opus program version 7.2 for windows software (Bruker Corporation)
90
Structured Review
Bruker Corporation
opus program version 7.2 for windows software
Opus Program Version 7.2 For Windows Software, supplied by Bruker Corporation, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/opus+program+version+7%2E2+for+windows+software/opus+software+version+6+5/10__1007_slash_s12221___019___8950___8-63-13-16
Average 90 stars, based on 1 article reviews
Opus Program Version 7.2 For Windows Software, supplied by Bruker Corporation, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/opus+program+version+7%2E2+for+windows+software/opus+software+version+6+5/10__1007_slash_s12221___019___8950___8-63-13-16
Average 90 stars, based on 1 article reviews
opus program version 7.2 for windows software - by Bioz Stars,
2026-09
90/100 stars
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Software:Article Title: Electrospraying method for fabrication of essential oil loaded-chitosan nanoparticle delivery systems characterized by molecular, thermal, morphological and antifungal properties Article Snippet: Fabrication of essential oil loaded-chitosan nanoparticles using electrospraying technique appears to be a novel strategy to develop thermally stable nanoparticles possessing higher encapsulation efficiency and particle stability.. This study aims to fabricate chitosan nanoparticles (CNPs) loaded with Origanum vulgare essential oil (OEO, Origanum vulgare L.) at different proportions (OEO/CH proportions of 0:1, 0.0625:1, 0.125:1, 0.25:1 and 0.5:1 mL/g) using electrospraying technique.. The CNPs were characterized in term of their particle size and stability (dynamic light scattering), encapsulation efficiency (spectrophotometry), and molecular (Fourier transform infrared spectroscopy), thermal (differential scanning calorimetry/thermogravimetric analysis), morphological (scanning electron microscopy) and antifungal (agar dilution method) and fungistatic activity properties. Article Title: Fabrication of Curcumin-loaded Gliadin Electrospun Nanofibrous Structures and Bioactive Properties Article Snippet: In this work, the feasibility and potential of food-grade gliadin nanofiber as a delivery vehicle for curcumin were investigated.. By optimizing the electrospinning parameters, homogeneous and fine gliadin nanofibers containing different amounts of curcumin were fabricated.. It was observed that gliadin micro-nanoparticles were gradually transformed to gliadin nanofibers and thicker nanofibers were obtained with the increment of the gliadin concentration. Control:Article Title: Electrospraying method for fabrication of essential oil loaded-chitosan nanoparticle delivery systems characterized by molecular, thermal, morphological and antifungal properties Article Snippet: Fabrication of essential oil loaded-chitosan nanoparticles using electrospraying technique appears to be a novel strategy to develop thermally stable nanoparticles possessing higher encapsulation efficiency and particle stability.. This study aims to fabricate chitosan nanoparticles (CNPs) loaded with Origanum vulgare essential oil (OEO, Origanum vulgare L.) at different proportions (OEO/CH proportions of 0:1, 0.0625:1, 0.125:1, 0.25:1 and 0.5:1 mL/g) using electrospraying technique.. The CNPs were characterized in term of their particle size and stability (dynamic light scattering), encapsulation efficiency (spectrophotometry), and molecular (Fourier transform infrared spectroscopy), thermal (differential scanning calorimetry/thermogravimetric analysis), morphological (scanning electron microscopy) and antifungal (agar dilution method) and fungistatic activity properties. Article Title: Fabrication of Curcumin-loaded Gliadin Electrospun Nanofibrous Structures and Bioactive Properties Article Snippet: In this work, the feasibility and potential of food-grade gliadin nanofiber as a delivery vehicle for curcumin were investigated.. By optimizing the electrospinning parameters, homogeneous and fine gliadin nanofibers containing different amounts of curcumin were fabricated.. It was observed that gliadin micro-nanoparticles were gradually transformed to gliadin nanofibers and thicker nanofibers were obtained with the increment of the gliadin concentration. |