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Quantal and Classical Coherence and Correlation

Quantal and Classical Coherence and Correlation


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About the Book

This book highlights the physical processes of quantum mechanics, such as quantum interference, entanglement, and quantum teleportation, within the topic of quantum information and quantum computing.

Quantal and Classical Coherence and Correlation begins with exploring the general mathematical and physical concepts of coherence and correlation and provides a comparative discussion of classical and quantum coherence and correlation. In this context, the author explains the principles of quantum information, and the discussion then moves to material coherence and optical coherence and their control. He then discusses the differences between classical and quantal information techniques. The book closes with a discussion on the application probabilities of quantum technologies by examining the present and future applications of coherence.

This book is intended for upper‑level undergraduate and graduate physics and engineering students who are studying nonlinear optics, light–matter interaction, and quantum information; and industrial professionals who are involved in electronics and photonics. It will also be of interest to engineers who are involved in quantum information and quantum networks.



Table of Contents:

Chapter 1 Real‑Time Vibrational Mode‑Coupling Associated with Ultrafast Geometrical Relaxation in Polydiacetylene ; Chapter 2 Nonclassical Correlations of Photon Number and Field ; Chapter 3 Wave‑Packet Dynamics in a Cyanine Dye Molecule Excited with Femtosecond Chirped Pulses; Chapter 4 The Effect of the Electron–Electron Interactions on Localization in a One‑Dimensional Disordered Model with Long‑Range Correlation.; Chapter 5 Observation of an Oscillatory Correlation Function of Multimode Two‑Photon Pairs; Chapter 6 Two‑Photon Interference of Multimode Two‑Photon Pairs with an Unbalanced Interferometer; Chapter 7 Quasi‑Monocyclic Near‑Infrared Pulses with a Stabilized Carrier‑Envelope Phase Characterized by Noncollinear Cross‑Correlation Frequency‑Resolved Optical Gating; Chapter 8 Correlations of Instantaneous Transition Energy and Intensity of Absorption Peaks during Molecular Vibration: Toward Potential Hyper‑Surface; Chapter 10 Carrier‑Envelope Phase‑Controlled Quantum Interference in ; Chapter 11 Fidelity and Information in the Quantum Teleportation of Continuous Variables ; Chapter 12 Continuous‑Variable Teleportation of Single‑Photon States. ; Chapter 13 Nonideal Teleportation in Coherent‑State Basis. ; Chapter 14 Wave‑Packet Dynamics in a Quasi‑One‑Dimensional Metal– Halogen Complex Studied by Ultrafast Time‑Resolved ; Chapter 15 Gain Tuning and Fidelity in Continuous‑Variable Quantum Teleportation. ; Chapter 16 Two‑Mode Schrödinger Cats, Entanglement and Teleportation ; Chapter 17 Enhanced Entanglement of Two Atoms Confined in a Multimode Optical Cavity; Chapter 18 Decoy State Quantum Key Distribution with a Photon Number‑Resolved Heralded Single‑Photon Source ; Chapter 20 Beamlike Photon‑Pair Generation for Two‑Photon Interference and Polarization Entanglement. ; Chapter 21 Phase Measurement at the Heisenberg Limit with Three Photons; Chapter 22 Four‑Photon W State Using Two‑Crystal Geometry Parametric Down‑Conversion; Chapter 23 Generation of Frequency‑Tunable Polarization‑Entangled Photon Pairs ; Chapter 24 Multiphoton‑Entangled States from Two‑Crystal Geometry Parametric Down‑Conversion and Their Application in Quantum Teleportation ; Chapter 25 Beamlike Photon Pairs Entangled by a 2 × 2 Fiber ; Chapter 26 Simultaneous Measurement of Real and Imaginary Parts of Nonlinear Susceptibility for the Verification of the Kramers– Kronig Relations in Femtosecond Spectroscopy; Chapter 27 Snapshots of Dirac Fermions Near the Dirac Point in Topological Insulators. ; Chapter 28 Observation of an Excitonic Quantum Coherence in CdSe Nanocrystals ; Chapter 29 Generation of the Four‑Photon W State and Other Multiphoton‑Entangled States Using Parametric Down‑Conversion; Chapter 30 Information Losses in Continuous‑Variable Quantum Teleportation



About the Author :

Takayoshi Kobayashi is a professor emeritus at the University of Tokyo, from which he graduated with bachelor’s, master’s, and doctorate degrees. He joined the Institute of Physical and Chemical Research (Riken), and from 1977 to 1979, he was a temporary member of the technical staff at Bell Laboratories. In 1980, he joined the Department of Physics at the University of Tokyo as an associate professor and was promoted to full professor in 1994. In March 2006, he retired from the university and moved to the Department of Applied Physics and Chemistry at the University of Electro‑Communications in Tokyo. He was then appointed as Chair Professor and Director of the National Chiao‑Tung University in 2006, which became the National Yang‑Ming Chiao‑Tung University in 2021. His research interests include quantum electronics, laser physics, femtosecond spectroscopy, ultrafast nonlinear optics, quantum optics, chemical physics, and quantum information science and technology.


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Product Details
  • ISBN-13: 9781040444566
  • Publisher: Taylor & Francis Ltd
  • Publisher Imprint: CRC Press
  • Language: English
  • ISBN-10: 1040444563
  • Publisher Date: 28 Nov 2025
  • Binding: Digital (delivered electronically)


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