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2D Materials contains the latest information on the current
frontier of nanotechnology, the thinnest form of materials to ever
occur in nature. A little over 10 years ago, this was a completely
unknown area, not thought to exist. However, since then, graphene
has been isolated and acclaimed, and a whole other class of
atomically thin materials, dominated by surface effects and showing
completely unexpected and extraordinary properties has been
created. This book is ideal for a variety of readers, including
those seeking a high-level overview or a very detailed and critical
analysis. No nanotechnologist can currently overlook this new class
of materials.
This book provides readers with a comprehensive, state-of-the-art
reference for miniaturized More-than-Moore systems with a broad
range of functionalities that can be added to 3D microsystems,
including flexible electronics, metasurfaces and power sources. The
book also includes examples of applications for brain-computer
interfaces and event-driven imaging systems. Provides a
comprehensive, state-of-the-art reference for miniaturized
More-than-Moore systems; Covers functionalities to add to 3D
microsystems, including flexible electronics, metasurfaces and
power sources; Includes current applications, such as
brain-computer interfaces, event - driven imaging and edge
computing.
Graphene, the wonder material of the 21st century, is expected to
play an important role in future nanoelectronic applications, but
the only way to achieve this goal is to grow graphene directly on a
semiconductor, integrating it in the chain for the production of
electronic circuits and devices. This book summarizes the latest
achievements in this field, with particular attention to the
graphitization of SiC. Through high-temperature annealing in a
controlled environment, it is possible to decompose the topmost SiC
layers, obtaining quasi-ideal graphene by Si sublimation with
record electronic mobilities, while selective growth on patterned
structures makes possible the opening of a gap by quantum
confinement. The book starts with a review chapter on the
significance and challenges of graphene growth on semiconductors,
followed by three chapters dedicated to an up-to-date analysis of
the synthesis of graphene in ultrahigh vacuum, and concludes with
two chapters discussing possible ways of tailoring the electronic
band structure of epitaxial graphene by atomic intercalation and of
creating a gap by the growth of templated graphene nanostructures.
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