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  • Intermolecular and Surface Forces
    Intermolecular and Surface Forces

    Intermolecular and Surface Forces describes the role of various intermolecular and interparticle forces in determining the properties of simple systems such as gases, liquids and solids, with a special focus on more complex colloidal, polymeric and biological systems.The book provides a thorough foundation in theories and concepts of intermolecular forces, allowing researchers and students to recognize which forces are important in any particular system, as well as how to control these forces.This third edition is expanded into three sections and contains five new chapters over the previous edition.

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  • Ligand-Binding Basics : Evaluating Intermolecular Affinity, Specificity, Stoichiometry, and Cooperativity
    Ligand-Binding Basics : Evaluating Intermolecular Affinity, Specificity, Stoichiometry, and Cooperativity

    A concise and accessible textbook covering ligand-binding theory in chemistry, biology, and drug development In Ligand-binding Basics: Evaluating Intermolecular Affinity, Specificity, Stoichiometry, and Cooperativity, accomplished chemist Jannette Carey introduces ligand binding in a thorough and practical way for those new to the topic, as well as anyone seeking a connection between theory and experiment.Using a minimum of mathematical formalism, this book offers analytical rigor while remaining accessible to non-specialist practitioners.It provides readers with the skills they need to analyze their own binding data or published results, helping them develop an intuitive grasp of ligand-binding phenomena integrated with structural and thermodynamic understanding.Topics covered include: Application of the principles of equilibrium, mass action, and mass balance to derive the basic equations that describe all binding processesRecommended approaches for plotting and graphical analysis of binding dataStrategies for designing, analyzing, interpreting, and troubleshooting experiments from the perspective of ligand-binding theoryReview of selected examples that illustrate integration of structural and thermodynamic analysis Perfect for students and educators in chemistry, biochemistry, molecular biology, and pharmaceutical science, Ligand-binding Basics will also appeal to practitioners who aim to study ligand binding in any molecular system.

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  • Statistical Mechanics of Liquids and Solutions : Intermolecular Forces, Structure and Surface Interactions
    Statistical Mechanics of Liquids and Solutions : Intermolecular Forces, Structure and Surface Interactions

    The statistical mechanical theory of liquids and solutions is a fundamental area of physical sciences with important implications in other fields of science and industrial applications.Statistical Mechanics of Liquids and Solutions: Intermolecular Forces, Structure and Surface Interactions is the second in a series of two on this subject.While the first volume introduced equilibrium statistical mechanics in general and statistical mechanics of liquids and solutions at an introductory level, the present volume presents an advanced treatment of the subject and penetrates much deeper into liquid state theory. A major theme in both books is the intimate relationship between forces in a fluid and the fluid structure - a relationship that is paramount for the understanding of the subject of interactions in dense fluids.Using this microscopic, molecular approach, the text emphasizes clarity of physical explanations for phenomena and mechanisms relevant to fluids, addressing the structure and behavior of liquids and solutions under various conditions.A notable feature is the author's treatment of intermolecular interactions in liquids and solutions that include interactions between nanoparticles, macroparticles, and surfaces.The book provides an in-depth treatment of simple liquids, molecular fluids, particle dispersions, dense ionic fluids and electrolyte solutions with molecular solvent, both in the bulk and in confinement.It contains a unified exact treatment of electrolyte solutions, ionic liquids and polar fluids as well as approximate theories and applications. Statistical Mechanics of Liquids and Solutions will be an invaluable resource for graduate and postgraduate students in physics, chemistry, soft matter science, surface and colloid science and related fields, as well as professionals and instructors in those areas of science.

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  • Statistical Mechanics of Liquids and Solutions : Intermolecular Forces, Structure and Surface Interactions
    Statistical Mechanics of Liquids and Solutions : Intermolecular Forces, Structure and Surface Interactions

