Thermal degradation of Affinisol HPMC: Optimum Processing Temperatures for Hot Melt Extrusion and 3D Printing

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dc.contributor.author Svoboda, Roman cze
dc.contributor.author Nevyhoštěná, Marie cze
dc.contributor.author Macháčková, Jana cze
dc.contributor.author Vaculík, Jan cze
dc.contributor.author Knotková, Kateřina cze
dc.contributor.author Chromcikova, Maria cze
dc.contributor.author Komersová, Alena cze
dc.date.accessioned 2024-08-24T07:24:43Z
dc.date.available 2024-08-24T07:24:43Z
dc.date.issued 2023 eng
dc.identifier.issn 0724-8741 eng
dc.identifier.uri https://hdl.handle.net/10195/83763
dc.description.abstract Purpose Affinisol HPMC HME is a new popular form of hypromellose specifically designed for the hot melt extrusion and 3D printing of pharmaceutical products. However, reports of its thermal stability include only data obtained under inert N-2 atmosphere, which is not consistent with the common pharmaceutical practice. Therefore, detailed investigation of its real-life thermal stability in air is paramount for identification of potential risks and limitations during its high-temperature processing. Methods In this work, the Affinisol HPMC HME 15LV powder as well as extruded filaments will be investigated by means of thermogravimetry, differential scanning calorimetry and infrared spectroscopy with respect to its thermal stability. Results The decomposition in N-2 was proceeded in accordance with the literature data and manufacturer's specifications: onset at similar to 260 degrees C at 0.5 degrees C.min(-1), single-step mass loss of 90-95%. However, in laboratory or industrial practice, high-temperature processing is performed in the air, where oxidation-induced degradation drastically changes. The thermogravimetric mass loss in air proceeded in three stages: similar to 5% mass loss with onset at 150 degrees C, similar to 70% mass loss at 200 degrees C, and similar to 15% mass loss at 380 degrees C. Diffusion of O-2 into the Affinisol material was identified as the rate-determining step. Conclusion For extrusion temperatures >= 170 degrees C, Affinisol exhibits a significant degree of degradation within the 5 min extruder retention time. Hot melt extrusion of pure Affinisol can be comfortably performed below this temperature. Utilization of plasticizers may be necessary for safe 3D printing. eng
dc.format p. 2253-2268 eng
dc.language.iso eng eng
dc.publisher Springer eng
dc.relation.ispartof Pharmaceutical Research, volume 40, issue: 9 eng
dc.rights Práce není přístupná eng
dc.subject affinisol eng
dc.subject DSC eng
dc.subject hot melt extrusion eng
dc.subject TGA eng
dc.subject thermal degradation eng
dc.subject affinisol cze
dc.subject DSC cze
dc.subject extruze cze
dc.subject TGA cze
dc.subject tepelná degradace cze
dc.title Thermal degradation of Affinisol HPMC: Optimum Processing Temperatures for Hot Melt Extrusion and 3D Printing eng
dc.title.alternative Tepelná degradace affinisolu HPMC: Optimální teplotní program pro "hot-melt" extruzi a 3D tisk cze
dc.type article eng
dc.description.abstract-translated Affinisol HPMC HME je novou populární formou hypromelózy specificky designovanou pro "hot-melt" extruzi a 3D tisk farmaceutických produktů. V této studii byla ověřována tepelná stabilita tohoto materiálů při použití v běžné atmosféře oproti dřívějším studiím v inertní atmosféře. Bylo zjištěno výrazné omezení teplotního rozsahu použitelnosti z důvodu oxidací indukované degradace při teplotách nad 170 °C. cze
dc.peerreviewed yes eng
dc.publicationstatus postprint eng
dc.identifier.doi 10.1007/s11095-023-03592-z eng
dc.relation.publisherversion https://link.springer.com/article/10.1007/s11095-023-03592-z eng
dc.identifier.wos 001053792200003 eng
dc.identifier.scopus 2-s2.0-85168621826 eng
dc.identifier.obd 39889326 eng
dc.note WOS: Early Access eng


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