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  • 1
    Monograph available for loan
    Monograph available for loan
    Washington, D.C. : Mineralogical Society of America
    Associated volumes
    Call number: 11/M 96.0028 ; 11/M 96.0038
    In: Reviews in mineralogy
    Description / Table of Contents: The Mineralogical Society of America sponsored a short course for which this was the text at Stanford University December 9 and 10, 1995, preceding the Fall Meeting of the American Geophysical Union and MSA in San Fransisco, with about 100 professionals and graduate students in attendance. A silicate melt phase is the essential component of nearly all igneous processes, with dramatic consequences for the properties of the Earth's interior. Throughout Earth history and continuing to the present day, silicate melts have acted as transport agents in the chemical and physical differentiation of the Earth into core, mantle and crust. The occurrence of such magmatic processes leads to the definition of our planet as "active," and the resulting volcanism has a profound impact on the Earth's atmosphere, hydrosphere and biosphere. Although near-surface melts are observed directly during volcanic eruptions, the properties of magmas deep within the Earth must be characterized and constrained by laboratory experiments. Many of these experiments are designed to aid in developing an atomic level understanding of the structure and dynamics of silicate melts under the P- T conditions of the Earth's crust and mantle, which will make extrapolation from the laboratory results to the behavior of natural magmas as reliable as possible. Silicate melts are also the archetypal glass-forming materials. Because of the ready availability of raw materials, and the ease with which molten silicates can be vitrified, commercial "glass" has necessarily implied a silicate composition, over most of the history of glass technology. The properties of the melt, or "slag" in metallurgical extractions, determine the nature of the glass formed, and the needs of the glass industry have provided much of the impetus for understanding the structure-property relations of molten silicates as well as for the glasses themselves. It is now recognized that any liquid might become glassy, if cooled rapidly enough, and understanding the thermodynamic and kinetic aspects of the glass transition, or passage between the liquid and glassy states of matter, has become a subject of intense interest in fundamental physics and chemistry. Glasses have also been studied in many geochemical investigations, often as substitutes for the high temperature melts, with the results being extrapolated to the liquid state. In many cases, in situ techniques for direct investigation of these refractory systems have only recently become available. Much valuable information concerning the melt structure has been gleaned from such studies. Nevertheless, there are fundamental differences between the liquid and glassy states. In liquids, the structure becomes progressively more disordered with increasing temperature, which usually gives rise to major changes in all thermodynamic properties and processes. These changes must, in general, be investigated directly by in situ studies at high temperature. Studies of glass only represent a starting point, which reflect a frozen image of the melt "structure" at the glass transition temperature. This is generally hundreds of degrees below the near-liquidus temperatures of greatest interest to petrologists. Since the early 1980s, a much deeper understanding of the structure, dynamics, and properties of molten silicates has been developed within the geochemical community, applying techniques and concepts developed within glass science, extractive metallurgy and liquid state physics. Some of these developments have far-reaching implications for igneous petrology. The purpose of this Short Course and volume is to introduce the basic concepts of melt physics and relaxation theory as applied to silicate melts, then to describe the current state of experimental and computer simulation techniques for exploring the detailed atomic structure and dynamic processes which occur at high temperature, and finally to consider the relationships between melt structure, thermodynamic properties and rheology within these liquids. These fundamental relations serve to bridge the extrapolation from often highly simplified melt compositions studied in the laboratory to the multicomponent systems found in nature. This volume focuses on the properties of simple model silicate systems, which are usually volatile-free. The behavior of natural magmas has been summarized in a previous Short Course volume (Nicholls and Russell, editors, 1990: Reviews in Mineralogy, Vol. 24), and the effect of volatiles on magmatic properties in yet another (Carroll and Holloway, editors, 1994: Vol. 30). In the chapters by Moynihan, by Webb and Dingwell, and by Richet and Bottinga, the concepts of relaxation and the glass transition are introduced, along with techniques for studying the rheology of silicate liquids, and theories for understanding the transport and relaxation behavior in terms of the structure and thermodynamic properties of the liquid. The chapter by Dingwell presents applications of relaxation-based studies of melts in the characterization of their properties. Chapters by Stebbins, by Brown, Farges and Calas, and by McMillan and Wolf present the principal techniques for studying the melt structure and atomic scale dynamics by a variety of spectroscopic and diffraction methods. Wolf and McMillan summarize our current understanding of the effects of pressure on silicate glass and melt structure. Chapters by Navrotsky and by Hess consider the thermodynamic properties and mixing relations in simple and multicomponent aluminosilicate melts, both from a fundamental structural point of view and empirical chemical models which can be conveniently extrapolated to natural systems. The chapter by Chakraborty describes the diffusivity of chemical species in silicate melts and glasses, and the chapter by Poole, McMillan and Wolf discusses the application of computer simulation methods to understanding the structure and dynamics of molten silicates. The emphasis in this volume is on reviewing the current state of knowledge of the structure, dynamics and physical properties of silicate melts, along with present capabilities for studying the molten state under conditions relevant to melting within the Earth, with the intention that these techniques and results can then be applied to understanding and modeling both the nature of silicate melts and the role of silicate melts in nature.
