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Pence, Harry E.; Pence, Laura E. – Journal of Chemical Education, 2022
Nationally, as the chemical community aspires to become more diverse, it is essential to make students of all races, ethnicities, gender expressions, and physical abilities feel welcomed and represented in the introductory courses in the field. One way to accomplish this goal is to present examples of scientists who are not traditionally included…
Descriptors: Chemistry, Introductory Courses, College Science, Diversity
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Gee, Harold W., III; Gorton, Elizabeth S.; Cho, Sua; Fynewever, Herb – Journal of Chemical Education, 2022
We have developed and implemented a change to our General Chemistry curriculum that makes the point that "not all chemists are white men." This builds on recent textbook analyses, which showed that General Chemistry textbooks overwhelmingly and unnecessarily focus on the biographies of scientists that are white men. We demonstrate a way…
Descriptors: Chemistry, Science Curriculum, Curriculum Development, Diversity
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Israt-Zahan Chowdhury; Aisha Sharif; Lesley A. Howell; Tippu S. Sheriff – Journal of Chemical Education, 2024
There is widespread interest in diversifying and decolonizing the chemistry curricula in higher education. However, this is not reflected in the curricula taught to students prior to coming to university. We describe the results of an online survey of 185 secondary school/college teachers and students (>18 years) and, separately, 79 members of…
Descriptors: Chemistry, Science Curriculum, Scientists, Minority Groups
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Lina Fransén; Victor Hellgren; Magnus Mortensen; Susanna Olsson; Nathalie Proos Vedin; Maja Elmgren; Marcus Lundberg; Antonia Kotronia – International Journal for Students as Partners, 2024
Students can influence their education through evaluations and as representatives in university decision-making bodies. A way to give them more power is through participation in course development as equal partners. In this study, the relationship between the outcome of a student-teacher partnership and a culture of student influence and…
Descriptors: Change Agents, Learner Engagement, Student Subcultures, Universities
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Boyd M. Goodson; Qingfeng Ge; Lichang Wang – Journal of Chemical Education, 2023
Over the past 20 years, significant effort has been devoted to advancing the modular approach to teaching chemistry laboratory courses. The development and implementation of two modules are presented here for teaching a second-semester physical chemistry laboratory course using the modular approach: an inquiry-based module concerning proteins and…
Descriptors: Curriculum Development, Curriculum Implementation, Inquiry, Active Learning
Tira, Praweena – ProQuest LLC, 2009
The purpose of this study was to understand how Thai scientists from four disciplines viewed nature of science (NOS). The sixteen participating scientists were chosen from the areas of chemistry, physics, biology/life sciences, and geology/earth sciences and were separated into novice and expert groups. The scientists' understandings about NOS…
Descriptors: Foreign Countries, Expertise, Curriculum Development, Teacher Education Programs
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Grinbaum, Baruch; Semiat, Raphael – Journal of Chemical Education, 1998
Cites the shortcomings of the traditional educational experiences of chemists. Focuses on their training in engineering and concludes that training is lacking in the areas of mass balances in flow processes, heat balances, reactors, separation processes, and scaleup. (DDR)
Descriptors: Chemical Engineering, Chemistry, College Curriculum, Curriculum Development
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Olmsted, John III – Journal of Chemical Education, 1998
Describes the redesign of the first semester general chemistry laboratory at the college level. An organic component is included in the redesign and it provides students with explicit examples of several types of operations in which chemists engage. Contains 16 references. (DDR)
Descriptors: Chemistry, Curriculum Development, Educational Change, Higher Education
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Rytting, J. Howard; Schowen, Richard L. – Journal of Chemical Education, 1998
Describes the development of a semester-long course that addresses issues of scientific integrity in a practical way as they arise in the daily lives of working scientists. Shares the topical organization of the course and other details. (DDR)
Descriptors: Chemistry, Course Content, Curriculum Development, Ethics
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Wei, Bing; Thomas, Gregory P. – Science Education, 2005
Taking the Junior Secondary School Chemistry Curriculum (JSSCC) in the People's Republic of China as a case, this paper approaches the issue of the tension between elite and future citizenry orientations in science curriculum. The changes in the JSSCC over the period from 1978 to 2001 are explained from three viewpoints: sociopolitical,…
Descriptors: Foreign Countries, Science Curriculum, Chemistry, Curriculum Development
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Rutledge, Charles O. – American Journal of Pharmaceutical Education, 1976
A multidisciplinary approach is used to teach the chemical mechanisms of biological processes and of drug action. Program prerequisites and objectives emphasize the training of creative scientists who are qualified to perform interesting and informative research on the interaction of drugs with biological systems. (LBH)
Descriptors: Biology, Chemistry, Curriculum Development, Degree Requirements
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Dunn, Jeffrey G.; Kagi, Robert I.; Phillips, David N. – Journal of Chemical Education, 1998
Outlines an industrial chemistry course aimed at bridging the academe-industry gap by identifying two major threads: the way industry functions and the way industrial chemists should act in order to be most effective. Contains 39 references. (DDR)
Descriptors: Chemical Industry, Chemistry, Course Content, Curriculum Development