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Vicente, J. – Journal of Chemical Education, 1983
Most inorganic chemistry textbooks present the determination of spectroscopic terms obtained from a given electronic configuration by a method which requires explicitly writing down all microstates. A method is provided and discussed in which tabulating all possible microstates is not required. (JN)
Descriptors: Atomic Structure, Chemistry, College Science, Higher Education
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Cromer, Alan – Physics Teacher, 1983
When salt (NaCl) is introduced into a colorless flame, a bright yellow light (characteristic of sodium) is produced. Why doesn't the chlorine produce a characteristic color of light? The answer to this question is provided, indicating that the flame does not excite the appropriate energy levels in chlorine. (JN)
Descriptors: Atomic Structure, Chemistry, College Science, High Schools
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McGregor, David A.; And Others – Analytical Chemistry, 1988
Addresses solution nonmetal determinations on a fundamental level. Characterizes research in this area of chemical instrumentation. Discusses the fundamental limitations of nonmetal atomic spectrometry, the status of nonmetals and atomic spectroscopic techniques, and current directions in solution nonmetal determinations. (CW)
Descriptors: Atomic Structure, Chemical Analysis, Chemistry, College Science
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Poole, R. T. – Physics Education, 1983
Examines the physical basis for colors of noble metals (copper, silver, gold) developed from energy conservation/quantum mechanical view of free electron photoabsorption. Describes production of absorption edges produced by change in density of occupied valence electron states in the d-band, which allows stronger absorption in the visible photon…
Descriptors: Atomic Structure, College Science, Color, Energy
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Taylor, N.; And Others – American Journal of Physics, 1981
Electronic energy levels in noble gas atoms may be determined with a simple teaching apparatus incorporating a resonance potentials tube in which the electron beam intensity is held constant. The resulting spectra are little inferior to those obtained by more elaborate electron-impact methods and complement optical emission spectra. (Author/SK)
Descriptors: Atomic Structure, College Science, Energy, Higher Education
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Palmer, Glenn E. – Journal of Chemical Education, 1981
Describes a computer program which generates formalized PMR spectra for video display. The program includes eight problems and is written in BASIC. (SK)
Descriptors: Atomic Structure, Chemical Analysis, Chemistry, College Science
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McQuarrie, Donald A. – Journal of Chemical Education, 1988
Discusses how to interpret nuclear magnetic resonance (NMR) spectra and how to use them to determine molecular structures. This discussion is limited to spectra that are a result of observation of only the protons in a molecule. This type is called proton magnetic resonance (PMR) spectra. (CW)
Descriptors: Atomic Structure, Chemical Analysis, Chemistry, College Science
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Bederson, Benjamin – Physics Today, 1981
Highlights accomplishments in atomic physics over the past 50 years including books, conferences, and research. Includes prospects for the future. (JN)
Descriptors: Atomic Structure, Atomic Theory, College Science, Higher Education
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Fehlner, Thomas P.; Bowser, James R. – Journal of Chemical Education, 1988
Explores the applicability of Mulliken's united atom model to a variety of chemical systems and demonstrates its value as a teaching tool. Considers applications to first row hydrides, compounds of the first and second periods, heavy atoms, and cluster systems. (MVL)
Descriptors: Atomic Structure, Atomic Theory, Chemical Bonding, Chemical Nomenclature
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Chesick, John P. – Journal of Chemical Education, 1989
Uses simple pulse NMR experiments to discuss Fourier transforms. Studies the generation of spin echoes used in the imaging procedure. Shows that pulse NMR experiments give signals that are additions of sinusoids of differing amplitudes, frequencies, and phases. (MVL)
Descriptors: Atomic Structure, Chemical Analysis, Chemistry, College Science
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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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Schwartz, Leslie J. – Journal of Chemical Education, 1988
Discusses a method for teaching time pulsed NMR principals that are as simple and pictorial as possible. Uses xyz coordinate figures and presents theoretical explanations using a Fourier transformation spectrum. Assumes no previous knowledge of quantum mechanics for students. Usable for undergraduates. (MVL)
Descriptors: Atomic Structure, Chemical Analysis, Chemical Bonding, 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