Solving the Matter - Crystal Engineering and Particle Design of Poorly Soluble Drugs via Rapid Expansion of Supercritical Solutions

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dc.contributor.advisor Wahl, Martin (Prof. Dr.)
dc.contributor.author Müllers, Katrin
dc.date.accessioned 2015-09-04T10:19:08Z
dc.date.available 2015-09-04T10:19:08Z
dc.date.issued 2015-09
dc.identifier.other 445024690 de_DE
dc.identifier.uri http://hdl.handle.net/10900/64663
dc.identifier.uri http://nbn-resolving.de/urn:nbn:de:bsz:21-dspace-646637 de_DE
dc.identifier.uri http://dx.doi.org/10.15496/publikation-6085
dc.description.abstract A growing number of new drug candidates are highly lipophilic. Statistically, 40 % of new drug molecules are thus excluded from further development at the early stages of pharmaceutical research. From a technological standpoint, particle design and crystal engineering are valuable tools to increase intrinsic solubility and low dissolution rates of lipophilic compounds. However, traditional pharmaceutical processing techniques make ample use of organic solvents and rough process conditions. This causes stability issues of the drug products and contradicts today's growing demand for sustainable technologies. In contrast, the Rapid Expansion of Supercritical Solutions (RESS) can provide both mild process conditions and a solvent-free processing technology. With the development of three RESS applications for micronization, nanotechnology and crystal engineering, the dissolution rate of poorly soluble compounds could be improved distinctly in this thesis. RESS thus offers a valuable technology platform with an up-to-date unexploited potential to enhance the future sector of pharmaceutical formulation science. en
dc.language.iso en de_DE
dc.publisher Universität Tübingen de_DE
dc.rights ubt-podok de_DE
dc.rights.uri http://tobias-lib.uni-tuebingen.de/doku/lic_mit_pod.php?la=de de_DE
dc.rights.uri http://tobias-lib.uni-tuebingen.de/doku/lic_mit_pod.php?la=en en
dc.subject.classification Löslichkeit , Wirkstoff de_DE
dc.subject.ddc 500 de_DE
dc.subject.other Überkritische Fluide de_DE
dc.title Solving the Matter - Crystal Engineering and Particle Design of Poorly Soluble Drugs via Rapid Expansion of Supercritical Solutions en
dc.type PhDThesis de_DE
dcterms.dateAccepted 2015-06-12
utue.publikation.fachbereich Pharmazie de_DE
utue.publikation.fakultaet 7 Mathematisch-Naturwissenschaftliche Fakultät de_DE
utue.publikation.fakultaet 7 Mathematisch-Naturwissenschaftliche Fakultät de_DE

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