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Phase Transitions in Materials, Brent Fultz


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Автор: Brent Fultz
Название:  Phase Transitions in Materials
ISBN: 9781108485784
Издательство: Cambridge Academ
Классификация:






ISBN-10: 1108485782
Обложка/Формат: Hardcover
Страницы: 620
Вес: 0.42 кг.
Дата издания: 30.04.2020
Серия: Physics
Язык: English
Иллюстрации: Worked examples or exercises; 26 halftones, black and white; 264 line drawings, black and white
Размер: 252 x 198 x 28
Читательская аудитория: Tertiary education (us: college)
Ключевые слова: Atomic & molecular physics,Condensed matter physics (liquid state & solid state physics),Thermodynamics & heat,Applied physics,Materials science,Engineering thermodynamics,Nanotechnology, TECHNOLOGY & ENGINEERING / Materials Science
Ссылка на Издательство: Link
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Поставляется из: Англии
Описание: The new edition of this popular textbook provides a fundamental approach to phase transformations and thermodynamics of materials, emphasising explanations at the level of atoms and electrons. Fully revised and updated, and including over 170 end-of-chapter problems, it is a valuable companion for graduate students and researchers.

Statistical mechanics of phase transitions

Автор: Yeomans, J.m.
Название: Statistical mechanics of phase transitions
ISBN: 0198517300 ISBN-13(EAN): 9780198517306
Издательство: Oxford Academ
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Цена: 43290.00 T
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Описание: This work provides an introduction to the physics which underlies phase transitions and to the theoretical techniques currently at our disposal for understanding them. It will be useful for advanced undergraduates, for post-graduate students undertaking research in related fields, and for established researchers.

Understanding quantum phase transitions

Название: Understanding quantum phase transitions
ISBN: 1439802513 ISBN-13(EAN): 9781439802519
Издательство: Taylor&Francis
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Цена: 193950.00 T
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Описание:

Quantum phase transitions (QPTs) offer wonderful examples of the radical macroscopic effects inherent in quantum physics: phase changes between different forms of matter driven by quantum rather than thermal fluctuations, typically at very low temperatures. QPTs provide new insight into outstanding problems such as high-temperature superconductivity and display fundamental aspects of quantum theory, such as strong correlations and entanglement. Over the last two decades, our understanding of QPTs has increased tremendously due to a plethora of experimental examples, powerful new numerical methods, and novel theoretical understanding of previously intractable quantum many-body problems.


Understanding Quantum Phase Transitions

organizes our current understanding of QPTs with an emphasis on examples from condensed matter physics. Bringing together 48 well known physicists involved with the theory and observation of QPTs, this unique work provides a thorough yet concise examination of the field. Each chapter takes readers through past discoveries right up through the latest research results, and then ends with open questions and unsolved problems.

  • Part I treats new concepts and directions in QPTs, from dynamics through dissipation and entanglement, and includes introductory material suitable for scientists new to the field.
  • Part II explores specific models, systems, and aspects of QPTs, including topological order, the Kondo lattice, the Jaynes-Cummings lattice, reduced dimensionality, finite-size effects and metastability, and QPTs in Bose-Einstein condensates.
  • Part III covers experiments motivated by a deeper understanding of QPTs, including quantum dots, 2D electron systems, frustrated lattices in molecular antiferromagnets, heavy fermions, and ultracold atoms in optical lattices.
  • Part IV presents advances in numerical methods used to study QPTs, including cluster Monte Carlo and the worm algorithm, matrix-product-state methods, and dynamical mean-field theory.
  • Part V looks at the relevance of QPTs beyond condensed-matter physics, including their occurrence in neutron stars, the quark-gluon plasma, cavity QED systems, and string theory.

Graduate students, post-doctoral researchers, and professional scientists who seek a deep knowledge of QPTs will all find this book very useful. Researchers in the field will enhance their appreciation of the incredible breadth of the subject in chapters covering material outside their specialties.



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