| Journal Articles: 41 results |
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Concentration Scales for Sugar Solutions David W. Ball Examines several special scales used to indicate the concentration of sugar solutions and their application to industry. Ball, David W. J. Chem. Educ. 2006, 83, 1489.
Nomenclature / Units / Symbols |
Food Science |
Solutions / Solvents
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Improving Conceptions in Analytical Chemistry: ci Vi = cf Vf Margarita Rodríguez-López and Arnaldo Carrasquillo Jr. A common misconception related to analytical chemistry, which may be generalized as the failure to recognize and to account analytically for changes in substance density, is discussed. A cautionary example is made through the use of mass-based units of composition during volumetric dilution. The correct application of the volumetric dilution equation ci Vi = cf Vf is discussed. A quantitative description of the systematic error introduced by incorrect use of the volumetric dilution equation is also specified. Rodríguez-López, Margarita; Carrasquillo, Arnaldo, Jr. J. Chem. Educ. 2005, 82, 1327.
Industrial Chemistry |
Nomenclature / Units / Symbols |
Quantitative Analysis |
Solutions / Solvents
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Well Wishes. A Case on Septic Systems and Well Water Requiring In-Depth Analysis and Including Optional Laboratory Experiments Mary M. Walczak and Juliette M. Lantz This paper describes the use of a case study to teach introductory chemistry students the chemical principles of solution concentration (especially ppm) and dilution, aqueous redox reactions, and stoichiometric conversions between different solution species. Walczak, Mary M.; Lantz, Juliette M. J. Chem. Educ. 2004, 81, 218.
Consumer Chemistry |
Water / Water Chemistry |
Solutions / Solvents |
Oxidation / Reduction |
Stoichiometry
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Mole, Mole per Liter, and Molar: A Primer on SI and Related Units for Chemistry Students George Gorin A brief historical overview of the SI system, the concept of the mole and the definition of mole unit, the status of the liter in the metric and SI systems, and the meaning of molar and molarity. Gorin, George. J. Chem. Educ. 2003, 80, 103.
Stoichiometry |
Nomenclature / Units / Symbols |
Solutions / Solvents |
Enrichment / Review Materials
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Using Limiting-Excess Stoichiometry to Introduce Equilibrium Calculations: A Discrepant Event Laboratory Activity Involving Precipitation Reactions Stephen DeMeo Students are introduced to the concept of equilibrium as they investigate two precipitation reactions, predict which reactant is present in excess, and find that there are two excess reactants. DeMeo, Stephen. J. Chem. Educ. 2002, 79, 474.
Equilibrium |
Stoichiometry |
Precipitation / Solubility |
Qualitative Analysis
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How to Say How Much: Amounts and Stoichiometry Addison Ault Pictorial representation of the ways by which chemists describe an amount of material, and a systematic way to create a visual representation or "map" for solving stoichiometry problems. Ault, Addison. J. Chem. Educ. 2001, 78, 1347.
Stoichiometry
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The Best of Chem 13 News Kathy Thorsen A variety of suggestions for instructional activities in introductory chemistry from Chem 13 News. Thorsen, Kathy. J. Chem. Educ. 1998, 75, 1368.
Microscale Lab |
Gases |
Stoichiometry
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CheMentor Software System by H. A. Peoples reviewed by Brian P. Reid CheMentor is a series of software packages for introductory-level chemistry, which includes Practice Items (I), Stoichiometry (I), Calculating Chemical Formulae, and the CheMentor Toolkit. Reid, Brian P. J. Chem. Educ. 1997, 74, 1047.
Stoichiometry
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Stoogiometry: A Cognitive Approach to Teaching Stoichiometry Carla R. Krieger Moe's Mall is a locational device designed to be used by learners as a simple algorithm for solving mole-based exercises efficiently and accurately. The mall functions as a map for setting up solutions to mole-based exercises using dimensional analysis. It clears the cognitive decks of students' easily overburdened short-term memory space, allowing them to focus on the versatility of the mole, rather than stepwise solutions to meaningless exercises. Krieger, Carla R. J. Chem. Educ. 1997, 74, 306.
Learning Theories |
Computational Chemistry |
Stoichiometry
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Symbolic Algebra and Stoichiometry DeToma, Robert P. Applying symbolic algebra (instead of the factor-label method) to stoichiometry calculations. DeToma, Robert P. J. Chem. Educ. 1994, 71, 568.
Chemometrics |
Nomenclature / Units / Symbols
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Analysis of organic acids: A freshman laboratory experiment Griswold, John R.; Rauner, Richard A. In this experiment students select unknown carboxylic acids, determine their melting points, and investigate their solubility behavior in water and ethanol. Griswold, John R.; Rauner, Richard A. J. Chem. Educ. 1990, 67, 516.
