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University of North Carolina at Chapel Hill | Chapel Hill, North Carolina | United States | 1 day ago
, polymers, hydrogels, and wearable and implantable biosensors. Experienced in applying these materials to three-dimensional (3D) cell culture models and translational diagnostics or similar. Preferred
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extracellular matrix biology, biomaterials, hydrogel systems, 3D culture, tissue engineering, or disease-relevant cell–matrix models. About the School The School of Physical and Chemical Sciences (SPCS) at Queen
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(nanoparticles, conjugates, coatings, hydrogels, composites). 2. Characterization of polymeric materials Determination of chemical structure, including NMR, FTIR, and GPC. Solution properties and aggregation
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to: Design, formulate, and characterize biobased materials such as hydrogels, polymers, and composites for agricultural applications. Develop and optimize protocols for the encapsulation and controlled release
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-controlled release, and soil hydration using multi-source biomass feedstocks. Job duties The successful candidate is expected to: Design, formulate, and characterize biobased materials such as hydrogels
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demonstrated skill set in biomaterials such as hydrogels and biomanufacturing such as microfluidics and 3D printing. Able to work well and communicate ideas effectively in a multidisciplinary team of researchers
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organic–inorganic hybrid materials for optical or biomedical printing. Experience with biocompatible hydrogel formulations (e.g., GelMA, PEGDA) and knowledge of ISO 10993 or USP Class VI standards
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systems, quantitative imaging or fluorescence assays, and longitudinal data collection. Experience with hydrogel culture, ECM-based systems, microfabricated devices, implantable-device prototypes, perfusion
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Hydrogel formulation, chemical crosslinking, biomechanical sensing Biological sample staining and advanced light microscopy techniques Culture and characterization of mammalian cells, preferably cancer
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is focused on developing a next-generation tissue-engineered periosteum (TEP) to improve the healing of challenging bone defects by integrating polymer chemistry, hydrogel design, stem cell biology