
Quantum Information Science
Oxford University Press
Published on 25. August 2023
Book
Hardback
768 pages
978-0-19-878748-8 (ISBN)
Description
This book provides an introduction to quantum information science, the science at the basis of the new quantum revolution of this century. It teaches the reader to build and program a quantum computer and leverage its potential.
Aimed at quantum physicists and computer scientists, the book covers several topics, including quantum algorithms, quantum chemistry, and quantum engineering of superconducting qubits.
Written by two professionals in the experimental and theoretical fields of quantum information science and containing over 200 figures and 100 exercises with solutions and summaries at the end of each chapter, this book is set to become a new standard in the field.
Aimed at quantum physicists and computer scientists, the book covers several topics, including quantum algorithms, quantum chemistry, and quantum engineering of superconducting qubits.
Written by two professionals in the experimental and theoretical fields of quantum information science and containing over 200 figures and 100 exercises with solutions and summaries at the end of each chapter, this book is set to become a new standard in the field.
Reviews / Votes
Manenti and Motta provide a tour-de-force of quantum information science. This is the first textbook that I have seen that comprehensively begins with mathematics, moves on to quantum physics, and via quantum algorithms ends up in the discussion of hardware implementations. With detailed explanations, modern references, and further reading tips this book is poised to become one of the classics in every quantum information scientist's bookshelf * Alan Aspuru-Guzik, Professor of Chemistry and Computer Science, University of Toronto and Scientific Advisor, Zapata Computing * Manenti and Motta have navigated the vast field of quantum information science to create a well-rounded and accessible textbook. Though the subject is too broad to be covered in its entirety, the authors have carefully selected key topics and provide clear explanations including advanced topics on quantum simulation and superconducting devices. This is an excellent resource for anyone starting a career in this field. * Jay Gambetta, IBM Fellow and Vice President of IBM Quantum * The text 'Quantum Information Science' is an admirable attempt by these two authors, a theorist and an experimentalist in the quantum information field, to guide readers from the very basics to the frontiers of research. The unusual breadth of topics ensures that every reader will learn something new and the inclusion of a large number of problems with detailed solutions means that this work is suitable for instructional use in graduate classes. A much needed and unique tour-de-force. * Garnet Kin-Lic Chan, Bren Professor of Chemistry, Caltech * Manenti and Motta have made a great effort to introduce the basic concepts in the rapidly growing field of quantum information science and technology. With numerous exercises and references, this book will not only be a valuable resource for current students, but also serve as a foundation for the next generation of quantum engineers. * Yasunobu Nakamura, Professor of Quantum Information Physics, University of Tokyo * Quantum information science is a comprehensive discussion of the field. * Ghita Kouadri, Computing Reviews *More details
Edition
1
Language
English
Place of publication
Oxford
United Kingdom
Target group
College/higher education
Product notice
Laminated cover
Illustrations
264 illustrations
Dimensions
Height: 251 mm
Width: 174 mm
Thickness: 43 mm
Weight
1630 gr
ISBN-13
978-0-19-878748-8 (9780198787488)
Copyright in bibliographic data and cover images is held by Nielsen Book Services Limited or by the publishers or by their respective licensors: all rights reserved.
Schweitzer Classification
Other editions
Additional editions

Riccardo Manenti | Mario Motta
Quantum Information Science
E-Book
08/2023
1st Edition
OUP eBook
€53.99
Available for download
Persons
Riccardo Manenti earned his DPhil at the University of Oxford in 2017 with a thesis investigating the coupling between a superconducting qubit and a mechanical oscillator based on surface acoustic waves. His research contributed to the formation of a new research field, now called circuit quantum acousto-dynamics. He is currently a Senior Quantum Engineer at Rigetti Computing, a quantum computing company based in Berkeley, California.
Mario Motta earned his Ph.D. at the University of Milano in 2015 with a thesis on quantum Monte Carlo simulation of fermionic systems. After postdoctoral positions at the College of William and Mary and the California Institute of Technology, he became a Research Staff Member at IBM Almaden Research Center in 2019.
Mario Motta earned his Ph.D. at the University of Milano in 2015 with a thesis on quantum Monte Carlo simulation of fermionic systems. After postdoctoral positions at the College of William and Mary and the California Institute of Technology, he became a Research Staff Member at IBM Almaden Research Center in 2019.
Author
Senior Quantum EngineerSenior Quantum Engineer, Rigetti Computing
Research Staff MemberResearch Staff Member, IBM Almaden Research Center
Content
PART I - FOUNDATIONS
1: Mathematical tools
2: Computational models
3: Linear algebra
4: Quantum mechanics
5: Quantum circuits
PART II - MODERN QUANTUM MECHANICS
6: Density operators
7: Quantum maps
8: Decoherence
PART III - APPLICATIONS
9: Entanglement
10: Early quantum algorithms
11: Quantum simulation of Hamiltonian dynamics
12: Quantum simulation of Hamiltonian eigenstates
PART IV - QUANTUM ENGINEERING OF SUPERCONDUCTING DEVICES
13: Microwave resonators for superconducting devices
14: Superconducting qubits
Appendix A: The rotating wave approximation
Appendix B: Advanced quantum mechanics
Appendix C: The quantum Fourier transform
Appendix D: The molecular Hamiltonian in second quantization
1: Mathematical tools
2: Computational models
3: Linear algebra
4: Quantum mechanics
5: Quantum circuits
PART II - MODERN QUANTUM MECHANICS
6: Density operators
7: Quantum maps
8: Decoherence
PART III - APPLICATIONS
9: Entanglement
10: Early quantum algorithms
11: Quantum simulation of Hamiltonian dynamics
12: Quantum simulation of Hamiltonian eigenstates
PART IV - QUANTUM ENGINEERING OF SUPERCONDUCTING DEVICES
13: Microwave resonators for superconducting devices
14: Superconducting qubits
Appendix A: The rotating wave approximation
Appendix B: Advanced quantum mechanics
Appendix C: The quantum Fourier transform
Appendix D: The molecular Hamiltonian in second quantization