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Statistical thermodynamics for pure ...
~
McCourt, Frederick Richard Wayne.
Statistical thermodynamics for pure and applied sciencesstatistical thermodynamics /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Statistical thermodynamics for pure and applied sciencesby Frederick Richard Wayne McCourt.
Reminder of title:
statistical thermodynamics /
Author:
McCourt, Frederick Richard Wayne.
Published:
Cham :Springer International Publishing :2021.
Description:
xiv, 684 p. :ill., digital ;24 cm.
Contained By:
Springer Nature eBook
Subject:
Statistical thermodynamics.
Online resource:
https://doi.org/10.1007/978-3-030-52006-9
ISBN:
9783030520069$q(electronic bk.)
Statistical thermodynamics for pure and applied sciencesstatistical thermodynamics /
McCourt, Frederick Richard Wayne.
Statistical thermodynamics for pure and applied sciences
statistical thermodynamics /[electronic resource] :by Frederick Richard Wayne McCourt. - Cham :Springer International Publishing :2021. - xiv, 684 p. :ill., digital ;24 cm.
Chapter 1. Basic background material -- Chapter 2. Macroscopic thermodynamics -- Chapter 3. Ensembles: systems of particles -- Chapter 4. Mean values and thermodynamics -- Chapter 5. Atomic systems -- Chapter 6. Molecular systems -- Chapter 7. Classical statistical mechanics -- Chapter 8. Electric and magnetic phenomena -- Chapter 9. Chemical equilibrium -- Chapter 10. Quantum statistics.
This textbook concerns thermal properties of bulk matter and is aimed at advanced undergraduate or first-year graduate students in a range of programs in science or engineering. It provides an intermediate level presentation of statistical thermodynamics for students in the physical sciences (chemistry, nanosciences, physics) or related areas of applied science/engineering (chemical engineering, materials science, nanotechnology engineering), as they are areas in which statistical mechanical concepts play important roles. The book enables students to utilize microscopic concepts to achieve a better understanding of macroscopic phenomena and to be able to apply these concepts to the types of sub-macroscopic systems encountered in areas of nanoscience and nanotechnology. Employs microscopic description of gases of classical and quantum particles to obtain equations of state for classical and ideal gases Reviews relevant basic thermodynamics and establishes their connections to statistical mechanics Develops classical (Boltzmann) and quantum (Fermi-Dirac, Bose-Einstein) statistical mechanics Treats four types of ensemble and derives expressions for typical thermodynamic functions in terms of corresponding partition functions Presents detailed discussions of the roles played by internal molecular states and electronic and nuclear spin states Reinforces concepts using applications, worked examples, and end-of-chapter problems.
ISBN: 9783030520069$q(electronic bk.)
Standard No.: 10.1007/978-3-030-52006-9doiSubjects--Topical Terms:
191593
Statistical thermodynamics.
LC Class. No.: QC311.5 / .M336 2021
Dewey Class. No.: 530.132
Statistical thermodynamics for pure and applied sciencesstatistical thermodynamics /
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Chapter 1. Basic background material -- Chapter 2. Macroscopic thermodynamics -- Chapter 3. Ensembles: systems of particles -- Chapter 4. Mean values and thermodynamics -- Chapter 5. Atomic systems -- Chapter 6. Molecular systems -- Chapter 7. Classical statistical mechanics -- Chapter 8. Electric and magnetic phenomena -- Chapter 9. Chemical equilibrium -- Chapter 10. Quantum statistics.
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This textbook concerns thermal properties of bulk matter and is aimed at advanced undergraduate or first-year graduate students in a range of programs in science or engineering. It provides an intermediate level presentation of statistical thermodynamics for students in the physical sciences (chemistry, nanosciences, physics) or related areas of applied science/engineering (chemical engineering, materials science, nanotechnology engineering), as they are areas in which statistical mechanical concepts play important roles. The book enables students to utilize microscopic concepts to achieve a better understanding of macroscopic phenomena and to be able to apply these concepts to the types of sub-macroscopic systems encountered in areas of nanoscience and nanotechnology. Employs microscopic description of gases of classical and quantum particles to obtain equations of state for classical and ideal gases Reviews relevant basic thermodynamics and establishes their connections to statistical mechanics Develops classical (Boltzmann) and quantum (Fermi-Dirac, Bose-Einstein) statistical mechanics Treats four types of ensemble and derives expressions for typical thermodynamic functions in terms of corresponding partition functions Presents detailed discussions of the roles played by internal molecular states and electronic and nuclear spin states Reinforces concepts using applications, worked examples, and end-of-chapter problems.
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based on 0 review(s)
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EB QC311.5 .M131 2021 2021
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https://doi.org/10.1007/978-3-030-52006-9
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