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Brancaccio-Taras, Loretta; Awong-Taylor, Judy; Linden, Monica; Marley, Kate; Reiness, C. Gary; Uzman, J. Akif – Journal of Microbiology & Biology Education, 2022
In an attempt to redesign science, technology, engineering, and mathematics (STEM) departments to be more inclusive of all student populations, institutions of higher learning are reviewing their programs, policies, and the ways they engage students. The Partnership for Undergraduate Life Sciences Education (PULSE) has been working with STEM…
Descriptors: Evidence Based Practice, STEM Education, Diversity, Equal Education
Harlow, Danielle B.; Otero, Valerie K.; Leak, Anne E.; Robinson, Steve; Price, Edward; Goldberg, Fred – Physical Review Physics Education Research, 2020
[This paper is part of the Focused Collection on Curriculum Development: Theory into Design.] Fifteen years ago, following recommendations from research on science education for prospective teachers and for students more broadly, "Physics and Everyday Thinking" introduced activities within an inquiry-based undergraduate physics course…
Descriptors: Science Curriculum, Curriculum Development, Physics, College Science
Rodriguez, Jon-Marc G.; Towns, Marcy H. – Journal of Chemical Education, 2018
As described by the National Research Council, science practices reflect, in part, the way science is done. When researchers are developing an explanation for a phenomenon, they are using a combination of knowledge and skills reflected in the science practices. Laboratory-based chemistry courses provide the opportunity for students to move beyond…
Descriptors: Laboratory Experiments, Learner Engagement, Critical Thinking, Science Instruction
Galloway, Kelli R.; Stoyanovich, Carlee; Flynn, Alison B. – Chemistry Education Research and Practice, 2017
Research on mechanistic thinking in organic chemistry has shown that students attribute little meaning to the electron-pushing (i.e., curved arrow) formalism. At the University of Ottawa, a new curriculum has been developed in which students are taught the electron-pushing formalism prior to instruction on specific reactions--this formalism is…
Descriptors: Organic Chemistry, Student Reaction, Science Instruction, Teaching Methods
McCoy, Bradley K. – Christian Higher Education, 2014
Integrating faith with academics possesses significant benefits for students, because it connects major disciplines to students' personal values and goals, prepares students to be effective and faithful professionals in their discipline and vocation, and develops students' understanding of the nature of their discipline. However, to…
Descriptors: Physics, Case Studies, Science Curriculum, Religion
Salter, Irene; Atkins, Leslie – Journal of Science Teacher Education, 2013
While some researchers have argued for science classrooms that embrace open-inquiry by engaging students in doing science as scientists do (cf. National Research Council [NRC] 1996; Driver et al. in "Sci Educ" 84:287-312, 2000; Windschitl et al. in "Sci Educ" 87(1):112-143, 2008), others have argued that open-inquiry is impractical, ineffective,…
Descriptors: Preservice Teachers, Undergraduate Students, Elementary School Teachers, Inquiry

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