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Wolf, Vanessa; Hsiao, Valerie; Rodriguez, Brandon; Min, Ashley; Mayorga, Jill; Ashcroft, Jared – Research in Science Education, 2022
Remote access technology in STEM education fills dual roles as an educational tool to deliver science education (Educational Technology) and as a means to teach about technology itself (Technology Education). A five-lesson sequence was introduced to 11 and 12-year-old students at an urban school. The lesson sequences were inquiry-based, hands-on,…
Descriptors: Science Experiments, STEM Education, Science Instruction, Teaching Methods
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Qvit, Nir; Barda, Yaniv; Gilon, Chaim; Shalev, Deborah E. – Journal of Chemical Education, 2007
This laboratory experiment provides a unique opportunity for students to synthesize three analogues of aspartame, a commonly used artificial sweetener. The students are introduced to the powerful and useful method of parallel synthesis while synthesizing three dipeptides in parallel using solid-phase peptide synthesis (SPPS) and simultaneous…
Descriptors: Chemistry, Laboratory Experiments, Teaching Methods, Spectroscopy
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McMinn, Dennis – Journal of Chemical Education, 1984
Describes an approach which provides a basis for developing skills in interpreting infrared spectra and gives students a methodology which is functional without having to match "problem" spectra with "published" spectra. In addition, the suggested approach is reinforced easily by laboratory exercises involving known or unknown…
Descriptors: College Science, Higher Education, Organic Chemistry, Science Education
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Ingham, A. M.; Henson, R. C. – Journal of Chemical Education, 1984
Presented are flow charts to help students interpret infrared and nuclear magnetic resonance spectra of simple organic compounds. Advantages in using these charts are outlined. (JN)
Descriptors: College Science, Flow Charts, Higher Education, Organic Chemistry
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O'Kennedy, Richard – Biochemical Education, 1988
Describes an instructional experiment that was designed to illustrate the use of periodate oxidation in sugar analysis, and the consequence that the absorbance of mixtures of non-interacting substances is additive. (TW)
Descriptors: Biochemistry, College Science, Higher Education, Laboratory Procedures
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Burnier, R. C.; Freiser, B. S. – Journal of Chemical Education, 1979
Provides a discussion which is intended for chemistry college students on the ion cyclotron resonance (ICR) spectroscopy, the physical basis for ion cyclotron resonance, and the experimental methodology employed by ICR spectroscopists. (HM)
Descriptors: Chemistry, College Science, Higher Education, Science Education
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Solomon, Sally; Hur, Chinhyu – Journal of Chemical Education, 1995
Encourages the incorporation into lecture of live experiments that can be predicted or interpreted with abstract models. A demonstration is described where the position of the predominant peak of 1,1'-diethyl-4,4'-cyanine iodide is measured in class using an overhead projector spectrometer, then predicted using the model of a particle in a…
Descriptors: Chemical Analysis, Chemistry, Demonstrations (Science), Experiential Learning
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Sturm, James E. – Journal of Chemical Education, 1990
Presented are definitions and a grid to clarify relationships between terms. Discussed is an example of the application of Einstein coefficients and some suggestions for teaching this concept. (CW)
Descriptors: Chemical Reactions, Chemistry, College Science, Computation
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Wooten, Jan B.; And Others – Journal of Chemical Education, 1979
The experiment described, suitable for undergraduate physical chemistry laboratories, illustrates the general principles of relaxation and introduces the nmr concepts of saturation and spin-inversion. (BB)
Descriptors: Chemical Analysis, Chemistry, Higher Education, Instructional Materials
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Cavaleiro, Jose A. S. – Journal of Chemical Education, 1987
Describes a simple undergraduate experiment in chemistry dealing with the "solvent effects" in nuclear magnetic resonance (NMR) spectroscopy. Stresses the importance of having students learn NMR spectroscopy as a tool in analytical chemistry. (TW)
Descriptors: Chemical Analysis, Chemistry, College Science, Higher Education
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Suslick, Kenneth S.; And Others – Journal of Chemical Education, 1987
Describes a physical chemistry experiment that uses Fourier transform (FTIR) spectrometers and microcomputers as a way of introducing students to the spectral storage and manipulation techniques associated with digitized data. It can be used to illustrate FTIR spectroscopy, simple kinetics, inorganic mechanisms, and Beer's Law. (TW)
Descriptors: Chemical Reactions, Chemistry, College Science, Higher Education
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Allan, Michael – Journal of Chemical Education, 1987
Discusses electron-loss spectroscopy and the experimentally observed excitation energies in terms of qualitative MO theory. Reviews information on photoelectron spectroscopy and electron transmission spectroscopy and their relation to the occupied and unoccupied orbital levels. Focuses on teaching applications. (ML)
Descriptors: Atomic Structure, Chemistry, College Science, Higher Education
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Thomas, Nicholas C.; And Others – Journal of Chemical Education, 1989
Presents a laboratory experiment which illustrates the formation of tris(phenanthroline)cobalt complexes in the 2+ and 3+ oxidation states, the effect of coordination on reactions of the ligand, and the use of a ligand displacement reaction in recovering the transformed ligand. Uses IR, UV-VIS, conductivity, and NMR. (MVL)
Descriptors: Chemical Analysis, Chemical Reactions, Chemistry, College Science
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Hinckley, Daniel A.; Seybold, Paul G. – Journal of Chemical Education, 1987
Discusses the benefits of thermochromic transformations for studying thermodynamic properties. Describes an experiment that uses a commercially available dye, attains equilibrium rapidly, employs a simple, single-beam spectrophotometer, and is suitable for both physical chemistry and introductory chemistry laboratories. (TW)
Descriptors: Chemical Equilibrium, Chemical Reactions, Chemistry, College Science
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Nelson, P. G. – Journal of Chemical Education, 1986
Discusses the conventional approaches to teaching about chemical equilibrium in advanced physical chemistry courses. Presents an alternative approach to the treatment of this concept by using Boltzmann's distribution law. Lists five advantages to using this method as compared with the other approaches. (TW)
Descriptors: Chemical Equilibrium, Chemical Nomenclature, Chemical Reactions, Chemistry
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