NotesFAQContact Us
Collection
Advanced
Search Tips
Showing all 8 results Save | Export
Peer reviewed Peer reviewed
Direct linkDirect link
Alisha R. Szozda; Zahra Lalani; Samira Behroozi; Peter G. Mahaffy; Alison B. Flynn – Journal of Chemical Education, 2024
Researchers and educators have been exploring systems thinking (ST) in chemistry education to better equip citizens for 21st century challenges; however, little is known about students' perspectives and experiences. In this study, we investigated students' perspectives of ST and their experiences with ST activities. We designed and implemented a…
Descriptors: Systems Approach, Thinking Skills, Chemistry, Science Education
Peer reviewed Peer reviewed
PDF on ERIC Download full text
McConell, David A.; Chapman, LeeAnna; Czaijka, C. Douglas; Jones, Jason P.; Ryker, Katherine D.; Wiggen, Jennifer – Journal of Geoscience Education, 2017
The adoption of active learning instructional practices in college science, technology, engineering, and mathematics (STEM) courses has been shown to result in improvements in student learning, contribute to increased retention rates, and reduce the achievement gap among different student populations. Descriptions of active learning strategies…
Descriptors: Instructional Effectiveness, Active Learning, Learning Strategies, STEM Education
Peer reviewed Peer reviewed
Direct linkDirect link
Cavalli, G.; Hamerton, I.; Lygo-Baker, S. – Chemistry Education Research and Practice, 2015
Following collaboration between two chemistry lecturers and an academic developer an attempt was made to enhance the learning of students within a chemistry module through the adaptation of the delivery of content material. This paper reports a piece of practitioner led research which considered how effective the approach developed was upon the…
Descriptors: Chemistry, Science Instruction, Plastics, Interdisciplinary Approach
Peer reviewed Peer reviewed
Direct linkDirect link
Basu-Dutt, Sharmistha; Slappey, Charles; Bartley, Julie K. – Journal of Chemical Education, 2010
As part of a campus-wide, externally funded project to increase performance in, enthusiasm for, and retention within STEM disciplines, we developed an interdisciplinary, team-taught first-year seminar course. The construction and delivery of this course was designed to show the relevance of selected general chemistry topics such as matter and…
Descriptors: Concept Mapping, First Year Seminars, Grade Point Average, Chemistry
Peer reviewed Peer reviewed
Direct linkDirect link
Yerushalmi, E.; Henderson, C.; Heller, K.; Heller, P.; Kuo, V. – Physical Review Special Topics - Physics Education Research, 2007
In higher education, instructors' choices of both curricular material and pedagogy are determined by their beliefs about learning and teaching, the values of their profession, and perceived external constraints. Dissemination of research-based educational reforms is based on assumptions about that mental structure. This study reports the initial…
Descriptors: Physics, College Faculty, Beliefs, Values
Peer reviewed Peer reviewed
Bainbridge, Brian W. – Journal of Biological Education, 1977
Flow-diagrams, algorithms, decision logic tables, and concept maps are presented in detail as methods for teaching practical procedures, problem solving, and basic concepts in microbial genetics. It is suggested that the flexible use of these methods should lead to an improved understanding of microbial genetics. (Author/MA)
Descriptors: College Science, Concept Formation, Concept Mapping, Conceptual Schemes
Peer reviewed Peer reviewed
Briscoe, Carol; LaMaster, Sarah Ulerick – American Biology Teacher, 1991
The potential of concept mapping, a learning strategy, coupled with assessments oriented toward problem solving used to facilitate meaningful learning, is examined. How students make and use concept maps in studying and the factors that influence the way they are made and used are discussed. Sample concept maps are included. (KR)
Descriptors: Biology, College Science, Concept Mapping, Critical Thinking
Smith, Karl A. – Engineering Education, 1987
Differentiates between learning efficiency (enhancing the rate of learning) and learning effectiveness (enhancing the mastery and retention of facts, concepts, and relationships). Discusses some of the contributions of knowledge engineering to metalearning. Provides a concept map for constructing knowledge bases, along with some possible…
Descriptors: Artificial Intelligence, College Science, Concept Formation, Concept Mapping