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Suzanne Ruder; Courtney Stanford; Nuha Farhat; Leslie Bolda – Journal of College Science Teaching, 2024
Students need a strong understanding of how to represent chemical compounds in order to succeed in organic chemistry. This project set out to gain a better understanding of students' difficulties with symbolic representations, by identifying the specific errors associated with drawing wedge-dash structures. The focus was on how students…
Descriptors: Undergraduate Students, Chemistry, Science Instruction, Organic Chemistry
Stamovlasis, Dimitrios; Tsaparlis, Georgios – Science Education, 2012
In this study, we test an information-processing model (IPM) of problem solving in science education, namely the working memory overload model, by applying catastrophe theory. Changes in students' achievement were modeled as discontinuities within a cusp catastrophe model, where working memory capacity was implemented as asymmetry and the degree…
Descriptors: Predictor Variables, High School Students, Logical Thinking, Science Education
Hussein, Furat; Reid, Norman – Research in Science & Technological Education, 2009
The difficulties of learning chemistry are related to the nature of chemistry itself and the methods by which chemistry is customarily taught. Frequently, the way of presenting chemistry does not take into account the psychology of the learner. With senior school pupils (over 1600 were involved) in the Emirates, a series of studies was conducted,…
Descriptors: Time Management, Chemistry, Short Term Memory, Information Processing

Mason, Diana S.; Shell, Duane F.; Crawley, Frank E. – Journal of Research in Science Teaching, 1997
Identifies and describes the differences in the problem-solving methods used by faculty teaching introductory chemistry and students enrolled in an introductory chemistry course. Results indicate that students correctly solve algorithmic-mode problems more frequently. Contains 33 references. (DDR)
Descriptors: Algorithms, Chemistry, Concept Formation, Higher Education