Listing 1 - 10 of 136 | << page >> |
Sort by
|
Choose an application
My master’s thesis aims to explain the way surface plasmon resonance (SPR) sensors work, to present the different sets of information on the molecular interactions one can obtain from them, and to develop the advantages and drawbacks of their use in the drug discovery research. This thesis covers the uptakes of SPR detectors in a variety of applications In drug discovery, such as in fragments based drug design (FBDD), the screening of membrane proteins, and the determination of ADME-Tox properties. This thesis also deals with the benefits of taking into account the residence time in optimizing potential drug candidates. Ce mémoire a pour objectif d'expliquer le fonctionnement des détecteurs de résonance plasmonique de surface (SPR), de présenter les différentes informations sur les interactions moléculaires que l'on peut en tirer et de présenter les intérêts, les avantages et les inconvénients de leur utilisation dans le processus de découverte de médicaments. Ce travail traite donc de l'utilisation des détecteurs SPR dans différentes applications du processus de découverte de médicaments telles que l'approche par fragments (FBDD), le criblage de protéines membranaires et la détermination de propriétés ADME-Tox. Ce travail traite également de l'intérêt de la prise en compte du temps de résidence dans l'optimisation des candidats médicaments .
Choose an application
During the last few years, nanomaterials have attracted the attention of the scientific community due to their extraordinary and unique properties. Their small size, and the distinctive features that come with it, makes these materials very attractive for use in different important fields like biomedicine, sensors, or catalysis. One of the most important properties of these materials is their interaction with light and is called surface plasmon resonance. It is a phenomenon that happens on the surface of certain nanomaterials that confers them with unique properties. This remarkable characteristic has opened a whole new field called nanoplasmonics that is acquiring more and more importance among the scientific community. This book aims to review the state of the art in this new field and provide the reader with a wide overview of the new nanomaterials available and their current and future applications.
Choose an application
During the last few years, nanomaterials have attracted the attention of the scientific community due to their extraordinary and unique properties. Their small size, and the distinctive features that come with it, makes these materials very attractive for use in different important fields like biomedicine, sensors, or catalysis. One of the most important properties of these materials is their interaction with light and is called surface plasmon resonance. It is a phenomenon that happens on the surface of certain nanomaterials that confers them with unique properties. This remarkable characteristic has opened a whole new field called nanoplasmonics that is acquiring more and more importance among the scientific community. This book aims to review the state of the art in this new field and provide the reader with a wide overview of the new nanomaterials available and their current and future applications.
Choose an application
During the last few years, nanomaterials have attracted the attention of the scientific community due to their extraordinary and unique properties. Their small size, and the distinctive features that come with it, makes these materials very attractive for use in different important fields like biomedicine, sensors, or catalysis. One of the most important properties of these materials is their interaction with light and is called surface plasmon resonance. It is a phenomenon that happens on the surface of certain nanomaterials that confers them with unique properties. This remarkable characteristic has opened a whole new field called nanoplasmonics that is acquiring more and more importance among the scientific community. This book aims to review the state of the art in this new field and provide the reader with a wide overview of the new nanomaterials available and their current and future applications.
Choose an application
Choose an application
Plasmons (Physics) --- Surface plasmon resonance. --- Plasmon resonance, Surface --- Resonance, Surface plasmon --- Sensing, Surface plasmon resonance --- SPR (Surface plasmon resonance) --- Surface plasmon resonance sensing --- Biosensors --- Optical detectors --- Plasma oscillation quanta --- Exciton theory --- Plasma oscillations --- Plasma waves --- Quasiparticles (Physics) --- Solids --- Plasma effects
Choose an application
SPR is real-time, label-free measurements of binding kinetics and affinity. This has distinct advantage over radioactive or fluorescent labeling methods, in terms of 1) ligand-analyte binding kinetics, that can be probed without the costly and time-consuming labeling process that may interfere with molecular binding interactions; 2) binding rates and affinity can be measured directly and 3) low affinity interactions in high protein concentrations for can be characterized with less reagent consumption than other equilibrium measurement techniques; 4) Label-free detection of molecular interactio
Surface plasmon resonance. --- Plasmons (Physics) --- Plasma oscillation quanta --- Exciton theory --- Plasma oscillations --- Plasma waves --- Quasiparticles (Physics) --- Solids --- Plasmon resonance, Surface --- Resonance, Surface plasmon --- Sensing, Surface plasmon resonance --- SPR (Surface plasmon resonance) --- Surface plasmon resonance sensing --- Biosensors --- Optical detectors --- Plasma effects
Choose an application
Surface plasmon resonance. --- Biomolecules --- Liquid crystals --- Crystals, Liquid --- Light sources --- Biological molecules --- Molecules --- Molecular biology --- Plasmon resonance, Surface --- Resonance, Surface plasmon --- Sensing, Surface plasmon resonance --- SPR (Surface plasmon resonance) --- Surface plasmon resonance sensing --- Biosensors --- Optical detectors --- Plasmons (Physics) --- Research.
Choose an application
Nanophotonics. --- Surface plasmon resonance. --- Polaritons. --- Phonons --- Photons --- Quantum theory --- Solids --- Plasmon resonance, Surface --- Resonance, Surface plasmon --- Sensing, Surface plasmon resonance --- SPR (Surface plasmon resonance) --- Surface plasmon resonance sensing --- Biosensors --- Optical detectors --- Plasmons (Physics) --- Nano photonics --- Photonics
Choose an application
This book highlights cutting-edge research in surface plasmons, discussing the different types and providing a comprehensive overview of their applications. Surface plasmons (SPs) receive special attention in nanoscience and nanotechnology due to their unique optical, electrical, magnetic, and catalytic properties when operating at the nanoscale. The excitation of SPs in metal nanostructures enables the manipulation of light beyond the diffraction limit, which can be utilized for enhancing and tailoring light-matter interactions and developing ultra-compact high-performance nanophotonic devices for various applications. With clear and understandable illustrations, tables, and descriptions, this book provides physicists, materials scientists, chemists, engineers, and their students with a fundamental understanding of surface plasmons and device applications as a basis for future developments.
Nanotechnology. --- Optical materials. --- Surface plasmon resonance. --- Plasmon resonance, Surface --- Resonance, Surface plasmon --- Sensing, Surface plasmon resonance --- SPR (Surface plasmon resonance) --- Surface plasmon resonance sensing --- Biosensors --- Optical detectors --- Plasmons (Physics) --- Optics --- Materials --- Molecular technology --- Nanoscale technology --- High technology
Listing 1 - 10 of 136 | << page >> |
Sort by
|