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Titlebook: Nanobioelectronics - for Electronics, Biology, and Medicine; Andreas Offenhäusser,Ross Rinaldi Book 2009 Springer-Verlag New York 2009 Bio

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书目名称Nanobioelectronics - for Electronics, Biology, and Medicine
编辑Andreas Offenhäusser,Ross Rinaldi
视频video
概述One of the first books on nanobiotechnology, this volume will survey the many results in this rapidly developing field
丛书名称Nanostructure Science and Technology
图书封面Titlebook: Nanobioelectronics - for Electronics, Biology, and Medicine;  Andreas Offenhäusser,Ross Rinaldi Book 2009 Springer-Verlag New York 2009 Bio
描述The combination of biological elements with electronics is of great interest for many research areas. Inspired by biological signal processes, scientists and engineers are exploring ways of manipulating, assembling, and applying biomolecules and cells on integrated circuits, joining biology with electronic devices. The overall goal is to create bioelectronic devices for biosensing, drug discovery, and curing diseases, but also to build new electronic systems based on biologically inspired concepts. This research area called bioelectronics requires a broad interdisciplinary and transdisciplinary approach to biology and material science. Even though at the frontier of life science and material science, bioelectronics has achieved in the last years many objectives of scientific and industrial relevance, including aspects of electronics and biotechnology. Although the first steps in this field combined biological and electronic units for sensor applications (e. g. , glucose oxidase on an oxygen electrode), we see now many applications in the fields of genomics, proteomics, and celomics as well as electronics. This approach challenges both the researcher and the student to learn and thi
出版日期Book 2009
关键词Biosensor; DNA; Lipid; Potential; Sensor; biosensing; electronics; enzymes; fabrication; information processi
版次1
doihttps://doi.org/10.1007/978-0-387-09459-5
isbn_softcover978-1-4419-1857-4
isbn_ebook978-0-387-09459-5Series ISSN 1571-5744 Series E-ISSN 2197-7976
issn_series 1571-5744
copyrightSpringer-Verlag New York 2009
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n the case of hard ellipsoids, we found that the stability of the nematic phase is simply related to the degree of non-sphericity of the molecules. Moreover, even though parallel ellipsoidal particles cannot form stable smectics, parallel spherocylinders can. This result is quite unexpected because
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the slip limit are useful estimates of the rotation rate for large, symmetrically charged molecules, if there are no strong solvent interactions. For cases of strong interactions, the rotation rate reduces by a factor of 5–6. For the symmetric, anionic dye molecule resorufin, we successfully modele
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uence, pulse separation and magnetic field orientation provides the large number of independent experiments necessary for a proper molecular characterization of the systems. Analysis of these experiments in terms of molecular order and dynamics is conveniently achieved by employing a density matrix
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1571-5744 , proteomics, and celomics as well as electronics. This approach challenges both the researcher and the student to learn and thi978-1-4419-1857-4978-0-387-09459-5Series ISSN 1571-5744 Series E-ISSN 2197-7976
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