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Marchant, G. W. – School Science Review, 1983
Suggests two methods of developing the study of the noble gases: first, the discovery of the elements and recent discovery of xenon show the human face of chemistry (historical development); second, the properties of noble gas compounds (particularly xenon) can be used to test the framework of conventional chemistry. (Author/JM)
Descriptors: Atomic Structure, Chemical Bonding, Chemical Reactions, Chemistry

Frey, John E. – Journal of Chemical Education, 1990
Described is an inorganic chemistry course based on the premise that a balanced understanding of inorganic chemistry requires knowledge of the experimental, theoretical, and technological aspects of the subject. A detailed description of lectures and laboratories is included. (KR)
Descriptors: Chemistry, College Science, Higher Education, Inorganic Chemistry

Rybolt, Thomas R.; And Others – Journal of Chemical Education, 1988
Illustrates an interesting biomedical application of adsorption from solution and demonstrates some of the factors that influence the in vivo adsorption of drug molecules onto activated charcoal. Uses acetaminophen and N-acetylcysteine for the determination. Suggests several related experiments. (MVL)
Descriptors: Biochemistry, Biomedicine, Chemical Analysis, Chemistry

Hill, J. O.; Magee, R. J. – Journal of Chemical Education, 1988
Describes several experiments using the techniques of thermal analysis and thermometric titrimetry. Defines thermal analysis and several recent branches of the technique. Notes most of the experiments use simple equipment and standard laboratory techniques. (MVL)
Descriptors: Chemical Analysis, Chemical Reactions, Chemistry, College Science

Baum, Rudy M. – Chemical and Engineering News, 1989
Discusses a symposium which focused on the influence of inorganic chemistry on organic synthesis, the impact of organic chemistry on biochemistry and vice versa, chemical reaction dynamics, and advances in inorganic chemistry. Explains the purpose of the symposium was to illustrate the intellectual dynamism of modern chemistry. (MVL)
Descriptors: Biochemistry, Chemical Analysis, Chemical Industry, Chemical Nomenclature

Knudson, Stephen K.; Noid, D. W. – Journal of Chemical Education, 1989
Discusses a new method for determining the eigenvalues of the Schroedinger equation when the potential energy function does not have a simple form. Describes the mathematical methods and provides an application. Lists limitations to the method. (MVL)
Descriptors: Atomic Structure, Chemical Analysis, Chemistry, College Science

Donato, Henry, Jr.; And Others – Journal of Chemical Education, 1988
Describes two computer programs used to aid in data analysis: (1) Develops a method for the propagation of error involving the direct calculation of the error in the dependent variable using a spreadsheet; (2) Examines a simple numerical method for solving complex equilibria. Lists a FORTRAN 77 program. (MVL)
Descriptors: Chemical Equilibrium, Chemistry, College Science, Computer Software

Weber, Stephen G.; Long, John T. – Analytical Chemistry, 1988
Discusses three aspects of electrochemical detectors: (1) signal and noise generation and signal-to-noise ratio, (2) improvement of qualitative information content, and (3) control of selectivity of the detector. Explains electronic principles of detectors and detection limits. Lists current applications and research. (ML)
Descriptors: Chemical Analysis, Chemistry, College Science, Electronic Control

Fernandez, G. M.; And Others – Journal of Chemical Education, 1988
Introduces different methodological strategies in analyzing potential energy surfaces (PES) used in chemical reactivity studies. Discusses the theory of PES and gives examples to be used for student work. Provides procedures for calculating normal coordinates and vibrational properties of an activated complex. (ML)
Descriptors: Chemical Bonding, Chemical Equilibrium, Chemical Reactions, Chemistry

Hansen, Peter J.; Jurs, Peter C. – Journal of Chemical Education, 1988
Explores graph theory and use of topological indices to predict boiling points. Lists three indices: Wiener Number, Randic Branching Index and Molecular Connectivity, and Molecular Identification numbers. Warns of inadequacies with stereochemistry. (ML)
Descriptors: Chemical Nomenclature, Chemistry, College Science, Graduate Study

Serianz, Art; Graham, Dennis – Journal of Chemical Education, 1988
Described are the objectives, schedule and evaluation of an institute. Listed are demonstrations performed illustrating physical properties and physical change, energy changes, and chemical equilibrium. Discussed are the advantages of using demonstrations in teaching precollege chemistry. (CW)
Descriptors: Biochemistry, Chemistry, Demonstrations (Educational), Inorganic Chemistry

Stieg, Scott – Journal of Chemical Education, 1988
Describes a laboratory experiment designed for use in a freshman chemistry course. Considers the use of a set of known "training reactions" with a "training set" of solutions. (CW)
Descriptors: Chemical Reactions, Chemistry, College Science, Higher Education

Woolf, A. A. – Journal of Chemical Education, 1988
Reviews a method for determining oxidation numbers in covalent compounds and balancing mixed organic-inorganic or purely organic systems. Points out ambiguities presented when adjacent atoms have small or zero electronegativity differences. Presents other limitations that arise when using electronegativity values. (CW)
Descriptors: Atomic Structure, Atomic Theory, Chemical Bonding, Chemical Reactions

Rettich, Timothy R.; Battino, Rubin – Journal of Chemical Education, 1989
Presents a low cost system with easily replaced electrodes for use in general chemistry. Notes the accuracy and wide applicability permit easy use in physical or quantitative chemistry experiments. Provides schematic, theory, and helpful suggestions. (MVL)
Descriptors: Chemical Analysis, Chemistry, College Science, Inorganic Chemistry

Kirksey, H. Graden; Jones, Richard F. – Journal of Chemical Education, 1988
Shows how video recordings of the Brownian motion of tiny particles may be made. Describes a classroom demonstration and cites a reported experiment designed to show the random nature of Brownian motion. Suggests a student experiment to discover the distance a tiny particle travels as a function of time. (MVL)
Descriptors: Chemical Nomenclature, Chemistry, College Science, Inorganic Chemistry