| Journal Articles: 12 results |
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Mosher Amides: Determining the Absolute Stereochemistry of Optically-Active Amines Damian A. Allen, Anthony E. Tomaso, Jr., Owen P. Priest, David F. Hindson, and Jamie L. Hurlburt In this experiment, teams of students are given an optically-pure amine of known structure but unknown stereochemistry. Different teams derivatize samples of the amine with (R) and (S) conformations of Mosher's acid chloride. The resulting diastereomers are analyzed by NMR to determine the absolute configuration of the initial, unknown amine. Allen, Damian A.; Tomaso, Anthony E., Jr.; Priest, Owen P.; Hindson, David F.; Hurlburt, Jamie L. J. Chem. Educ. 2008, 85, 698.
Amides |
Chirality / Optical Activity |
Chromatography |
Diastereomers |
Microscale Lab |
NMR Spectroscopy |
Stereochemistry
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Organic Functional Group Playing Card Deck Michael J. Welsh Organic functional group playing card deck used for review of the name and structure of organic functional groups that can be used to play any game that a normal deck of cards is used for. Welsh, Michael J. J. Chem. Educ. 2003, 80, 426.
Nomenclature / Units / Symbols |
Nonmajor Courses |
Enrichment / Review Materials |
Alcohols |
Aldehydes / Ketones |
Alkanes / Cycloalkanes |
Alkenes |
Alkynes |
Amides |
Amines / Ammonium Compounds |
Aromatic Compounds |
Carboxylic Acids |
Esters |
Ethers |
Mechanisms of Reactions |
Synthesis
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The Mechanism of the Ritter Reaction in Combination with Wagner-Meerwein Rearrangements. A Cooperative Learning Experience María I. Colombo, María L. Bohn, and Edmundo A. Rúveda Procedure in which students develop analytical and problem-solving skills by investigating an organic reaction mechanism, predicting the most likely products, and suggesting experiments to test the postulated mechanistic pathways and possible intermediates. Colombo, María I.; Bohn, María L.; Rúveda, Edmundo A. J. Chem. Educ. 2002, 79, 484.
Mechanisms of Reactions |
Reactive Intermediates |
Amides |
Thin Layer Chromatography |
NMR Spectroscopy
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An Unexpected Event When Chymotrypsin Performs Its Physiological Role Ivan G. Darvey One of the events that occur during the chymotrypsin-catalyzed hydrolysis of proteins is an example of an exception to a rule of thumb taught in introductory organic chemistry courses, namely, that amides can't readily be converted to esters. If biochemistry teachers and the authors of textbooks of biochemistry commented on this unusual reaction, it would emphasize further the remarkable part chymotrypsin plays as a catalyst in carrying out its main perceived "physiological role". Darvey, Ivan G. J. Chem. Educ. 2000, 77, 422.
Catalysis |
Enzymes |
Amides |
Esters
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Preparation and Identification of Benzoic Acids and Benzamides: An Organic "Unknown" Lab Douglass F. Taber, Jade D. Nelson, and John P. Northrop The reaction of an unknown substituted benzene derivative with oxalyl chloride and aluminum chloride gives the acid chloride. Hydrolysis of the acid chloride gives the acid, and reaction of the acid with concentrated aqueous ammonia gives the benzamide. The equivalent weight of the acid can be determined by titration; given this information and the melting points of the acid and the benzamide, it is possible to deduce the structure of the initial unknown. Taber, Douglass F.; Nelson, Jade D.; Northrop, John P. J. Chem. Educ. 1999, 76, 828.
Qualitative Analysis |
Aromatic Compounds |
Carboxylic Acids
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The Ritter Reaction: Trapping a Carbocation with a Nitrile Crouch, R. David An organic experiment involving the Ritter reaction that yields an unpredictable product. Crouch, R. David J. Chem. Educ. 1994, 71, A200.
Mechanisms of Reactions |
Amides |
Amines / Ammonium Compounds
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The structure of bis(trimethylsilyl) amides: A multinuclear NMR project Samples, Majorie S.; Yoder, Claude H.; Schaeffor, Charles D., Jr. A project designed to illustrate the great value of observing nuclei other than 1H and 13C (29Si, 14N, 17O). Samples, Majorie S.; Yoder, Claude H.; Schaeffor, Charles D., Jr. J. Chem. Educ. 1987, 64, 177.
Molecular Properties / Structure |
Amides |
NMR Spectroscopy
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A short set of 13C-NMR correlation tables Brown, D. W. The object of these tables is to enable a student to calculate rapidly approximate d values for 13C nuclei in as wide a variety of compounds as possible. Brown, D. W. J. Chem. Educ. 1985, 62, 209.
NMR Spectroscopy |
Molecular Properties / Structure |
Alkanes / Cycloalkanes |
Alkenes |
Alkynes |
Aromatic Compounds |
Amides |
Carboxylic Acids |
Esters
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Amides and hydrazides from amine and hydrazine hydrochlorides Shama, Sami A.; Tran, Thuran L. The Schotten-Baumann procedure is extensively used for the preparation of carboxylic acid derivatives in the undergraduate chemistry laboratory. Shama, Sami A.; Tran, Thuran L. J. Chem. Educ. 1978, 55, 816.
Amines / Ammonium Compounds |
Carboxylic Acids |
Synthesis
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Identification of carboxylic acids: Use of N-methylpiperazine and N-phenylpiperazine Duff, J. G.; Yung, D. K.; Brenner, R. J.; Wilson, B. J.; Racz, W. J. Demonstrates that N-phenylpiperazine is a useful reagent for the identification of carboxylic acids. Duff, J. G.; Yung, D. K.; Brenner, R. J.; Wilson, B. J.; Racz, W. J. J. Chem. Educ. 1969, 46, 388.
Carboxylic Acids |
Qualitative Analysis
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Random and systematic errors in the determination of association constants Pasternak, R. A.; Brady, A. P. Examines random and systematic errors in the context of studying association equilibria in solution of carboxylic acids and amides. Pasternak, R. A.; Brady, A. P. J. Chem. Educ. 1963, 40, 254.
Equilibrium |
Chemometrics |
Carboxylic Acids |
Amides
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Hydrogen bonding and physical properties of substances Ferguson, Lloyd N. Physical properties influenced by hydrogen bonding considered in this paper include transition temperatures, vapor pressure, water solubility, the ionization of carboxylic acids, stereoisomerism, adsorption, and infrared spectra. Ferguson, Lloyd N. J. Chem. Educ. 1956, 33, 267.
Hydrogen Bonding |
Noncovalent Interactions |
Physical Properties |
Aqueous Solution Chemistry |
Carboxylic Acids |
Stereochemistry |
IR Spectroscopy
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