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  • Handbook of Electronic Structure Theory: Methods and Applications

    Handbook of Electronic Structure Theory by Hochlaf, Majdi; Barone, Vincenzo;

    Methods and Applications

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      • Publisher's listprice EUR 231.99
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        96 217 Ft (91 636 Ft + 5% VAT)
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    96 217 Ft

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    Product details:

    • Publisher Elsevier Science
    • Date of Publication 6 March 2026

    • ISBN 9780443265969
    • Binding Paperback
    • No. of pages760 pages
    • Size 276x216 mm
    • Weight 450 g
    • Language English
    • 700

    Categories

    Long description:

    Handbook of Electronic Structure Theory: Methods and Applications provides a much-needed learning resource that collects and demonstrates the various key methods involved in electronic structure theory, the feasibility and reliability of electronic structure calculations, and their applications using computational chemistry. With a particular focus on the most modern and recent problems that are typically poorly covered in existing, largely outdated book literature, this handbook is designed with early career researchers in mind. It is written primarily for masters, PhD, and postdoctoral students in theoretical and computational chemistry as well as experimental researchers wishing to apply quantum chemical methods in a critical way.

    Elements like summary boxes, worked examples, and downloadable datasets make this a holistic guide to the topic for learners from different backgrounds who require a deeper understanding of electronic structure theory. Sections focus on critical core theories, the most important recent developments, and future directions, including key topics such as the electronic excited states and the harnessing of machine learning. Finally, the book collects a range of key case study examples of applications, such as in biomolecules, in spectroscopy, and for use in catalysis, amongst others.


    • Provides comprehensive coverage of electronic structure theory and its application using computational chemistry
    • Written with consistent structure and pedagogical elements to maximize learning and understanding
    • Focuses on modern and the most recent problems and challenges in electronic structure theory (which have been poorly covered in existing books and literature)

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    Table of Contents:

    1. Introduction

    Part I: Theoretical background
    2. Robust and efficient design of algorithms in quantum chemistry: the case of Davidson's diagonalization
    3. Introduction to Beyond the Born- Oppenheimer Approximation: Ultrafast Time-Dependent Electronic and Nuclear Dynamics
    4. Positively Charged Molecular Ions Electronic Structure Computations
    5. Nonadiabatic molecular dynamics with classical trajectories
    6. Summary of the state of the art of density functional theory
    7. Hybrid QM:QM method for chemically accurate adsorption thermodynamics and isotherms
    8. Summary of the state of the art of post-Hartree-Fock methods
    9. Green’s function methods: theory and applications for ionization potentials and electron affinities
    10. The quest for high accuracy in quantum chemistry
    11. From niche to necessity: local coupled cluster methods in modern chemical research
    12. Modeling reaction mechanisms involving metals in homogeneous reaction conditions
    13. Transition state theory: a (quasi)classical perspective
    14. How to embrace the quantum topological atom
    15. Symmetry-adapted perturbation theory
    16. Introduction to the application of quantum computing in quantum chemistry
    17. Machine learning electronic structure methods

    Part II: Applications and case studies
    18. Electronic structure computations of molecular anions and applications
    19. Constructing ab initio potential energy surfaces toward spectroscopic accuracy for weakly-bonded complexes
    20. Chemical bonds and non-covalent interactions: Topological characterization and study of their evolution along a reaction path
    21. van der Waals complexes: a computational dispersion challenging case
    22. Multidimensional potential energy surfaces mapping for spectroscopy and dynamics of weakly bound complexes
    23. Quantum chemistry for astrochemists
    24. Quantum-chemical approach to rotational spectroscopy
    25. Computational vibrational spectroscopy
    26. Exploring the unknown: automated methods for finding novel and unexpected reaction pathways
    27. Ultrafast electronic dynamics through real-time methods
    28. Transition-state theory: a step further
    29. Development and application of an automatic protocol for the determination of rate constants using variable reaction coordinate transition-state theory
    30. Diabatization and construction of global diabatic potential energy matrices for photodissociation and bimolecular collisions
    31. The role of electronic structure methods in environmental chemistry: from global warming to pollution mitigation
    32. Interfaces, confined systems, and nanosystems
    33. Processes in solution
    34. Processes in the solid state
    35. A hitchhiker guide to modeling homogeneous catalysis
    36. Biomolecular force fields: advances in nonstandard amino acid and nucleic acid development
    37. Quantum mechanics/molecular mechanics simulations of proton transfer processes in vesicular glutamate and D-galactonate transporters

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