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Carbon: The Next Silicon?: Book 2Applications

Carbon: The Next Silicon?: Book 2Applications
Marc Madou, "Carbon: The Next Silicon?: Book 2Applications"
2016 | ISBN10: 1606508830 | 234 pages | PDF | 22 MB

Nuclear Magnetic Resonance (NMR) and Electron Spin Resonance (ESR) spectroscopies are wellknown characterization techniques that reveal the molecular details of a sample noninvasively. The authors discuss how NMR can provide useful information on the microstructure of carbon and its surface properties and explain how CMEMS/CNEMS technology can be explored for building improved NMR microdevices. The authors highlight the manipulation of fluids and particles by dielectrophoresis and the use of carbon electrodes for dielectrophoresis in LabonaChip. The use of these electrodes in sample preparation through electrical polarization of a sample for identification, manipulation, and lysis of bioparticles is also discussed and they introduce a new generation of neural prosthetics based on glassy carbon micromachined electrode arrays. The tuning of the electrical, electrochemical and mechanical properties of these patternable electrodes for applications in bioelectrical signal recording and stimulation, and results from invivo testing of these glassy carbon microelectrode arrays is reported, demonstrating a quantifiable superior performance compared to metal electrodes.
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Carbon: The Next Silicon?: Book 2Applications
Marc Madou, "Carbon: The Next Silicon?: Book 2Applications"
2016 | ISBN10: 1606508830 | 234 pages | PDF | 22 MB

Nuclear Magnetic Resonance (NMR) and Electron Spin Resonance (ESR) spectroscopies are wellknown characterization techniques that reveal the molecular details of a sample noninvasively. The authors discuss how NMR can provide useful information on the microstructure of carbon and its surface properties and explain how CMEMS/CNEMS technology can be explored for building improved NMR microdevices. The authors highlight the manipulation of fluids and particles by dielectrophoresis and the use of carbon electrodes for dielectrophoresis in LabonaChip. The use of these electrodes in sample preparation through electrical polarization of a sample for identification, manipulation, and lysis of bioparticles is also discussed and they introduce a new generation of neural prosthetics based on glassy carbon micromachined electrode arrays. The tuning of the electrical, electrochemical and mechanical properties of these patternable electrodes for applications in bioelectrical signal recording and stimulation, and results from invivo testing of these glassy carbon microelectrode arrays is reported, demonstrating a quantifiable superior performance compared to metal electrodes.
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