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Lefurgy, Scott T.; Mundorff, Emily C. – Biochemistry and Molecular Biology Education, 2017
Here, we present a 13-week research-based biochemistry laboratory curriculum designed to provide the students with the experience of engaging in original research while introducing foundational biochemistry laboratory techniques. The laboratory experience has been developed around the directed evolution of an enzyme chosen by the instructor, with…
Descriptors: Biochemistry, Science Instruction, Laboratory Experiments, Curriculum Development
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Cheng, Maurice M. W. – Chemistry Education Research and Practice, 2018
This paper reports on an interview study of 18 Grade 10-12 students' model-based reasoning of a chemical reaction: the reaction of magnesium and oxygen at the submicro level. It has been proposed that chemical reactions can be conceptualised using two models: (i) the "particle model," in which a reaction is regarded as the simple…
Descriptors: Visualization, Chemistry, Science Instruction, Grade 10
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Triboni, Eduardo; Weber, Gabriel – Journal of Chemical Education, 2018
Recently there has been a renewed interest in the development and use of pedagogical games, as they provide an interesting approach to the appropriation of knowledge in the context of active learning. However, most didactic games fail to completely implement a cycle of reflection and action, thereby fostering mostly lower-order thinking skills and…
Descriptors: Organic Chemistry, Educational Games, Teaching Methods, Active Learning
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Struck, William; Yerrick, Randy – Journal of Science Education and Technology, 2010
The effects of two types of two well-established microcomputer-based teaching methods were examined for their effect on teaching high school students kinetics. The use of data acquisition probeware and digital video analysis were studied for their impact on students' conceptions and ability to interpret graphical relationships to real world…
Descriptors: Curriculum Development, Computer Uses in Education, Kinetics, Physics
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Schumacher, G. E. – American Journal of Pharmaceutical Education, 1976
This course is offered in the third quarter of the fourth year of the five-year curriculum in pharmacology. The year includes (1) a 350-hour clinical clerkship, (2) two courses in "Case Studies in Drug Therapy," (3) one course in "Case Studies in Pharmacy Practice," and (4) professional electives. (LBH)
Descriptors: Curriculum Development, Degree Requirements, Drug Education, Health Occupations
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Winans, J. G. – Physics Education, 1972
Recognizes that physics, like other sciences, deals with information in the form of sense impressions. Concepts of mass length and time are not sensory experiences and should substitute instead the terms of force, displacement and time for better understanding. (PS)
Descriptors: Curriculum Development, Kinetics, Physics, Resource Materials
Darm, Adam E. – Sch Shop, 1970
A course in Kinematics uses behavioral objectives and problem-solving to speed learning of abstract principles. (GR)
Descriptors: Behavioral Objectives, Course Descriptions, Curriculum Development, Educational Media
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Gray, Jeffrey J. – Chemical Engineering Education, 2006
I present modifications to the traditional course entitled, "Process dynamics and control," which I renamed "Modeling, dynamics, and control of chemical and biological processes." Additions include the central dogma of biology, pharmacokinetic systems, population balances, control of gene transcription, and largeĀ­-scale…
Descriptors: Molecular Biology, Engineering Education, Mathematical Models, Chemical Engineering
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Mace, W. K. – Physics Education, 1971
Describes some of the general principles involved in the planning of a teaching sequence. Discusses in more detail one example of a complete syllabus including major concepts and experiments. (Author/TS)
Descriptors: Course Descriptions, Course Organization, Curriculum Development, Kinetics
Bohn, Ralph C. – Man/Society/Technology--A Journal of Industrial Arts Education, 1972
Descriptors: Concept Teaching, Curriculum Development, Educational Responsibility, Industrial Arts
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Savage, Phillip E.; Blaine, Steven – Chemical Engineering Education, 1991
A set of educational materials that have been developed which deal with chemical engineering applications in emerging technologies is described. The organization and the content of the supplemental textbook materials and how they can be integrated into an undergraduate reaction engineering course are discussed. (KR)
Descriptors: Chemical Engineering, Chemical Reactions, Chemistry, College Science
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Miranda, R. – Chemical Engineering Education, 1989
Described is a heterogeneous catalysis course which has elements of materials processing embedded in the classical format of catalytic mechanisms and surface chemistry. A course outline and list of examples of recent review papers written by students are provided. (MVL)
Descriptors: Chemical Analysis, Chemical Engineering, Chemical Industry, Chemical Reactions