Acids / Bases |
Titration / Volumetric Analysis |
Stoichiometry |
Precipitation / Solubility
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Problem solving and requisite knowledge of chemistry Lythcott, Jean It is possible for students to produce right answers to chemistry problems without really understanding much of the chemistry involved. Lythcott, Jean J. Chem. Educ. 1990, 67, 248.
Stoichiometry |
Learning Theories
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In praise of thiosulfate Tykodi, R. J. The reactions of thiosulfate make impressive lecture demonstrations and worthwhile laboratory experiments. Tykodi, R. J. J. Chem. Educ. 1990, 67, 146.
Acids / Bases |
Precipitation / Solubility |
Oxidation / Reduction |
Aqueous Solution Chemistry |
Stoichiometry
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A multi-topic problem for general chemistry Burness, James H. A 'marathon' problem which requires specific knowledge in several areas while requiring that the student recognize how these areas are related. Burness, James H. J. Chem. Educ. 1988, 65, 145.
Stoichiometry |
Transport Properties |
Electrolytic / Galvanic Cells / Potentials |
Crystals / Crystallography
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Reaction stoichiometry and suitable "coordinate systems" Tykodi, R. J. Methods for dealing with problems involving reactions stoichiometry: unitize and scale up, factor-label procedure, de Donder ratios, and titration relations. Tykodi, R. J. J. Chem. Educ. 1987, 64, 958.
Stoichiometry |
Titration / Volumetric Analysis |
Chemometrics
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Dozen, gross, nerds, moles, and sons Banks, Alton J. Technique for demonstrating the mole concept using candies. Banks, Alton J. J. Chem. Educ. 1987, 64, 956.
Stoichiometry
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Molar and equivalent amounts and concentrations Kohman, Truman P. What are the quantities of which molar and normal are units? Kohman, Truman P. J. Chem. Educ. 1987, 64, 246.
Stoichiometry |
Nomenclature / Units / Symbols
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Unit basis a neglected problem-solving technique Beichl, George J. A technique that will prevent students from using ineffective problem-solving techniques such as dimensional analysis. Beichl, George J. J. Chem. Educ. 1986, 63, 146.
Chemometrics |
Stoichiometry
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The definition and symbols for the quantity called "molarity" or "concentration" and for the SI units of this quantity Gorin, George An alternative formulation for concentration and the SI units for this quantity. Gorin, George J. Chem. Educ. 1985, 62, 741.
Nomenclature / Units / Symbols |
Solutions / Solvents
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A pictorial framework to aid conceptualization of reaction stoichiometry Cameron, David L. Approach to teaching stoichiometry that promotes students' understanding of a reaction as a coherent process. Cameron, David L. J. Chem. Educ. 1985, 62, 510.
Stoichiometry |
Reactions
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Why teach the gas laws? Davenport, Derek A. Justification for teaching the gas laws. Davenport, Derek A. J. Chem. Educ. 1985, 62, 505.
Gases |
Stoichiometry
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Using a conversion matrix to simplify stoichiometric calculations from balanced equations Berger, Selman A. Two examples of using a conversion matrix to simplify stoichiometric calculations from balanced equations. Berger, Selman A. J. Chem. Educ. 1985, 62, 396.
Chemometrics |
Stoichiometry
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Problem-solving skills in chemistry made easier Fast, Kenneth V. Step-by-step format for performing common calculations in chemistry. Fast, Kenneth V. J. Chem. Educ. 1985, 62, 396.
Stoichiometry |
Chemometrics
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Toward a more rational terminology Tykodi, R. J. Recommended changes in the terms atomic weight, molecular weight, gram atomic / molecular / formula weights, gram equivalent weight, specific heat / volume / density, and chemical equation. Tykodi, R. J. J. Chem. Educ. 1985, 62, 241.
Nomenclature / Units / Symbols
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A LAP on moles: Teaching an important concept Ihde, John The objective of the Learning Activity Packet on moles include understanding the basic concept of the mole as a chemical unit, knowing the relationships between the mole and the atomic weights in the periodic table, and being able to solve basic conversion problems involving grams, moles, atoms, and molecules. [Debut] Ihde, John J. Chem. Educ. 1985, 62, 58.
Stoichiometry |
Nomenclature / Units / Symbols |
Chemometrics |
Atomic Properties / Structure |
Molecular Properties / Structure |
Periodicity / Periodic Table
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A recipe for teaching stoichiometry Umland, Jean B. Comparing stoichiometry calculations to the methods required for fractioning or multiplying a baking recipe. Umland, Jean B. J. Chem. Educ. 1984, 61, 1036.
