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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.
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.  Â
Integrated Nanophotonics Helps readers understand the important
advances in nanophotonics materials development and their latest
applications This book introduces the current state of and emerging
trends in the development of integrated nanophotonics. Written by
three well-qualified authors, it systematically reviews the
knowledge of integrated nanophotonics from theory to the most
recent technological developments. It also covers the applications
of integrated nanophotonics in essential areas such as neuromorphic
computing, biosensing, and optical communications. Lastly, it
brings together the latest advancements in the key principles of
photonic integrated circuits, plus the recent advances in tackling
the barriers in photonic integrated circuits. Sample topics
included in this comprehensive resource include: Platforms for
integrated nanophotonics, including lithium niobate nanophotonics,
indium phosphide nanophotonics, silicon nanophotonics, and
nonlinear optics for integrated photonics The devices and
technologies for integrated nanophotonics in on-chip light sources,
optical packaging of photonic integrated circuits, optical
interconnects, and light processing devices Applications on
neuromorphic computing, biosensing, LIDAR, and computing for AI and
artificial neural network and deep learning Materials scientists,
physicists, and physical chemists can use this book to understand
the totality of cutting-edge theory, research, and applications in
the field of integrated nanophotonics.
This thesis deals with the optical properties of Localized surface
plasmon resonances (SPR) determine the main optical properties of
Ag and Au nanoparticles in the visible. Under certain conditions,
SPR can give rise to single molecule sensitivity in
surface-enhanced Raman scattering (SERS). The experimental
observation of dimer structures, where two Ag particles are bridged
by a single hemoglobin molecule, probably reveal the simplest
nanoparticle system that can amplify Raman scattering to the extent
that vibrational spectra of single molecules can be recorded. More
controllable interparticle coupling effects are observed for
nanofabricated Ag particles on Si. The generalized Mie theory (GMT)
has been used to analyze the mechanisms of single molecule SERS,
which indicates that the electromagnetic enhancement mechanism is
the main contributor to SERS. GMT is also used to theoretically
quantify optical forces associated with Ag nanoparticles. The
results indicate that molecules can be trapped and particle
aggregates deformed by the optical forces induced at SPR
excitation.
The manipulation of light at the nanometer scale is highly pursued
for both fundamental sciences and wide applications. The
diffraction limit of light sets the limit for the smallest size of
photonic devices to the scale of light wavelength. Fortunately, the
peculiar properties of surface plasmons in metal nanostructures
make it possible to squeeze light into nanoscale volumes and enable
the manipulation of light and light-matter interactions beyond the
diffraction limit. Studies on surface plasmons have led to the
creation of a booming research field called plasmonics. Because of
its various scientific and practical applications, plasmonics
attracts researchers from different fields, making it a truly
interdisciplinary subject. Nanophotonics: Manipulating Light with
Plasmons starts with the general physics of surface plasmons and a
brief introduction to the most prominent research topics, followed
by a discussion of computational techniques for light scattering by
small particles. Then, a few special topics are highlighted,
including surfaceenhanced Raman scattering, optical nanoantennas,
optical forces, plasmonic waveguides and circuits, and
gain-assisted plasmon resonances and propagation. The book
discusses the fundamental and representative properties of both
localized surface plasmons and propagating surface plasmons. It
explains various phenomena and mechanisms using elegant model
systems with well-defined structures, is illustrated throughout
with excellent figures, and contains an extensive list of
references at the end of each chapter. It will help graduate-level
students and researchers in nanophotonics, physics, chemistry,
materials science, nanoscience and nanotechnology, and electrical
and electronic engineering get a quick introduction to this field.
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