    The statistical mechanical theory of liquids and solutions is a fundamental area of physical sciences with important implications in other fields of science and industrial applications.Statistical Mechanics of Liquids and Solutions: Intermolecular Forces, Structure and Surface Interactions is the second in a series of two on this subject.While the first volume introduced equilibrium statistical mechanics in general and statistical mechanics of liquids and solutions at an introductory level, the present volume presents an advanced treatment of the subject and penetrates much deeper into liquid state theory. A major theme in both books is the intimate relationship between forces in a fluid and the fluid structure - a relationship that is paramount for the understanding of the subject of interactions in dense fluids.Using this microscopic, molecular approach, the text emphasizes clarity of physical explanations for phenomena and mechanisms relevant to fluids, addressing the structure and behavior of liquids and solutions under various conditions.A notable feature is the author's treatment of intermolecular interactions in liquids and solutions that include interactions between nanoparticles, macroparticles, and surfaces.The book provides an in-depth treatment of simple liquids, molecular fluids, particle dispersions, dense ionic fluids and electrolyte solutions with molecular solvent, both in the bulk and in confinement.It contains a unified exact treatment of electrolyte solutions, ionic liquids and polar fluids as well as approximate theories and applications. Statistical Mechanics of Liquids and Solutions will be an invaluable resource for graduate and postgraduate students in physics, chemistry, soft matter science, surface and colloid science and related fields, as well as professionals and instructors in those areas of science.

    Price: 45.99 £ | Shipping*: 0.00 £
  • What are intermolecular interactions?

    Intermolecular interactions are the forces of attraction or repulsion between molecules. These interactions play a crucial role in determining the physical and chemical properties of substances. Examples of intermolecular interactions include hydrogen bonding, van der Waals forces, and dipole-dipole interactions. These forces can affect properties such as boiling and melting points, solubility, and viscosity.

  • What intermolecular forces exist?

    Intermolecular forces are the forces of attraction and repulsion between molecules. The main types of intermolecular forces include London dispersion forces, dipole-dipole interactions, and hydrogen bonding. London dispersion forces are the weakest type of intermolecular force and occur between all molecules. Dipole-dipole interactions occur between polar molecules, where the positive end of one molecule is attracted to the negative end of another. Hydrogen bonding is a special type of dipole-dipole interaction that occurs when hydrogen is bonded to highly electronegative atoms like oxygen, nitrogen, or fluorine.

  • What are intermolecular forces?

    Intermolecular forces are the attractive forces that exist between molecules. These forces are responsible for holding molecules together in a liquid or solid state. There are several types of intermolecular forces, including hydrogen bonding, dipole-dipole interactions, and London dispersion forces. These forces play a crucial role in determining the physical properties of substances, such as their boiling and melting points, as well as their solubility and viscosity.

  • Which intermolecular interactions are possible?

    Intermolecular interactions that are possible include hydrogen bonding, dipole-dipole interactions, and London dispersion forces. Hydrogen bonding occurs when a hydrogen atom is bonded to a highly electronegative atom such as oxygen, nitrogen, or fluorine. Dipole-dipole interactions occur between molecules with permanent dipoles, while London dispersion forces are the weakest intermolecular interactions and occur between all molecules due to temporary fluctuations in electron distribution. These interactions play a crucial role in determining the physical properties of substances such as boiling and melting points.

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  • What are strong intermolecular interactions?

    Strong intermolecular interactions are attractive forces between molecules that are stronger than typical van der Waals forces. These interactions can include hydrogen bonding, dipole-dipole interactions, and ion-dipole interactions. Strong intermolecular interactions play a crucial role in determining the physical properties of substances such as boiling point, melting point, and solubility. They are important in various biological processes, such as protein folding and DNA replication.

  • How are intermolecular forces classified?

    Intermolecular forces are classified into three main categories: dispersion forces, dipole-dipole forces, and hydrogen bonding. Dispersion forces are the weakest type of intermolecular force and are caused by temporary fluctuations in electron distribution within molecules. Dipole-dipole forces occur between polar molecules and are stronger than dispersion forces. Hydrogen bonding is the strongest type of intermolecular force and occurs when hydrogen is bonded to highly electronegative atoms like oxygen, nitrogen, or fluorine.

  • What are intermolecular interactions in chemistry?

    Intermolecular interactions are the forces of attraction or repulsion between molecules. These interactions play a crucial role in determining the physical properties of substances, such as boiling point, melting point, and solubility. The main types of intermolecular interactions include hydrogen bonding, dipole-dipole interactions, and van der Waals forces. These interactions are weaker than chemical bonds within a molecule, but they still significantly impact the behavior and properties of substances.

  • Which intermolecular forces are the strongest?

    The strongest intermolecular forces are hydrogen bonding, which occurs when a hydrogen atom is bonded to a highly electronegative atom such as oxygen, nitrogen, or fluorine. Hydrogen bonding is stronger than dipole-dipole interactions and London dispersion forces. This is because hydrogen bonding involves a particularly strong attraction between the partially positive hydrogen atom and the partially negative atom it is bonded to, leading to a higher energy of interaction compared to other intermolecular forces.

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