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Rodriguez, Jon-Marc G.; Harrison, A. Rayford; Becker, Nicole M. – Journal of Chemical Education, 2020
With recent curricular movements aimed at engaging students in science practices, more work is needed regarding evidence-based approaches for supporting students in developing competency in contexts such as chemistry. In this work, we focus on student engagement in constructing models related to graphical representations of reaction rate. Using…
Descriptors: Learner Engagement, Chemistry, Science Instruction, Graphs
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Rodriguez, Jon-Marc G.; Hux, Nicholas P.; Philips, Sven J.; Towns, Marcy H. – Journal of Chemical Education, 2019
This work seeks to add to the growing body of chemistry education research that emphasizes the teaching and learning of advanced topics, focusing on students' understanding of enzyme kinetics. The data corpus relevant to this study involved 14 second-year undergraduate students enrolled in an introductory biochemistry course taught in a chemistry…
Descriptors: Graphs, Introductory Courses, Biochemistry, Science Instruction
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Seethaler, Sherry; Czworkowski, John; Wynn, Lynda – Journal of Chemical Education, 2018
Change over time is a crosscutting theme in the sciences that is pivotal to reaction kinetics, an anchoring concept in undergraduate chemistry, and students' struggles with rates of change are well-documented. Informed by the education scholarship in chemistry, physics, and mathematics, a research team with members from complementary disciplinary…
Descriptors: Chemistry, College Freshmen, Science Education, Textbook Content
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Perez-Benito, Joaquin F. – Journal of Chemical Education, 2017
The elementary reaction sequence A ? I ? Products is the simplest mechanism for which the steady-state and quasi-equilibrium kinetic approximations can be applied. The exact integrated solutions for this chemical system allow inferring the conditions that must fulfill the rate constants for the different approximations to hold. A graphical…
Descriptors: Chemistry, Kinetics, Scientific Concepts, Graduate Study
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Halkides, Christopher J.; Herman, Russell – Journal of Chemical Education, 2007
We describe a computer tutorial that introduces the concept of the steady state in enzyme kinetics. The tutorial allows students to produce graphs of the concentrations of free enzyme, enzyme-substrate complex, and product versus time in order to learn about the approach to steady state. By using a range of substrate concentrations and rate…
Descriptors: Kinetics, Biochemistry, Computer Uses in Education, Graphs
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Yap, William T.; And Others – Journal of Chemical Education, 1977
Describes a method for determining the rate constants of enzyme reactions involving two substrates with the use of double reciprocal plots. (MLH)
Descriptors: Biochemistry, Chemistry, College Science, Graphs
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Birk, James P. – Journal of Chemical Education, 1976
Presents a set of rules for determining reaction orders of reacting species from the shape of a plot of the log of the pseudo-xth-order rate constants versus the log of the concentration being varied. (MLH)
Descriptors: Chemical Reactions, Chemistry, College Science, Graphs
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Winans, J. Gibson – Physics Teacher, 1971
Descriptors: College Science, Graphs, Instructional Materials, Kinetics
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Gordon, R. P. – Journal of Chemical Education, 1972
Descriptors: Chemical Equilibrium, Chemistry, College Science, Graphs
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Ohriner, Marvin – Physics Teacher, 1971
Descriptors: College Science, Computer Programs, Graphs, Kinetics
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Martinez Sancho, Maria Eugenie; And Others – Chemical Engineering Education, 1991
An activity in which students obtain a growth curve for algae, identify the exponential and linear growth phases, and calculate the parameters which characterize both phases is described. The procedure, a list of required materials, experimental conditions, analytical technique, and a discussion of the interpretations of individual results are…
Descriptors: Calculus, Chemistry, College Science, Computation
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Gelpi, Josep Lluis; Domenech, Carlos – Biochemical Education, 1988
Describes a program which allows students to identify and characterize several kinetic inhibitory mechanisms. Uses the generic model of reversible inhibition of a monosubstrate enzyme but can be easily modified to run other models such as bisubstrate enzymes. Uses MS-DOS BASIC. (MVL)
Descriptors: Biochemistry, Chemical Reactions, College Science, Computer Graphics