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Ernest Koranteng – Science Education International, 2024
This study aimed to uncover common difficulties and possible areas for improvement by focusing on the approaches and errors made by 3rd-year undergraduate chemistry students in solving organic synthesis problems. The study employed a purposive sampling technique to select 112 undergraduate chemistry major students to participate in this study.…
Descriptors: Foreign Countries, Undergraduate Students, Chemistry, Science Instruction
Feldman-Maggor, Yael; Tuvi-Arad, Inbal; Blonder, Ron – International Journal of Science Education, 2022
Professional development courses help teachers integrate new content knowledge into the high-school curriculum. Designing practical online courses for this purpose is challenging, particularly in emerging fields such as nanotechnology. In this study, we evaluated such a course in three complementary dimensions: (1) knowledge, (2) the complexity of…
Descriptors: Curriculum Development, Course Evaluation, Online Courses, Technology
Stowe, Ryan L.; Herrington, Deborah G.; McKay, Robert L.; Cooper, Melanie M. – Journal of Chemical Education, 2019
Widespread adoption of the Next Generation Science Standards (NGSS) has created a need to carefully consider how chemistry curricula should support students in understanding the world in terms of atomic/molecular behavior. We argue that Standards-aligned coursework should be "core-ideas centered" due to evidence that curricula embedded…
Descriptors: High School Students, Science Instruction, Chemistry, Standards
Stowe, Ryan L.; Herrington, Deborah G.; McKay, Robert L.; Cooper, Melanie M. – Journal of Chemical Education, 2019
Connecting the behavior of invisible (to the naked eye) particles governed by the principles of quantum mechanics to the world we can see and touch requires a host of inferences, almost none of which can be extrapolated from experience. Molecular-level sensemaking thus relies upon intellectual resources that must be developed in large part by…
Descriptors: Chemistry, Science Curriculum, High School Students, Standards
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
Schaller, Chris P.; Graham, Kate J.; Johnson, Brian J.; Jakubowski, Henry V.; McKenna, Anna G.; McIntee, Edward J.; Jones, T. Nicholas; Fazal, M. A.; Peterson, Alicia A. – Journal of Chemical Education, 2015
A one-semester, introductory chemistry course is described that develops a primarily qualitative understanding of structure-property relationships. Starting from an atoms-first approach, the course examines the properties and three-dimensional structure of metallic and ionic solids before expanding into a thorough investigation of molecules. In…
Descriptors: Introductory Courses, Chemistry, Qualitative Research, Molecular Structure
Goess, Brian C. – Journal of Chemical Education, 2014
A two-semester second-year introductory organic chemistry sequence featuring one semester of accelerated organic chemistry followed by one semester of bioorganic chemistry is described. Assessment data collected over a six-year period reveal that such a course sequence can facilitate student mastery of fundamental organic chemistry in the first…
Descriptors: Introductory Courses, Organic Chemistry, Curriculum Development, Sequential Approach
Herrmann-Abell, Cari F.; Koppal, Mary; Roseman, Jo Ellen – CBE - Life Sciences Education, 2016
Modern biology has become increasingly molecular in nature, requiring students to understand basic chemical concepts. Studies show, however, that many students fail to grasp ideas about atom rearrangement and conservation during chemical reactions or the application of these ideas to biological systems. To help provide students with a better…
Descriptors: Biology, Secondary School Science, Middle School Students, High Schools

Price, Charles C. – Journal of Chemical Education, 1973
Discusses the use of the properties of polyethylene, polypropylene, polyisobutylene, and their three epoxides to illustrate the relationships of entropy to molecular properties and the concepts of molecular chirality, geometry, and flexibility. (CC)
Descriptors: Chemistry, College Science, Curriculum Development, Instruction

Wunderlich, Bernhard – Journal of Chemical Education, 1973
Discusses the inclusion of knowledge on macromolecules into a freshman chemistry course which emphasizes topics in organic chemistry, polymer science and biochemistry, atoms, chemical thermodynamics, and inorganic chemistry. Indicates that the program is the only way to keep chemistry education up to date. (CC)
Descriptors: Chemistry, College Science, Course Descriptions, Curriculum Development

Morton, Maurice – Journal of Chemical Education, 1973
Describes the features of the free radical, anionic, and cationic mechanisms of chain addition polymerization. Indicates that the nature of chain reactions can be best taught through the study of macromolecules. (CC)
Descriptors: Chemistry, College Science, Curriculum Development, Instruction

Campbell, J. H. – Journal of Chemical Education, 1974
Descriptors: Chemistry, College Science, Computer Assisted Instruction, Computer Programs

Flory, Paul J. – Journal of Chemical Education, 1973
Summarizes the history of concepts concerning the molecular nature of polymers, involving the carbon chain theory, graphic formula, polycondensation, colloidal properties, polypeptide hypothesis, secondary aggregation, and Watson-Crick model. Indicates that macromolecular science should be accommodated within the discipline of molecular science…
Descriptors: Chemistry, College Science, Curriculum Design, Curriculum Development
Dawson, Chris; Rowell, Jack – SASTA Journal, 1979
Discusses when the writing of chemical formula and equations can be introduced in the school science curriculum. Also presents ways in which formulae and equations learning can be aided and some examples for balancing and interpreting equations. (HM)
Descriptors: Chemical Bonding, Chemical Reactions, Chemistry, Curriculum Development

Russell, Arlene A.; Chapman, Orville L.; Wegner, Patrick A. – Journal of Chemical Education, 1998
Outlines the development of a curriculum in molecular science that prepares those students who have a deep understanding of chemistry concepts and principles, have collaboration skills, are able to use modern technology, and can write about chemistry. (DDR)
Descriptors: Active Learning, Chemistry, Communication Skills, Concept Formation