Stoichiometry
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Determination of ammonia in household cleaners: an instrumental analysis experiment Graham, Richard C.; DePew, Steven This popular experiment describes a procedure that is easily modified to determine quantitatively such analytes as ammonia in solution. Graham, Richard C.; DePew, Steven J. Chem. Educ. 1983, 60, 765.
Quantitative Analysis |
Titration / Volumetric Analysis |
Acids / Bases |
pH |
Consumer Chemistry |
Stoichiometry |
Solutions / Solvents
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A novel classification of concentration units MacCarthy, Patrick Concentration units can be a source of confusion for students. This article presents a treatment on this topic that may help students understand the differences between these units. MacCarthy, Patrick J. Chem. Educ. 1983, 60, 187.
Nomenclature / Units / Symbols |
Solutions / Solvents |
Aqueous Solution Chemistry
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The underprepared student, scientific literacy and Piaget: Reflections on the role of measurement in scientific discussion Kurland, Daniel J. The need for an explicit instructional component that stresses the notion of measurement as a means of physical description. Kurland, Daniel J. J. Chem. Educ. 1982, 59, 574.
Learning Theories |
Nomenclature / Units / Symbols
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A "road map" problem for freshman chemistry students Burness, James H. Question suitable for a take-home type of exam. Burness, James H. J. Chem. Educ. 1980, 57, 647.
Gases |
Solutions / Solvents |
Stoichiometry |
Nomenclature / Units / Symbols |
Chemometrics
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Adopting SI units in introductory chemistry Davies, William G.; Moore, John W. Conventions associated with SI units, conversion relationships commonly used in chemistry, and a roadmap method for solving stoichiometry problems. Davies, William G.; Moore, John W. J. Chem. Educ. 1980, 57, 303.
Nomenclature / Units / Symbols |
Chemometrics
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The oxidation of hydrazine by basic iodine solutions: A stoichiometric study Cooper, J. N.; Ramette, R. W. This experiment relies on an oxidation-reduction reaction for which a variety of products is energetically possible. Cooper, J. N.; Ramette, R. W. J. Chem. Educ. 1969, 46, 872.
Stoichiometry |
Oxidation / Reduction |
Reactions
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Thermochemistry of hypochlorite oxidations Bigelow, M. Jerome Students mix various proportions of aqueous sodium hypochlorite and sodium sulfite and plot the change in temperature to determine the stoichiometry of the reaction. Bigelow, M. Jerome J. Chem. Educ. 1969, 46, 378.
Calorimetry / Thermochemistry |
Oxidation / Reduction |
Aqueous Solution Chemistry |
Stoichiometry |
Thermodynamics |
Mechanisms of Reactions
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Normality and molality: The expendables Sacks, L. J. Discusses objections against normality and molality. Sacks, L. J. J. Chem. Educ. 1968, 45, 183.
Nomenclature / Units / Symbols
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A temperature-independent concentration unit Blumberg, A. A.; Siska, P. E.; San Filippo, Joseph, Jr. Describes a new system of concentration, termed molicity by the authors. Blumberg, A. A.; Siska, P. E.; San Filippo, Joseph, Jr. J. Chem. Educ. 1965, 42, 420.
Nomenclature / Units / Symbols |
Solutions / Solvents
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Derivation of equations for the interconversion of concentration units Mills, Alfred P. Presents the derivation of equations for the interconversion of concentration units. Mills, Alfred P. J. Chem. Educ. 1965, 42, 314.
Nomenclature / Units / Symbols
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An MKS system of units for chemists Strong, Frederick C. It would be worth investigating whether the MKS system would be useful in chemistry. Strong, Frederick C. J. Chem. Educ. 1964, 41, 621.
Nomenclature / Units / Symbols
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The "reaction equivalent" in stoichiometric problems Dorf, Harold Presents a simplified method for solving all stoichiometric problems based on chemical equations. Dorf, Harold J. Chem. Educ. 1962, 39, 298.
Stoichiometry
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Letters to the editor Hall, Arthur C. The molality-molarity paradox presented in an earlier article is artificial rather than apparent. Hall, Arthur C. J. Chem. Educ. 1959, 36, 584.
Stoichiometry |
Solutions / Solvents |
Nomenclature / Units / Symbols
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A molality-molarity paradox? Toby, Sidney The author points out that there seems no obvious reason why molality could not equal molarity in a solution whose density is less than unity. Toby, Sidney J. Chem. Educ. 1959, 36, 230.
Stoichiometry |
Nomenclature / Units / Symbols |
Solutions / Solvents |
Aqueous Solution Chemistry
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Letters Pokras, Lewis The author proposes the term "senacule" as analagous to molecule and to be used to refer to ionic species. Pokras, Lewis J. Chem. Educ. 1958, 35, 159.
Nomenclature / Units / Symbols
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