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Ravera, Mauro; Nucera, Alessandro; Gabano, Elisabetta – Journal of Chemical Education, 2022
This is an easy and inexpensive laboratory experiment in which undergraduate students at the Bachelor's degree level in Chemistry can measure formation constants of complexes [Ni(en)[subscript n](OH[subscript 2])[subscript 6-2n]][superscript 2]+ (n = 1, 2 or 3; en = ethylenediamine) through an acid-base titration. The background information…
Descriptors: Laboratory Experiments, Color, College Science, Science Instruction
Eldridge, Daniel S. – Journal of Chemical Education, 2015
There is an increasing focus across all educational sectors to ensure that learning objectives are aligned with learning activities and assessments. An attractive approach previously published is that of curriculum alignment projects. This paper discusses the use of the fun and famous "Elephant's Toothpaste" experiment as a customizable…
Descriptors: Curriculum Development, Alignment (Education), Science Projects, Learning Activities
Corcoran, K. Blake; Rood, Brian E.; Trogden, Bridget G. – Journal of Chemical Education, 2011
This project involved developing a method to remediate large quantities of aqueous waste from a general chemistry laboratory experiment. Aqueous Ni(II) waste from a general chemistry laboratory experiment was converted into solid nickel hydroxide hydrate with a substantial decrease in waste volume. The remediation method was developed for a…
Descriptors: Chemistry, Laboratory Experiments, College Science, Introductory Courses
Waghorne, W. Earle; Rous, Andrew J. – Journal of Chemical Education, 2009
Students determine the relative atomic masses of calcium, magnesium, and aluminum by reaction with hydrochloric acid and measurement of the volume of hydrogen gas liberated. The experiment demonstrates stoichiometry and illustrates clearly that mass of the reagent is not the determinant of the amounts in chemical reactions. The experiment is…
Descriptors: Chemistry, Molecular Structure, Science Instruction, Stoichiometry
Prall, Bruce R. – Journal of Chemical Education, 2008
The titration of HCl with NaOH has traditionally been used to introduce beginning chemistry students to the concepts of acid-base chemistry and stoichiometry. The demonstration described in this article utilizes this reaction as a means of providing students an opportunity to observe the dynamic motion associated with a swirling vortex and its…
Descriptors: Chemistry, Demonstrations (Educational), Science Instruction, Scientific Principles
Cacciatore, Kristen L.; Sevian, Hannah – Journal of Chemical Education, 2009
Many institutions are responding to current research about how students learn science by transforming their general chemistry laboratory curricula to be inquiry-oriented. We present a comparison study of student performance after completing either a traditional or an inquiry stoichiometry experiment. This single laboratory experience was the only…
Descriptors: Stoichiometry, Prior Learning, Chemistry, Instructional Effectiveness
Croteau, Joshua; Fox, William P.; Varazo, Kristofoland – PRIMUS, 2007
In beginning chemistry classes, students are taught a variety of techniques for balancing chemical equations. The most common method is inspection. This paper addresses using a system of linear mathematical equations to solve for the stoichiometric coefficients. Many linear algebra books carry the standard balancing of chemical equations as an…
Descriptors: Equations (Mathematics), Algebra, Mathematics Instruction, Stoichiometry

Tykodi, R. J. – Journal of Chemical Education, 1987
Presented are three methods for dealing with chemical problems involving reaction stoichiometry. (RH)
Descriptors: Chemical Reactions, Chemistry, College Science, Problem Solving

Koch, Helmut – Science Teacher, 1995
Descriptors: Chemistry, Higher Education, Science Instruction, Scientific Concepts

Kumar, David D.; And Others – Journal of Science Education and Technology, 1994
Investigates HyperCard as a tool for assessment in science education and determines whether or not a HyperCard assessment instrument could differentiate between expert and novice student performance on balancing stoichiometric equations in science education. (ZWH)
Descriptors: Chemistry, Evaluation, High Schools, Measures (Individuals)

Umland, Jean B. – Journal of Chemical Education, 1984
Discusses an instructional strategy in which stoichiometric reactions are presented in terms of a recipe. Solutions for two different stoichiometric problems are included. (JN)
Descriptors: Chemical Reactions, Chemistry, College Science, Higher Education

Lamb, William G. – Science Teacher, 1984
Describes an experiment involving the preparation of copper iodide that gives stoichiometric results. Materials needed and procedures are discussed along with ideas on different ways to analyze the data. Pertinent chemical equations are presented. (BC)
Descriptors: Chemical Equilibrium, Chemical Reactions, Chemistry, High Schools
Cacciatore, Kristen L.; Sevian, Hannah – Journal of Chemical Education, 2006
We present an alternative to a traditional first-year chemistry laboratory experiment. This experiment has four key features: students utilize stoichiometry, learn and apply principles of green chemistry, engage in authentic scientific inquiry, and discover why each part of a scientific lab report is necessary. The importance and essential…
Descriptors: Stoichiometry, Technical Writing, Verbal Communication, Chemistry

Alick, Bonita; Atwater, Mary M. – School Science and Mathematics, 1988
Discusses problem-solving strategies and the successful strategy used to solve stoichiometric problems in general college chemistry courses. Reports that rereading problems, recalling a related concept, and reasoning deductively/inductively are the most heavily used strategies among 13 categories. (YP)
Descriptors: Blacks, Chemistry, Cognitive Processes, College Science

Sumrall, William J. – Science Teacher, 1991
Presents four stoichiometric problems and their solutions that use spot metal prices quoted from the newspaper to integrate economics and chemistry. (MDH)
Descriptors: Chemical Reactions, Chemistry, Computation, Cooperative Learning
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