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Solid State Physics

Most popular at the top

  • Hume-Rothery Rules for Structurally Complex Alloy Phasesby Uichiro Mizutani

    CRC Press 2010; US$ 89.95

    Written by Uichiro Mizutani, a renowned authority on Hume-Rothery rules, this book focuses on the stability mechanism of structurally complex phases, beginning with the history, development, and final approach to the goal. It begins with a description of the history of the establishment of the Hume-Rothery rules from 1920s to 1930s and introduces basic theories for allow phase stability. The author describes the long-lasting controversial issues regarding the rules, examining the questions that have been solved and those that have not. more...

  • Why Things Are the Way They Areby B. S. Chandrasekhar

    Cambridge University Press 1997; US$ 46.00

    Popular physics book on why materials behave the way they do. more...

  • Metal-Insulator Transitionsby the late Sir Nevill Mott

    CRC Press 1990; US$ 142.00

    This is the second edition of a book first published in 1974. Since then, understanding of the Anderson transition has been completely transformed by the scaling theory of Abrahams et al 1979. more...

  • A Career in Theoretical Physicsby P W Anderson

    World Scientific 1994; US$ 124.80

    Theoretical physicist and Nobel Laureate Philip Anderson has been described as one of the most imaginative of condensed matter physicists working today. His achievements have not merely constituted significant discoveries in their own right, but have also frequently set the agenda for the work of others. His pioneering contributions include the Anderson model of magnetic impurities and the concept of localisation, both of which were mentioned in his Nobel Prize citation. He also worked on the study of spin glasses, the fluctuating valence problem and superexchange. He predicted the existence of superfluidity in He-3 and provided a microscopic explanation, and was involved in the discovery of the Josephson effect. more...

  • Least Action Principle Of Crystal Formation Of Dense Packing Type And Kepler's Conjectureby W Y Hsiang

    World Scientific 2001; US$ 88.40

    The dense packing of microscopic spheres (i.e. atoms) is the basic geometric arrangement in crystals of mono-atomic elements with weak covalent bonds, which achieves the optimal "known density" of p/√18. In 1611, Johannes Kepler had already "conjectured" that p/√18 should be the optimal "density" of sphere packings. Thus, the central problems in the study of sphere packings are the proof of Kepler's conjecture that p/√18 is the optimal density, and the establishing of the least action principle that the hexagonal dense packings in crystals are the geometric consequence of optimization of density. This important book provides a self-contained proof of both, using vector algebra and spherical geometry as the main techniques... more...

  • Lecture Notes On Equilibrium Point Defects And Thermophysical Properties Of Metalsby Y Kraftmakher

    World Scientific 2000; US$ 101.40

    Despite the significant progress in the study of point defects in metals, some important problems still do not have unambiguous solutions. One of the most practically important questions relates to equilibrium defect concentrations. There exist two opposite viewpoints: (1) defect contributions to physical properties of metals at high temperatures are small and cannot be separated from the effects of anharmonicity; the equilibrium defect concentrations at the melting points are in the range of 10-4 to 10-3; (2) in many cases, defect contributions to the specific heat of metals are much larger than nonlinear effects of anharmonicity and can be separated without crucial errors. more...

  • Nanoscienceby E Meyer; K Dransfeld; T Gyalog

    World Scientific 1999; US$ 104.00

    Friction force microscopy is an important analytical tool in the field of tribology on the nanometer-scale. The contact area between the probing tip and the sample is reduced to some square nanometers, corresponding to the ideal of a single asperity contact. Traditional concepts, such as friction coefficients, adhesion and elasticity and stick-slip are re-examined with this novel technique. New concepts based upon classical and quantum mechanics are investigated. Contents: Introduction and Motivation; Instruments; Normal Forces at the Atomic Scale; Understanding of Lateral Forces; Dissipation Mechanisms; Nanorheology and Nanoconfinement; Generation of Ultrasonic Waves in Sliding Friction; Friction Force Microscopy Experiments; Appendix: Instrumental... more...

  • Physical Properties Of Carbon Nanotubesby R Saito; G Dresselhaus; M S Dresselhaus

    World Scientific 1998; US$ 45.50

    This is an introductory textbook for graduate students and researchers from various fields of science who wish to learn about carbon nanotubes. The field is still at an early stage, and progress continues at a rapid rate. This book focuses on the basic principles behind the physical properties and gives the background necessary to understand the recent developments. Some useful computational source codes which generate coordinates for carbon nanotubes are also included in the appendix. more...

  • Under The Spell Of The Gauge Principleby G 't Hooft

    World Scientific 1994; US$ 111.80

    Few people studying Gauge Field Theory need to be convinced of the importance of the work of 't Hooft. This volume contains a selection of articles and review topics covering his well-known studies on the renormalization of non-Abelian gauge theorems, topological phenomena in gauge field theory and thoughts on the role of black holes in quantum gravity. The chapters are tied together by thoughtful commentaries which provide a background and the illumination of hindsight - together they form a clear and coherent picture of the physical and theoretical importance of gauge theories and the gauge principle. This book is ideal for students and researchers. more...

  • Forces, Growth and Form in Soft Condensed Matterby A.T. Skjeltorp; A.V. Belushkin

    Springer 2004; US$ 109.00

    The book reviews the current experimental and theoretical knowledge of the synergism between modern physics, soft condensed matter and biology, presenting a thorough discussion of the relative role of the various fundamental interactions in such systems: electrostatic, hydrophobic, steric, conformational, van der Waals, etc. These competing interactions influence the form and topology of soft and biological matter, like polymers and proteins, leading to hierarchical structures in self-assembling systems and folding patterns sometimes described in terms of chirality, braids and knots. Finally, the competing interactions influence various bioprocesses like genetic regulation and biological evolution taking place in systems like biopolymers, macromolecules... more...