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. Experience with nanoparticle or surface functionalization. Experience with microfluidics or measurements in complex liquids. Experience with biological samples, cell experiments, or microbiology is welcome but
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of the SERS monitoring methodology in microfluidic cells (M1-M3), Proof of concept of the monitoring of the catalysis by SERS (M4-M6), Determination of the influence of experimental conditions on plasmon
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intestine-on-chip models integrating multiple intestinal segments together with a functional enteric nervous system (ENS). The objective is to closely reproduce the structural, functional, and
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Sciences, focused on innovative research in designing microfluidics chips for studying lipid and polymer-based nanoparticles under flow using nuetron and X-ray scattering techniques. About us The Department
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developing a high-throughput single-cell analysis platform that combines microfluidics, advanced live-cell microscopy, and AI-based image analysis to study microbial consortia. You will drive the development
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: Design and optimization of graphene edge to edge tunning device structures, and electronic signal detection. Design and test of microfluidic structures in combination with the tunneling device. Taking
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well as a highly collaborative research environment. For more information about Nathaniel Street’s research group, see: https://www.umu.se/en/staff/nathaniel-street/ Project description Establishing robust