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Titlebook: BioMEMS and Biomedical Nanotechnology; Volume IV: Biomolecu Mauro Ferrari (Editor-in-Chief, Professor Brown In Book 2007 Springer-Verlag US

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楼主: 气泡
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Microscale Flow and Transport Simulation for Electrokinetic and Lab-on-Chip Applicationsmicroscale chemical and biological analysis systems, commonly referred to as integrated microfluidic devices or Labs-on-a-Chip [.]. Application areas into which these systems have penetrated include: DNA analysis [.], separation based detection [., .], drug development [.], proteomics [.], fuel proc
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Modeling Electroosmotic Flow in Nanochannelsechologies include Micro- Electro Mechanical Systems (MEMS) comprising micro-scale heat engines, micro-aerial vehicles and micro pumps and compressors and many other systems. Moreover, newideas in the area of drug delivery and its control, inDNA and biomolecular sensing, manipulation and transport a
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Nano-Particle Image Velocimetry: A Near-Wall Velocimetry Technique with Submicron Spatial Resolutionh in fluid mechanics because of the rapid development of microscale devices based upon microelectromechanical systems (MEMS) fabrication techniques. Examples of such microfluidic devices include Labs-on-a-Chip for biochemical separation and analysis, inkjet printer heads, various types of microelect
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An On-Chip Artificial Pore for Molecular Sensingsses the technological hurdles with which other nanopore strategies are confronted. Equally important, we will show that our on-chip artificial pore is a flexible platform technology that has a number of diverse applications’from label-free immunoassays to single-molecule DNA sizing.
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BioMEMS for Cellular Manipulation and Analysise lab-on-a-chips for cellular analysis is justified by, (i) reducing the sensor element to the scale of size of cells and smaller and hence providing a higher sensitivity, (ii) reduced reagent volumes and associated costs, (iii) reduced time to result due to small volumes resulting in higher effecti
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