3D-printing is a promising tool to pave the way to the widespread adaption of individualized medicine. Several printing techniques have been investigated and introduced to pharmaceutical research. Until now, only one 3D-printed medicine is approved on the US market. The medicine is manufactured via drop-on-powder deposition, which uses inkjet printing to jet a liquid binder on a powder bed to create 3D objects. However, inkjet processes are prone to nozzle clogging when binders or active pharmaceutical ingredients (APIs) are included in the printing ink. This renders the formulation development of the ink the most challenging step. In this study, different hydroxypropyl cellulose (HPC) grades were investigated as solid binders in the powder formulation on a commercially available DoP printer. The printed ink only consisted of a water/ethanol mixture. Formulations containing 70% caffeine as model API were developed and tablets printed. It was found that the friability of the tablets greatly depends on the particle size of the employed binder, whereas disintegration time and dissolution properties mainly depend on the viscosity of the employed binders. Higher viscous binders led to slower disintegration and dissolution whereas lower viscous binders led to faster disintegration and dissolution. The study demonstrates that HPC is a suitable solid binder for DoP printing and that 3D-DoP printing can be used to print robust dosage forms.
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http://dx.doi.org/10.1016/j.ijpharm.2018.11.048 | DOI Listing |
Chem Pharm Bull (Tokyo)
December 2024
School of Traditional Chinese Medicines, Shenyang Pharmaceutical University.
Enteric-coated microcapsules can protect roxithromycin (ROX) from acid hydrolysis enhancing efficacy, solubility, and dissolution rate, representing a promising oral formulation for children and patients with swallowing difficulties. ROX-layered core particles were obtained with polyvinylpyrrolidone (PVP) K30 as the binder and Eudragit L30 D-55 as the coating material using the Wurster process in a fluidized bed processor. The enteric-coated microcapsules were characterized using powder X-ray diffraction, differential scanning calorimetry, and polarized optical microscopy.
View Article and Find Full Text PDFJ Mech Behav Biomed Mater
December 2024
Department of Materials Engineering, Isfahan University of Technology, Isfahan, 84156-83111, Iran.
Zinc is a promising material for biodegradable scaffolds due to its biocompatible nature and suitable degradation rate. However, its low mechanical strength limits its use in load-bearing applications. This study aims to address this challenge by optimizing the process parameters of pure zinc using laser-based powder bed fusion and designing zinc scaffolds with tailored structures.
View Article and Find Full Text PDFMaterials (Basel)
December 2024
Department of Industrial Engineering, J.B. Speed School of Engineering, University of Louisville, Louisville, KY 40292, USA.
The simulation of additive manufacturing has become a prominent research area in the past decade. Process physics simulations are employed to replicate laser powder bed fusion (L-PBF) manufacturing processes, aiming to predict potential issues through simulated data. This study focuses on calculating surface roughness by utilizing 3D surface topology extracted from simulated data, as surface roughness significantly influences part quality.
View Article and Find Full Text PDFMaterials (Basel)
December 2024
Department of Engineering Science, University West, SE-461 86 Trollhättan, Sweden.
Additive manufacturing (AM) methods like powder bed fusion-laser beam (PBF-LB) enable complex geometry production. However, understanding and predicting the microstructural properties of AM parts remain challenging due to the inherent non-homogeneity introduced during the manufacturing process. This study demonstrates a novel approach for 3D microstructure representation and virtual testing of non-homogeneous AM materials using 2d electron backscatter diffraction (EBSD) data.
View Article and Find Full Text PDFPolymers (Basel)
November 2024
Catenated Carbon Consultancy Ltd., 192 Wake Green Road, Birmingham B13 9QE, UK.
Most current laser sintering (LS) machines for polymer powders operate with a maximum bed temperature of 200 °C, limiting the use of higher melting polymers like polyethylene terephthalate (PET), which melts at ~250 °C. Using bed temperatures of ≤200 °C leads to severe part-distortion due to curl and warpage during the sintering process. The paper presents a processing method for LS at low bed temperatures, using an in situ printed anchor film to conquer curl and warpage.
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