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Showing 1,501 to 1,515 of 1,542 results Save | Export
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Lovett, David; Smith, Stephen – School Science Review, 1980
Describes phase transition in solids and shows how soap films can be used to demonstrate this phenomenon. (Author/SK)
Descriptors: Chemical Reactions, Chemistry, College Science, Demonstrations (Educational)
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Delvigne, Francis – Journal of Chemical Education, 1989
Uses the electron cloud and Lewis structure models to present resonance. Shows resonance bonding as an increase in dot density of the electron cloud. Provides classroom presentation ideas. (MVL)
Descriptors: Chemical Bonding, Chemical Nomenclature, Chemistry, Illustrations
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Birk, James P., Ed. – Journal of Chemical Education, 1990
Described are two applications of computers in chemistry. The multilinear equations and procedures used in obtaining a least-squares solution for curve fitting in chemistry are presented. Also discussed is the program "ATORB" which can be used to generate graphs of probable electron clouds for various atoms and molecules. (CW)
Descriptors: Atomic Structure, Chemistry, College Science, Computation
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Garrell, Robin L. – Analytical Chemistry, 1989
Reviews the basis for the technique and its experimental requirements. Describes a few examples of the analytical problems to which surface-enhanced Raman spectroscopy (SERS) has been and can be applied. Provides a perspective on the current limitations and frontiers in developing SERS as an analytical technique. (MVL)
Descriptors: Atomic Structure, Chemical Analysis, Chemistry, College Science
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Simpson, Peter – School Science Review, 1989
Presents the mechanistic ideas underlying reactions between nucleophiles and carbonyl compounds as well as some popular misconceptions. Relates reactions of carboxylic acid derivatives to those of aldehydes and ketones. Discusses leaving group ability and the ability of carbonyl oxygen to accept a negative charge. (Author/MVL)
Descriptors: Chemical Bonding, Chemical Nomenclature, Chemical Reactions, Chemistry
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Martin, R. Bruce – Journal of Chemical Education, 1988
Reexamines the electronic structure of water considering divergent views. Discusses several aspects of molecular orbital theory using spectroscopic molecular orbitals and localized molecular orbitals. Gives examples for determining lowest energy spectroscopic orbitals. (ML)
Descriptors: Atomic Structure, Chemical Analysis, Chemical Bonding, Chemistry
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Gallup, G. A. – Journal of Chemical Education, 1988
Describes why specific forms of orbitals used to interpret spectroscopy involving electronic transitions may not say much about the electronic structure of molecules. Discusses several theoretical approaches to explain the anomoly. Determines that the Lewis electron-pair model for molecules is a good predictor of spectroscopic results. (ML)
Descriptors: Atomic Structure, Chemical Analysis, Chemical Bonding, Chemistry
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Wright, Robin; Boggs, James – Cell Biology Education, 2002
To help students develop successful strategies for learning how to learn and communicate complex information in cell biology, we developed a quarter-long cell biology class based on team projects. Each team researches a particular human disease and presents information about the cellular structure or process affected by the disease, the cellular…
Descriptors: Learning Strategies, Diseases, Cytology, Molecular Biology
Conway, Lorraine – 1983
Based on the idea that active participation stimulates the processes by which learning takes place, this document provides teachers and students with a variety of information and learning activities dealing with chemistry. Basic concepts about chemistry are presented through the use of laboratory experiments, demonstrations, worksheet exercises…
Descriptors: Chemical Nomenclature, Chemistry, Demonstrations (Educational), Elementary Education
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Gilbert, George L., Ed. – Journal of Chemical Education, 1987
Discusses the potential of experiments as a vehicle and to motivate students to use text references to look up further information such as nomenclature, molecular geometry, properties and reactivities for various ions and molecules. Describes the procedures and discussion for three such experiments. (TW)
Descriptors: Chemical Nomenclature, Chemical Reactions, Chemistry, College Science
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Sperandeo-Mineo, R. M.; Tripi, G. – Physics Education, 1987
Describes some simple computer programs designed to simulate the molecular dynamics of two-dimensional systems with a Lennard-Jones interaction potential. Discusses the use of the software in introductory physics courses at the high school and college level. (TW)
Descriptors: College Science, Computer Assisted Instruction, Computer Simulation, Computer Uses in Education
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Paterson, W. G. – School Science Review, 1986
Describes a British secondary school's use of a spectrometer to identify minerals. Discusses the origins of mineral spectra, the preparation of the specimen, the actual spectroscopic scanning, and the interpretation of the spectra. (TW)
Descriptors: Chemical Analysis, Foreign Countries, Light, Mineralogy
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Seymour, Raymond B. – Journal of Chemical Education, 1989
Discusses the history and commercialization of alkanes. Examines the nomenclature and uses of alkanes. Studies polymerization and several types of polyethylenes: low-density, high-density, low-molecular-weight, cross-linked, linear low-density, and ultrahigh-molecular-weight. Includes a glossary of hydrocarbon terms. (MVL)
Descriptors: Chemical Bonding, Chemical Engineering, Chemical Industry, Chemical Nomenclature
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Hansen, Peter J.; Jurs, Peter C. – Journal of Chemical Education, 1988
Discusses the use of graph theory to aid in the depiction of organic molecular structures. Gives a historical perspective of graph theory and explains graph theory terminology with organic examples. Lists applications of graph theory to current research projects. (ML)
Descriptors: Chemical Nomenclature, Chemistry, College Science, Graduate Study
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Zavaleta, David – Journal of Chemical Education, 1988
Traces the development of bonding theory and notes the influence of preconceived theory upon this development. Considers ideas of alchemy, Newton, Dalton, Lewis, and quantum mechanics. Suggests a move away from conservative descriptive approaches of bonding theory. (ML)
Descriptors: Atomic Structure, Chemical Analysis, Chemical Bonding, Chemistry
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