Until recently, computational studies of biomolecules and nanomaterials have considered the two subjects separately. This book provides insights into computational simulations of biomolecules and nanomaterials collectively. It also examines novel modeling concepts at the nano-bio-interface: interactions between biomolecules and nanomaterials, such as DNA-wrapped nanotubes, nanobiosensors, and biomimetic materials. Expert contributors from around the world address such important topics as the molecular dynamics of protein translocation, coarse-grained modeling of CNT-DNA interaction,…mehr
Until recently, computational studies of biomolecules and nanomaterials have considered the two subjects separately. This book provides insights into computational simulations of biomolecules and nanomaterials collectively. It also examines novel modeling concepts at the nano-bio-interface: interactions between biomolecules and nanomaterials, such as DNA-wrapped nanotubes, nanobiosensors, and biomimetic materials. Expert contributors from around the world address such important topics as the molecular dynamics of protein translocation, coarse-grained modeling of CNT-DNA interaction, multi-scale modeling of nanowire resonator sensors, and the molecular dynamics simulation of protein mechanics.Hinweis: Dieser Artikel kann nur an eine deutsche Lieferadresse ausgeliefert werden.
Dr. Kilho Eom received a Ph.D. degree from the University of Texas at Austin in 2005. Between 2005 and 2008, he was a research scientist (2005-2007) and senior research scientist (2008) at Korea Institute of Science and Technology. Since 2008, he has been a research professor in the Department of Mechanical Engineering in Korea University. He has expertise in nanomechanics, and nanoscale physics of various objects ranging from biological molecules and cells to nanomaterials. He has served the editorial board member for ISRN Computational Mathematics.
Inhaltsangabe
Introduction. Molecular Dynamics of Protein Translocation. Coarse Grained Modeling of DNA Translocation through Nanopore. Atomistic Simulation of Auger Process in Nanoparticle Based Theragnostics. Coarse Grained Modeling of CNT DNA Interaction. Molecular Dynamics of CNT DNA Interaction. Modeling of CNT DNA Hybrid Complex. Coarse Grained Modeling of Nano Cantilever Based DNA Detection. Coarse Grained Modeling of Micro or Nano Cantilever Sensors for Atomistic Detection. Continuum Modeling of CNT Based Molecular Recognitions. Multi Scale Modeling of Nanowire Resonator Sensors. Cauchy Born Rule for Modeling Graphene Sheet. Coarse Grained Modeling of Single Molecule Experiments. Coarse Grained Modeling of Protein Dynamics. Molecular Dynamics Simulation of Protein Mechanics. Continuum Modeling of Large Protein Complex. Modeling of Biomimetic Adhesive.
Introduction. Molecular Dynamics of Protein Translocation. Coarse Grained Modeling of DNA Translocation through Nanopore. Atomistic Simulation of Auger Process in Nanoparticle Based Theragnostics. Coarse Grained Modeling of CNT DNA Interaction. Molecular Dynamics of CNT DNA Interaction. Modeling of CNT DNA Hybrid Complex. Coarse Grained Modeling of Nano Cantilever Based DNA Detection. Coarse Grained Modeling of Micro or Nano Cantilever Sensors for Atomistic Detection. Continuum Modeling of CNT Based Molecular Recognitions. Multi Scale Modeling of Nanowire Resonator Sensors. Cauchy Born Rule for Modeling Graphene Sheet. Coarse Grained Modeling of Single Molecule Experiments. Coarse Grained Modeling of Protein Dynamics. Molecular Dynamics Simulation of Protein Mechanics. Continuum Modeling of Large Protein Complex. Modeling of Biomimetic Adhesive.
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