Bio-inspired asymmetric design and building of biomimetic smart single nanochannels

In this thesis, the author introduces various bio-inspired smart nanochannel systems. A strategy for design and preparation of novel artificial responsive symmetric/asymmetric single nanochannel systems under various symmetric/asymmetric stimuli is presented for the first time. The author s research...

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Hlavní autor: Hou, Xu, 19..-
Médium: Livre numérique
Jazyk:Anglais
Vydáno: Berlin, Heidelberg : Springer Berlin Heidelberg [20..].
Cham : Springer Nature
Vydání:1st ed. 2013.
Edice:Springer Theses, Recognizing Outstanding Ph.D. Research
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Accès INSA CVL
Poznámka: Doctoral thesis accepted bay chinese Academy of Sciences, China
Archives Springer e-books (Licence nationale)
Archives Springer e-books (Licence nationale)
Autres localisations: Voir dans le Sudoc
Edition sous un autre format:• Bio-inspired asymmetric design and building of biomimetic smart single nanochannels, Xu Hou, Heidelberg, Springer, 2013, 1 vol. (XIII-127 p.), Springer theses, 978-3-642-38049-5
• Bio-inspired Asymmetric Design and Building of Biomimetic Smart Single Nanochannels, Texte imprimé, 9783642380518
• Bio-inspired asymmetric design and building of biomimetic smart single nanochannels, Xu Hou, Heidelberg, Springer, 2013, 1 vol. (XIII-127 p.), Springer theses, 978-3-642-38049-5
• Bio-inspired Asymmetric Design and Building of Biomimetic Smart Single Nanochannels, Texte imprimé, 9783662512883
Popis
Shrnutí:In this thesis, the author introduces various bio-inspired smart nanochannel systems. A strategy for design and preparation of novel artificial responsive symmetric/asymmetric single nanochannel systems under various symmetric/asymmetric stimuli is presented for the first time. The author s research work utilizes ion track etching polymer nanochannels with different shapes as examples to demonstrate the feasibility of the design strategy for building novel artificial functional nanochannels using various symmetric/asymmetric physicochemical modifications. The development of these nanochannels and their potential applications is a burgeoning new area of research, and a number of exciting breakthroughs may be anticipated in the near future from the concepts and results reported in this thesis. Research into artificial functional nanochannels continues to drive new developments of various real-world applications, such as biosensors, energy conversion systems and nanofluidic devices. The work in this thesis has led to more than 15 publications in high-profile journals
Popis jednotky:Doctoral thesis accepted bay chinese Academy of Sciences, China
Archives Springer e-books (Licence nationale)
Archives Springer e-books (Licence nationale)
ISBN:9783642380501 (PDF)
ISSN:2190-5061
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