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Microfluidizer manufacturer

D., Hocker, H., Legewie, F., Poprawe, R., Wehner, M., Wild, M., Laser processing for manufacturing microfluidic devices, in Eheeeld, W. (Ed.), Microreaction Technology 3rd International Conference on Microreaction Technology, Proc. of IMRET 3, pp. 80-89, Springer-Verlag, Berlin (2000). [Pg.572]

Biological weed control, 73 331—332 Biologies, manufacture of, 3 826 Biology, microfluidic applications in, 26 968-973... [Pg.102]

Figure 3 Manufacturing scheme for liposome-encapsulated hemoglobin (LEH). Lipid phase is mixed with hemoglobin and the mixture is homogenized in an extruder or a microfluidizer. Unencapsulated hemoglobin is separated by filtration, before PEGylation is performed by postinsertion. The resulting PEG-LEH is converted into oxyhemoglobin form and concentrated to obtain final product. Abbreviation IXC, interaction chamber. Figure 3 Manufacturing scheme for liposome-encapsulated hemoglobin (LEH). Lipid phase is mixed with hemoglobin and the mixture is homogenized in an extruder or a microfluidizer. Unencapsulated hemoglobin is separated by filtration, before PEGylation is performed by postinsertion. The resulting PEG-LEH is converted into oxyhemoglobin form and concentrated to obtain final product. Abbreviation IXC, interaction chamber.
S. Metz, S. Jiquet, A. Bertsch and P. Renaud, Polyimide and SU-8 microfluidic devices manufactured by heat-depolymerizable sacrificial material technique, Lab Chip, 4 (2004) 114-120. [Pg.862]

The microfluidic structure was manufactured in glass by classical photolithography and wet-chemical HF etching methods [164], Holes for fluid connection were drilled. A polymer membrane was prepared in-house and served as a top plate to give a glass-polymer sandwich chip. Pressure sealing was applied. [Pg.258]

Giovannini, H., New process for manufacturing ceramic microfluidic devices for microreactor and bioanalytical applications, in Matlosz, M., Ehrfeld, W., Baselt, J. P. (Eds.), Microreaction Technology - IMRET 5 Proc. of the 5th International Conference on Microreaction Technology, Springer-Verlag, Berlin, 2001, 103-112. [Pg.637]

Metz, S., Trautmann, C., Bertsch, A., Renaud, Ph., Polyimide microfluidic devices with integrated nanoporous filtration areas manufactured by micromachining and ion track technology. J. Micromech. Microeng. 2004, 14, 324-331. [Pg.415]

To reduce vesicle size and the number of bilayers, high-pressure filtration via polycarbonate membranes or high-pressure homogenization in a French press or in a microfluidizer are appropiate manufacturing procedures. Sonication may also be applied, although the obtained dispersion does not have the same particle sizes. [Pg.1117]


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See also in sourсe #XX -- [ Pg.1999 ]




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