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This book provides an introductory and general overview of advances
in polymers towards their employment as antimicrobial materials.
The author describes current approaches for avoiding microbial
contamination, toward macro-molecular antibiotics, and prevention
of antibiotic-resistant bacteria by use of polymers. He establishes
the remaining issues and analyzes existing methodologies for
treating bacterial infections and for preparing antimicrobial
materials.
This book addresses in an integrated manner all the critical
aspects for building the next generation of biorecognition
platforms - from biomolecular recognition to surface fabrication.
The most recent strategies reported to create surface nano and
micropatterns are thoroughly analyzed. This book contains
descriptions of the types of molecules immobilized at surfaces that
can be used for specific biorecognition, how to immobilize them,
and how to control their arrangement and functionality at the
surface. Small molecules, peptides, proteins and oligonucleotides
are at the core of the biorecognition processes and will constitute
a special part of this book. The authors include detailed
information on biological processes, biomolecular screening,
biosensing, diagnostic and detection devices, tissue engineering,
development of biocompatible materials and biomedical devices.
This book presents the state of the art in surface wrinkling,
including current and future potential applications in biomedicine,
tissue engineering, drug delivery, microfluidic devices, and other
promising areas. Their use as templates, flexible electronics, and
supports with controlled wettability and/or adhesion for biorelated
applications demonstrate how the unique characteristics of wrinkled
interfaces play a distinguishing and remarkable role. The
fabrication approaches employed to induce wrinkle formation and the
potential to fine-tune the amplitude and period of the wrinkles,
their functionality, and their final morphology are thoroughly
described. An overview of the main applications in which these
buckled interfaces have already been employed or may have an impact
in the near future is included. Presents a detailed description of
the physical phenomena and strategies occurring at polymer surfaces
to produce wrinkled surface patterns; Examines the different
methodologies to produce morphology-controlled wrinkled surface
patterns by means of physical and chemical treatment methods;
Provides clear information on current and potential applications in
flexible electronics and biomaterials, which are leading the use of
these materials.
This book provides an introductory and general overview of advances
in polymers towards their employment as antimicrobial materials.
The author describes current approaches for avoiding microbial
contamination, toward macro-molecular antibiotics, and prevention
of antibiotic-resistant bacteria by use of polymers. He establishes
the remaining issues and analyzes existing methodologies for
treating bacterial infections and for preparing antimicrobial
materials.
This book addresses in an integrated manner all the critical
aspects for building the next generation of biorecognition
platforms - from biomolecular recognition to surface fabrication.
The most recent strategies reported to create surface nano and
micropatterns are thoroughly analyzed. This book contains
descriptions of the types of molecules immobilized at surfaces that
can be used for specific biorecognition, how to immobilize them,
and how to control their arrangement and functionality at the
surface. Small molecules, peptides, proteins and oligonucleotides
are at the core of the biorecognition processes and will constitute
a special part of this book. The authors include detailed
information on biological processes, biomolecular screening,
biosensing, diagnostic and detection devices, tissue engineering,
development of biocompatible materials and biomedical devices.
Pattern formation is a fascinating and challenging aspect in
polymer science. This book describes a number of unconventional
approaches developed to control the morphology of polymer surfaces
and materials, from random or simple patterns to complex
structures. Specialists provide an up-to-date and complete overview
of each technique in their respective field.
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