Microfluidics

  1. Improving Efficiency by Using Continuous Flow to Enable Cycles: Pseudo-Catalysis, Catalysis and Kinetics

    Sullivan, Ryan — uO Research (University of Ottawa), 2020

    Thesis doi:10.20381/ruor-24620

  2. Red Blood Cell Aggregation Characterization: Using Norland Optical Adhesive Microfluidic Chips for a Reduction in Compliance

    Curtis Armstrong — uO Research (University of Ottawa), 2020

    Thesis doi:10.20381/ruor-24984

  3. Nitric Oxide and a Conditioned Medium Affect the Hematopoietic Development in a Microfluidic Mouse Embryonic Stem Cell/OP9 Co-Cultivation System

    Kae Sato, Momoko Maeda, Eriko Kamata, et al. — Micromachines, 2020

    Journal doi:10.3390/mi11030305

  4. Monolithic 3D micromixer with an impeller for glass microfluidic systems

    Sung‐Il Kim, Jeongtae Kim, Yeun-Ho Joung, et al. — Lab on a Chip, 2020

    Journal doi:10.1039/d0lc00823k Fusion 100 Infusion Pump

  5. Gas bubbles have controversial effects on Taylor flow electrochemistry

    Yiran Cao, Cíntia Soares, Natan Padoin, et al. — Chemical Engineering Journal, 2020

    Journal doi:10.1016/j.cej.2020.126811

  6. 3D Printing of Inertial Microfluidic Devices

    Sajad Razavi Bazaz, Omid Rouhi, Mohammad Amin Raoufi, et al. — Scientific Reports, 2020

    Journal doi:10.1038/s41598-020-62569-9

  7. Aqueous-Phase Reforming: Multiphase reaction engineering at the microscale

    Renée M. Ripken, 2019

    Thesis doi:10.3990/1.9789036547840

  8. A microfluidic device for in situ fixation and super-resolved mechanosensation studies of primary cilia

    Sheng-Han Chu, Li-Lun Lo, Richard Lee Lai, et al. — Biomicrofluidics, 2019

    Journal doi:10.1063/1.5081756

  9. Tangential Flow Microfiltration for Viral Separation and Concentration

    Yi Wang, Keely A. Keller, Xuanhong Cheng — Micromachines, 2019

    Journal doi:10.3390/mi10050320

  10. Preparation and printability of ultrashort self-assembling peptide nanoparticles

    Sarah Ghalayini, Hepi Hari Susapto, Sophie Hall, et al. — International Journal of Bioprinting, 2019

    Journal doi:10.18063/ijb.v5i2.239

  11. A high-throughput fluidic chip for rapid phenotypic antibiotic susceptibility testing

    Pikkei Wistrand-Yuen, Christer Malmberg, Nikos Fatsis-Kavalopoulos, et al. — bioRxiv (Cold Spring Harbor Laboratory), 2019

    Preprint doi:10.1101/647909

  12. High-throughput microfluidic cell sorting platform (MICS)

    David N. Philpott, Peter M. Aldridge, Barbara Mair, et al., 2019

    Preprint doi:10.21203/rs.2.10282/v1

  13. Microfluidic device for the analysis of MDR cancerous cell-derived exosomes' response to nanotherapy.

    Ruogu Qi, Guixian Zhu, Yu Wang, et al. — Biomedical Microdevices, 2019

    Journal doi:10.1007/s10544-019-0381-1

  14. High-Precision Stereolithography of Biomicrofluidic Devices.

    Alexandra P Kuo, Nirveek Bhattacharjee, Yuan-Sheng Lee, et al. — Advanced Materials Technologies, 2019

    Journal doi:10.1002/admt.201800395

  15. A microfluidic model of the human corneal epithelium for estimating drug permeation

    Zachary Estlack — ThinkTech (Texas Tech University), 2019

    Thesis

  16. 3D Sugar Printing of Networks Mimicking the Vasculature

    Andreas M. A. O. Pollet, Erik F. G. A. Homburg, Ruth Cardinaels, et al. — Micromachines, 2019

    Journal doi:10.3390/mi11010043

  17. Design and Fabrication of Micro-Channels and Numerical Analysis of Droplet Motion Near Microfluidic Return Bends

    John-Luke Singh — NDSU Repository (North Dakota State University), 2019

    Thesis

  18. Investigation of mechanical and magnetophoretic focusing for magnetic flow cytometry

    Jan Liu, Mathias Reisbeck, Oliver Hayden — Current Directions in Biomedical Engineering, 2019

    Journal doi:10.1515/cdbme-2019-0089

  19. Traction Microscopy Integrated with Microfluidics for Chemotactic Collective Migration.

    Hwanseok Jang, Jongseong Kim, Jennifer H Shin, et al. — Journal of Visualized Experiments, 2019

    Journal doi:10.3791/60415

  20. Study Effects of Drug Treatment and Physiological Physical Stimulation on Surfactant Protein Expression of Lung Epithelial Cells Using a Biomimetic Microfluidic Cell Culture Device

    Ting-Ru Lin, Sih-Ling Yeh, Chien‐Chung Peng, et al. — Micromachines, 2019

    Journal doi:10.3390/mi10060400

  21. Characterizing the invasion of different breast cancer cell lines with distinct E-cadherin status in 3D using a microfluidic system

    Hossein Eslami Amirabadi, Margo Tuerlings, Antoinette Hollestelle, et al. — Biomedical Microdevices, 2019

    Journal doi:10.1007/s10544-019-0450-5

  22. New insights into the physics of inertial microfluidics in curved microchannels. II. Adding an additive rule to understand complex cross-sections

    Mehdi Rafeie, Shahin Hosseinzadeh, Jingrui Huang, et al. — Biomicrofluidics, 2019

    Journal doi:10.1063/1.5109012

  23. Capture of Circulating Tumour Cell Clusters Using Straight Microfluidic Chips

    Arutha Kulasinghe, Jian Zhou, Liz Kenny, et al. — Cancers, 2019

    Journal doi:10.3390/cancers11010089

  24. Self-Immobilizing Biocatalysts Maximize Space–Time Yields in Flow Reactors

    Theo Peschke, Patrick Bitterwolf, Silla H. Hansen, et al. — Catalysts, 2019

    Journal doi:10.3390/catal9020164 Fusion 100 Infusion Pump

  25. Electrophilic Bromination in Flow: A Safe and Sustainable Alternative to the Use of Molecular Bromine in Batch

    Reinout Van Kerrebroeck, Pieter Naert, Thomas S. A. Heugebaert, et al. — Molecules, 2019

    Journal doi:10.3390/molecules24112116 Fusion 100 Infusion Pump

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