1.

Record Nr.

UNINA9910299704803321

Autore

Kaushik Brajesh Kumar

Titolo

Carbon Nanotube Based VLSI Interconnects : Analysis and Design / / by Brajesh Kumar Kaushik, Manoj Kumar Majumder

Pubbl/distr/stampa

New Delhi : , : Springer India : , : Imprint : Springer, , 2015

ISBN

81-322-2047-1

Edizione

[1st ed. 2015.]

Descrizione fisica

1 online resource (94 p.)

Collana

SpringerBriefs in Applied Sciences and Technology, , 2191-530X

Disciplina

620

620.11295

620.11297

620.5

621.3815

Soggetti

Nanotechnology

Electronic circuits

Optical materials

Electronics - Materials

Nanotechnology and Microengineering

Circuits and Systems

Optical and Electronic Materials

Lingua di pubblicazione

Inglese

Formato

Materiale a stampa

Livello bibliografico

Monografia

Note generali

Description based upon print version of record.

Nota di bibliografia

Includes bibliographical references.

Nota di contenuto

Interconnects -- Carbon Nanotube – Properties and Applications -- Modeling of Carbon Nanotube Interconnects -- Crosstalk and Delay Analysis -- Mixed Carbon Nanotube Bundle -- References.

Sommario/riassunto

The brief primarily focuses on the performance analysis of CNT based interconnects in current research scenario. Different CNT structures are modeled on the basis of transmission line theory. Performance comparison for different CNT structures illustrates that CNTs are more promising than Cu or other materials used in global VLSI interconnects. The brief is organized into five chapters which mainly discuss: (1) an overview of current research scenario and basics of interconnects; (2) unique crystal structures and the basics of physical properties of CNTs, and the production, purification and applications of CNTs; (3) a brief



technical review, the geometry and equivalent RLC parameters for different single and bundled CNT structures; (4) a comparative analysis of crosstalk and delay for different single and bundled CNT structures; and (5) various unique mixed CNT bundle structures and their equivalent electrical models.