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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.
This book introduces various advanced, smart materials and the
strategies for the design and preparation for novel uses from macro
to micro or from biological, inorganic, organic to composite
materials. Selecting the best material is a challenging task,
requiring tradeoffs between material properties and designing
functional smart materials. The development of smart, advanced
materials and their potential applications is a burgeoning area of
research. Exciting breakthroughs are anticipated in the future from
the concepts and results reported in this book.
This book introduces various advanced, smart materials and the
strategies for the design and preparation for novel uses from macro
to micro or from biological, inorganic, organic to composite
materials. Selecting the best material is a challenging task,
requiring tradeoffs between material properties and designing
functional smart materials. The development of smart, advanced
materials and their potential applications is a burgeoning area of
research. Exciting breakthroughs are anticipated in the future from
the concepts and results reported in this book.
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.
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