    Type of Medium: Monograph available for loan
    Pages: xv, 616 S.
    ISBN: 0-939950-39-1 , 978-0-939950-39-3
    ISSN: 1529-6466
    Series Statement: Reviews in mineralogy 32
    Classification:
    Mineralogy
    Language: English
    Note: Chapter 1. Structural Relaxation and the Glass Transition by Cornelius T. Moynihan, p. 1 - 20 Chapter 2. Relaxation in Silicate Melts: Some Applications by Donald B. Dingwell, p. 21 - 66 Chapter 3. Rheology and Configurational Entropy of Silicate Melts by P. Richet & Y. Bottinga, p. 67 - 94 Chapter 4. Viscoelasticity by Sharon L. Webb and Donald B. Dingwell, p. 95 - 120 Chapter 5. Energetics of Silicate Melts by Alexandra Navrotsky, p. 121 - 144 Chapter 6. Thermodynamic Mixing Properties and the Structure of Silicate Melts by Paul C. Hess, p. 145 - 190 Chapter 7. Dynamics and Structure of Silicate and Oxide Melts: Nuclear Magnetic Resonance Studies by Jonathan F. Stebbins, p. 191 - 246 Chapter 8. Vibrational Spectroscopy of Silicate Liquids by Paul F. McMillan and George H. Wolf, p. 247 - 316 Chapter 9. X-ray Scattering and X-ray Spectroscopy Studies of Silicate Melts by Gordon E. Brown, Jr., François Farges, and G. Calas, p. 317 - 410 Chapter 10. Diffusion in Silicate Melts by Sumit Chakraborty, p. 411 - 504 Chapter 11. Pressure Effects on Silicate Melt Structure and Properties by G. H. Wolf and Paul F. McMillan, p. 505 - 562 Chapter 12. Computer Simulations of Silicate Melts by Peter H. Poole, Paul F. McMillan, and George H. Wolf, p. 563 - 616
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  • 2
    Monograph available for loan
    Monograph available for loan
    Washington, D.C. : Mineralogical Society of America
    Associated volumes
    Call number: 11/M 93.0804
    In: Reviews in mineralogy
    Description / Table of Contents: This volume represents the proceedings of a course by the same title held at Harbor House Resort and Conference Center on Nantucket Island off the coast of Massachusetts, October 22-24, 1993. Numerous minerals are known to induce pulmonary diseases. The asbestos minerals (chrysotile and asbestiform amphiboles) are by far the most infamous. However, a number of silica polymorphs, clays, and zeolites have also been studied in great detail, as have several titania polymorphs, hematite, and magnetite (which are often used as negative controls in biological experiments). In fact, the relatively recent attention received by erionite (a fibrous zeolite) has arguably made it the most notorious of the minerals studied thus far. The processes that lead to the development of disease (or pathogenesis) by minerals very likely occur at or near the mineral-fluid interface (as do many geochemical processes!). Thus the field of "mineral-induced pathogenesis" is a prime candidate for interdisciplinary research, involving mineral scientists, health scientists, petrologists, pathologists, geochemists, biochemists, and surface scientists, to name a few. The success of such an interdisciplinary approach rests on the ability of scientists in very different fields to communicate, and this is hampered by vocabulary barriers and an unfamiliarity with concepts, approaches, and problems. It can be difficult enough for a geoscientist or bioscientist to maintain fluency in the many fields tangential to his or her own field, and this problem is only exacerbated when one investigates problems that are crossdisciplinary. Nevertheless, important advances can be facilitated if these barriers are overcome. This review volume and the short course upon which it was based are intended to provide some of the necessary tools for the researcher interested in this area of interdisciplinary research. The chapters present several of the important problems, concepts, and approaches from both the geological and biological ends of the spectrum. These two extremes are partially integrated throughout the book by cross-referencing between chapters. Chapter 1 also presents a general introduction into the ways in which these two areas overlap. However, many of the areas ripe for the interdisciplinarian will become obvious after reading the various chapters. The final chapter of this book discusses some of the regulatory aspects of minerals. Ultimately, the regulatory arena is where this type of interdisciplinary approach can make an impact, and hopefully better communication between all parties will accomplish this goal. A glossary is included at the end of this book, because the complexity of scientific terms in the two fields can thwart even the most enthusiastic of individuals.
