1.

Record Nr.

UNINA9910155299003321

Autore

Dragoman Mircea

Titolo

2D Nanoelectronics : Physics and Devices of Atomically Thin Materials / / by Mircea Dragoman, Daniela Dragoman

Pubbl/distr/stampa

Cham : , : Springer International Publishing : , : Imprint : Springer, , 2017

Edizione

[1st ed. 2017.]

Descrizione fisica

1 online resource (XII, 199 p. 220 illus., 131 illus. in color.)

Collana

NanoScience and Technology, , 1434-4904

Disciplina

620.5

Soggetti

Optical materials

Electronic materials

Semiconductors

Nanotechnology

Lasers

Photonics

Solid state physics

Optical and Electronic Materials

Nanotechnology and Microengineering

Optics, Lasers, Photonics, Optical Devices

Solid State Physics

Lingua di pubblicazione

Inglese

Formato

Materiale a stampa

Livello bibliografico

Monografia

Nota di bibliografia

Includes bibliographical references at the end of each chapters and index.

Nota di contenuto

Carbon-based nanoelectronics -- Metallic chalcogenides nanoelectronics -- Silicene and germanium nanoelectronics -- 2D electron gas nanoelctronics -- Other 2D materials.

Sommario/riassunto

This book is dedicated to the new two-dimensional one-atomic-layer-thick materials such as graphene, metallic chalcogenides, silicene and other 2D materials. The book describes their main physical properties and applications in nanoelctronics, photonics, sensing and computing. A large part of the book deals with graphene and its amazing physical properties. Another important part of the book deals with semiconductor monolayers such as MoS2 with impressive applications in photonics, and electronics. Silicene and germanene are the atom-



thick counterparts of silicon and germanium with impressive applications in electronics and photonics which are still unexplored. Consideration of two-dimensional electron gas devices conclude the treatment. The physics of 2DEG is explained in detail and the applications in THz and IR region are discussed. Both authors are working currently on these 2D materials developing theory and applications.