated diphenyloxazole molecules (PS-PPO NP) were synthesized. Inside the PS-PPO NP, the electronic excitation energy transfer from polystyrene matrix to encapsulated PPO molecules takes place; efficiency of such transfer was roughly estimated to be about 0.37. X-ray stimulated luminescence of PS-PPO NP was registered.
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Hariharan, Chithra, V. Vijaysree, and A. K. Mishra. "Quenching of 2,5-diphenyloxazole (PPO) fluorescence by metal ions." Journal of Luminescence 75, no. 3 (1997): 205–11. http://dx.doi.org/10.1016/s0022-2313(97)00126-9.

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KrishnaMurthy, N. V., A. R. Reddy, and B. Bhudevi. "Wavelength Dependant Quenching of 2,5-Diphenyloxazole Fluorescence by Nucleotides." Journal of Fluorescence 18, no. 1 (2007): 29–34. http://dx.doi.org/10.1007/s10895-007-0231-z.

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Losytskyy, M. Yu, L. O. Vretik, O. A. Nikolaeva, A. I. Marynin, N. F. Gamaleya, and V. M. Yashchuk. "Polystyrene-diphenyloxazole-chlorin e6 nanosystem for PDT: Energy transfer study." Molecular Crystals and Liquid Crystals 639, no. 1 (2016): 169–76. http://dx.doi.org/10.1080/15421406.2016.1255072.

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Dereka, Bogdan, Denis Svechkarev, and Andrey Doroshenko. "Facile ultrasensitive monitoring of mercury ions in water by fluorescent ratiometric detection." Open Chemistry 11, no. 4 (2013): 584–93. http://dx.doi.org/10.2478/s11532-012-0193-0.

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AbstractProspects for analytical application of 2,5-diphenyloxazole-substituted 3-hydroxychromone for detection of mercury ions are presented. Sensitivity and selectivity for a number of metal ions both in methanol solution and in the plasticized polymer are outlined. Ultrasensitive and highly selective fluorescent ratiometric response of the polymer film containing the title compound for mercury ions in water media is revealed. Reversibility of ratiometric response to mercury ions and influence of plasticizer’s content in the polymer film on the optical feedback are also discussed.
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Dissertations / Theses on the topic "Diphenyloxazole"

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Stegmann, Darren Edward. "The investiation into the synthesis of 2,5-Diphenyloxazole in Streptomyces polyantibioticus SPR." Master's thesis, University of Cape Town, 2011. http://hdl.handle.net/11427/13421.

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Includes bibliographical references.<br>As part of an antibiotic-screening programme, an actinomycete, Streptomyces polyantibioticus SPRT, was isolated from soil collected from the banks of the Umgeni River, KwaZulu-Natal Province, South Africa. It exhibited antibiosis against M. tuberculosis H37RvT, prompting interest in its antibiotic production. An antibiotic produced by S. polyantibioticus SPRT was isolated and its structure determined by nuclear magnetic resonance (NMR) and X-ray crystallography to be 2,5- diphenyloxazole (DPO). Of great interest is the independent confirmation of the ant
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Kemp, Ian Kyle. "Identification and preliminary characterization of the 2,5-diphenyloxazole biosynthetic pathway in streptomyces polyantibioticus SPRT." Doctoral thesis, University of Cape Town, 2015. http://hdl.handle.net/11427/19967.

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An antibacterial compound produced by the actinomycete, Streptomyces polyantibioticus SPRT, exhibited antibiosis against Mycobacterium tuberculosis H37RvT (the causative agent of tuberculosis), which prompted interest in its biosynthesis. The antibacterial compound was isolated in a previous study and its structure was determined by X-ray crystallography and nuclear magnetic resonance (NMR) to be 2,5-diphenyloxazole (DPO). Based on the structure of DPO, a biosynthetic scheme for the synthesis of this molecule was proposed, whereby a non-ribosomal peptide synthetase (NRPS) condenses a molecule
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Conference papers on the topic "Diphenyloxazole"

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Vaudey, Claire-Emilie, Sébastien Renou, Dennis Kelley, Chantal Cochaud, and Roger Serrano. "Cadarache LOR (Liquides Organiques Radioactifs) Treatment by a Solidification Process Using NOCHAR Polymers." In ASME 2013 15th International Conference on Environmental Remediation and Radioactive Waste Management. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/icem2013-96298.

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In France, two options can be considered to handle the Very Low Level Waste (VLLW) and the Low Level Waste (LLW). The first one is the incineration at CENTRACO facility and the second one is the disposal at ANDRA sites. The waste acceptance in these two channels is dependent upon the adequacy between the waste characteristics (physical chemistry and radiological) and the channel specifications. If the waste characteristics and the channel specifications (presence of significant quantities of halogens, complexants agents, organic components… or/and high activity limits) are incompatible, an alt
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