    Type of Medium: Monograph available for loan
    Pages: xvi, 584 S.
    ISBN: 0-939950-33-2 , 978-0-939950-33-1
    ISSN: 1529-6466
    Series Statement: Reviews in mineralogy 28
    Classification:
    Mineralogy
    Language: English
    Note: Chapter 1. Merging the Geological and Biological Sciences: An Integrated Approach to the Study of Mineral-Induced Pulmonary Diseases by George D. Guthrie, Jr. and Brooke T. Mossman, p. 1 - 6 Chapter 2. Rocks, Minerals, and a Dusty World by Cornelius Klein, p. 7 - 60 Chapter 3. Mineralogy of Amphiboles and 1:1 Layer Silicates by David R. Veblen and Ann G. Wylie, p. 61 - 138 Chapter 4. Mineralogy of Clay and Zeolite Dusts (Exclusive of 1:1 Layer Silicates) by David L. Bish and George D. Guthrie, Jr., p. 139 - 184 Chapter 5. Structure and Chemistry of Silica, Metal Oxides, and Phosphates by Peter J. Heaney and Jillian A. Banfield, p. 185 - 234 Chapter 6. Preparation and Purification of Mineral Dusts by Steve J. Chipera, George D. Guthrie, Jr., and David L. Bish, p. 235 - 250 Chapter 7. Mineral Characterization in Biological Studies by George D. Guthrie, Jr., p. 251 - 274 Chapter 8. Surface Chemistry, Structure, and Reactivity of Hazardous Mineral Dust by Michael F. Hochella, Jr., p. 275 - 308 Chapter 9. Limitations of the Stanton Hypothesis by Robert P. Nolan and Arthur M. Langer, p. 309 - 326 Chapter 10. The Surface Thermodynamic Properties of Silicates and Their Interactions with Biological Materials by Rossman F. Giese, Jr. and Carel J. van Oss, p. 327 - 346 Chapter 11. Epidemiology and Pathology of Asbestos-Related Diseases by Agnes B. Kane, p. 347 - 360 Chapter 12. Health Effects of Mineral Dusts Other Than Asbestos by Malcolm Ross, Robert P. Nolan, Arthur M. Langer, and W. Clark Cooper, p. 361 - 408 Chapter 13. Asbestos Lung Burden and Disease Patterns in Man by Andrew Churg, p. 409 - 426 Chapter 14. Defense Mechanisms Against Inhaled Particles and Associated Particle-Cell Interactions by Bruce E. Lehnert, p. 427 - 470 Chapter 15. In Vivo Assays to Evaluate the Pathogenic Effects of Minerals in Rodents by John M. G. Davis, p. 471 - 488 Chapter 16. In Vitro Evaluation of Mineral Cytotoxicity and Inflammatory Activity by Kevin E. Driscoll, p. 489 - 512 Chapter 17. Cellular and Molecular Mechanisms of Disease by Brooke T. Mossman, p. 513 - 522 Chapter 18. Biological Studies on the Carcinogenic Mechanisms of Quartz by Umberto Saffiotti, Lambert N. Daniel, Yan Mao, A. Olufemi Williams, M. Edward Kaighn, Nadera Ahmed, and Alan D. Knapton, p. 523 - 544 Chapter 19. Regulatory Approaches to Reduce Human Health Risks Associated with Exposures to Mineral Fibers by V. T. Vu, p. 545 - 554
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  • 3
    Monograph available for loan
    Monograph available for loan
    Washington, D.C. : Mineralogical Soc. of America
    Associated volumes
    Call number: 11/M 01.0313
    In: Reviews in mineralogy & geochemistry
    Description / Table of Contents: The review chapters in this volume were the basis for a short course on molecular modeling theory jointly sponsored by the Geochemical Society (GS) and the Mineralogical Society of America (MSA) May 18-20, 2001 in Roanoke, Virginia which was held prior to the 2001 Goldschmidt Conference in nearby Hot Springs, Virginia. Dr. William C. Luth has had a long and distinguished career in research, education and in the government. He was a leader in experimental petrology and in training graduate students at Stanford University. His efforts at Sandia National Laboratory and at the Department of Energy's headquarters resulted in the initiation and long-term support of many of the cutting edge research projects whose results form the foundations of these short courses. Bill's broad interest in understanding fundamental geochemical processes and their applications to national problems is a continuous thread through both his university and government career. He retired in 1996, but his efforts to foster excellent basic research, and to promote the development of advanced analytical capabilities gave a unique focus to the basic research portfolio in Geosciences at the Department of Energy. He has been, and continues to be, a friend and mentor to many of us. It is appropriate to celebrate his career in education and government service with this series of courses in cutting-edge geochemistry that have particular focus on Department of Energy-related science, at a time when he can still enjoy the recognition of his