Fundamentals of Electronic Materials and Devices a Gentle Introduction to the Quantum Classical World (Record no. 814475)

MARC details
000 -LEADER
fixed length control field 03817nam a22002537a 4500
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 240111s2023 |||||||| |||| 00| 0 eng d
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9789811266577
022 ## - INTERNATIONAL STANDARD SERIAL NUMBER
ISSN-L 9789811266577
041 ## - LANGUAGE CODE
Language code of text/sound track or separate title English
082 ## - DEWEY DECIMAL CLASSIFICATION NUMBER
Classification number 621.381
Item number GHO
100 ## - MAIN ENTRY--PERSONAL NAME
Personal name Ghosh, Avik
9 (RLIN) 879288
Relator term author
245 ## - TITLE STATEMENT
Title Fundamentals of Electronic Materials and Devices a Gentle Introduction to the Quantum Classical World
260 ## - PUBLICATION, DISTRIBUTION, ETC.
Place of publication, distribution, etc. New Jersey :
Name of publisher, distributor, etc. World Scientific,
Date of publication, distribution, etc. c2023
300 ## - PHYSICAL DESCRIPTION
Extent xv, 331 p.
Other physical details : ill
490 ## - SERIES STATEMENT
Series statement Lessons from Nano Science a Lecture Note Series ; Vol. 8
500 ## - GENERAL NOTE
General note AUTHOR<br/><br/>Avik Ghosh is Professor at the Charles Brown Department of Electrical and Computing Engineering and the Department of Physics at the University of Virginia. He holds a PhD in theoretical condensed matter physics from the Ohio State University and a postdoctoral fellowship in Electrical Engineering from Purdue University. He is also the UVA site-director of the NSF-Industry University Cooperative Center on Multifunctional Integrated Systems Technology (MIST). Ghosh has authored 150+ refereed papers and a book (Nanoelectronics — A Molecular View, World Scientific 2016) in the area of computational nanomaterials and device physics. He has given over 150 invited lectures worldwide. He is Fellow of the Institute of Physics (IOP), senior member of the IEEE, and has received the IBM Faculty Award, the NSF CAREER Award, a best paper award from the Army Research Office, and UVA's All University Teaching Award. His group's work with Columbia University on demonstrating negative index behavior in graphene was voted by the editors of Physics World as one of the top 10 research breakthroughs of 2016.
504 ## - BIBLIOGRAPHY, ETC. NOTE
Bibliography, etc. note Includes Bibliographical References and Index
520 ## - SUMMARY, ETC.
Summary, etc. SUMMARY<br/><br/>The Romans built enduring bridges well before Newton came along, armed simply with a working knowledge of mechanics and materials. In contrast, today's bridge building is an elaborate enterprise involving CAD tools, composite materials and acoustic imaging. When technology is pushed to its limits, a working knowledge proves inadequate, and an in-depth understanding of core physical principles, both macroscopic and microscopic, top-down vs bottom-up, becomes essential.<br/><br/>We find ourselves today at a similar crossroad in semiconductor device technology, where a working knowledge of solid state electronics is no longer enough. Faced with the prohibitive cost of computing and the slowdown of chip manufacturing, device scaling and the global supply chain, the semiconductor industry is forced to explore alternate platforms such as 2-D materials, spintronics, analog processing and quantum engineering.<br/><br/>This book combines top-down classical device physics with bottom-up quantum transport in a single venue to provide the basis for such a scientific exploration. It is essential, easy reading for beginning undergraduate and practicing graduate students, physicists unfamiliar with device engineering and engineers untrained in quantum physics. With just a modest pre-requisite of freshman maths, the book works quickly through key concepts in quantum physics, Matlab exercises and original homeworks, to cover a wide range of topics from chemical bonding to Hofstader butterflies, domain walls to Chern insulators, solar cells to photodiodes, FinFETs to Majorana fermions. For the practicing device engineer, it provides new concepts such as the quantum of resistance, while for the practicing quantum physicist, it provides new contexts such as the tunnel transistor.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
9 (RLIN) 155475
Topical term or geographic name entry element Electronic Apparatus and Appliances
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
9 (RLIN) 706763
Topical term or geographic name entry element Electronic Materials
856 ## - ELECTRONIC LOCATION AND ACCESS
Link text TOC
Uniform Resource Identifier <a href="https://eaklibrary.neduet.edu.pk:8443/catalog/bk/books/toc/9789811266577.pdf">https://eaklibrary.neduet.edu.pk:8443/catalog/bk/books/toc/9789811266577.pdf</a>
856 ## - ELECTRONIC LOCATION AND ACCESS
Link text WEB LINK
Uniform Resource Identifier <a href="https://www.worldscientific.com/worldscibooks/10.1142/13131#t=toc">https://www.worldscientific.com/worldscibooks/10.1142/13131#t=toc</a>
942 ## - ADDED ENTRY ELEMENTS (KOHA)
Source of classification or shelving scheme Dewey Decimal Classification
Koha item type Book
Holdings
Withdrawn status Lost status Source of classification or shelving scheme Physical Form Damaged status Not for loan Purchased by Department/Discipline Home library Current library Shelving location Date acquired Source of acquisition Stock Type Cost, normal purchase price Total Checkouts Full call number Barcode Date last seen Budget Year Cost, replacement price Accession Date Koha item type
    Dewey Decimal Classification Text, Paperback     Department of Electronic Engineering Circulation Section Circulation Section Circulation Section 13/12/2023 22 Purchased 11031.74   621.381 GHO 98504 21/02/2024 2023-2024 11031.74 13/12/2023 Lending Collection