contributions. Molecular modeling methods have become important tools in many areas of geochemical and mineralogical research. Theoretical methods describing atomistic and molecular-based processes are now commonplace in the geosciences literature and have helped in the interpretation of numerous experimental, spectroscopic, and field observations. Dramatic increases in computer power-involving personal computers, workstations, and massively parallel supercomputers-have helped to increase our knowledge of the fundamental processes in geochemistry and mineralogy. All researchers can now have access to the basic computer hardware and molecular modeling codes needed to evaluate these processes. The purpose of this volume of Reviews in Mineralogy and Geochemistry is to provide the student and professional with a general introduction to molecular modeling methods and a review of various applications of the theory to problems in the geosciences. Molecular mechanics methods that are reviewed include energy minimization, lattice dynamics, Monte Carlo methods, and molecular dynamics. Important concepts of quantum mechanics and electronic structure calculations, including both molecular orbital and density functional theories, are also presented. Applications cover a broad range of mineralogy and geochemistry topics-from atmospheric reactions to fluid-rock interactions to properties of mantle and core phases. Emphasis is placed on the comparison of molecular simulations with experimental data and the synergy that can be generated by using both approaches in tandem. We hope the content of this review volume will help the interested reader to quickly develop an appreciation for the fundamental theories behind the molecular modeling tools and to become aware of the limits in applying these state-of-the-art methods to solve geosciences problems.
    Type of Medium: Monograph available for loan
    Pages: xii, 531 S.
    ISBN: 0-939950-54-5 , 978-0-939950-54-6
    ISSN: 1529-6466
    Series Statement: Reviews in mineralogy & geochemistry 42
    Classification:
    Mineralogy
    Language: English
    Note: Chapter 1. Molecular Modeling in Mineralogy and Geochemistry by Randall T. Cygan, p. 1 - 36 Chapter 2. Simulating the Crystal Structures and Properties of Ionic Materials From Interatomic Potentials by Julian D. Gale, p. 37 - 62 Chapter 3. Application of Lattice Dynamics and Molecular Dynamics Techniques to Minerals and Their Surfaces by Steve C. Parker, Nora H. de Leeuw, Ekatarina Bourova, and David J. Cooke, p. 63 - 82 Chapter 4. Molecular Simulations of Liquid and Supercritical Water: Thermodynamics, Structure, and Hydrogen Bonding by Andrey G. Kalinichev, p. 83 - 130 Chapter 5. Molecular Dynamics Simulations of Silicate Glasses and Glass Surfaces by Stephen H. Garofalini, p. 131 - 168 Chapter 6. Molecular Models of Surface Relaxation, Hydroxylation, and Surface Charging at Oxide-Water Interfaces by James R. Rustad, p. 169 - 198 Chapter 7. Structure and Reactivity of Semiconducting Mineral Surfaces: Convergence of Molecular Modeling and Experiment by Kevin M. Rosso, p. 199 - 272 Chapter 8. Quantum Chemistry and Classical Simulations of Metal Complexes in Aqueous Solutions by David M. Sherman, p. 273 - 318 Chapter 9. First Principles Theory of Mantle and Core Phases by Lars Stixrude, p. 319 - 344 Chapter 10. A Computational Quantum Chemical Study of the Bonded Interactions in Earth Materials and Structurally and Chemically Related Molecules by G. V. Gibbs, Monte B. Boisen, Jr., Lesa L. Beverly, and Kevin M. Rosso, p. 345 - 382 Chapter 11. Modeling the Kinetics and Mechanisms of Petroleum and Natural Gas Generation: A First Principles Approach by Yitian Xiao, p. 383 - 436 Chapter 12. Calculating the NMR Properties of Minerals, Glasses, and Aqueous Species by John D. Tossell, p. 437 - 458 Chapter 13. Interpretation of Vibrational Spectra Using Molecular Orbital Theory Calculations by James D. Kubicki, p. 459 - 484 Chapter 14. Molecular Orbital Modeling and Transition State Theory in Geochemistry by Mihali A. Felipe, Yitian Xiao, and James D. Kubicki, p. 485 - 531
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  • 4
    Call number: 11/M 95.0193
    In: Monograph series on mineral deposits
    Type of Medium: Monograph available for loan
    Pages: 230 S.
    ISBN: 3443120318
    Series Statement: Monograph series on mineral deposits 31
    Classification:
    Mineralogy
    Language: English
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