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Showing 1 to 15 of 22 results Save | Export
Transforming Education, 2020
The Case Study Compilation was developed with and for educators to provide examples of practice related to three questions: (1) What does it mean to focus on social-emotional development and the creation of positive learning environments?; (2) How can educators integrate their approaches to social, emotional, and academic development?; and (3)…
Descriptors: Case Studies, Faculty Development, Coaching (Performance), Vignettes
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Worthy, Ward – Chemical and Engineering News, 1989
Reviews current biochemistry, education, and polymer course options found in chemistry programs. Proposes a new core curriculum with 28 semester hours with courses in inorganic, chemical, and instrumental analysis, organic, bioorganic, and physical chemistry. Notes that the new curriculum would better prepare students for the existing employment…
Descriptors: Biochemistry, Chemistry, College Science, Curriculum Design
Hiebert, Clyde – 1992
For various reasons, students do not have access to laboratory facilities and yet need courses in the laboratory sciences such as chemistry. This paper describes "Outreach Chemistry," a course developed to provide a chemistry laboratory experience for students attending schools that lack science laboratories. Designed for off-campus students whose…
Descriptors: Chemistry, Curriculum Development, Higher Education, Instructional Innovation
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Journal of Chemical Education, 1985
Provides highlights of lectures, workshops, papers, and symposia presented at a conference which addressed such areas of chemical education as college/high school chemistry teaching; curriculum/curriculum development; safety; two-year programs; computers; toxicology and health hazards; problem-solving; writing skills development; textbooks;…
Descriptors: Chemistry, College Science, Conferences, Higher Education
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Kandel, Marjorie – Journal of College Science Teaching, 1989
Explains a scheme for grading student performance which stresses skills, technique, decision making, and notebook entries. Describes grading system and potential pitfalls. (RT)
Descriptors: Chemistry, College Science, Course Content, Grading
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Simpson, Peter – School Science Review, 1989
The ideas behind electrophilic addition to alkenes, and electrophilic substitution in benzene derivatives are discussed. Teaching these concepts to secondary school students is stressed. Five main points useful at this age level are summarized. (Author/CW)
Descriptors: Chemical Bonding, Chemical Reactions, Laboratory Procedures, Misconceptions
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Tabbutt, Frederick D.; And Others – Journal of Chemical Education, 1989
This paper reports on the success of a laboratory teaching technique for teaching undergraduate chemistry. Discussed are the premises of the approach, and the use of the computer, the explorations, and the seminar which are included in the course. (CW)
Descriptors: Chemistry, College Science, Computer Uses in Education, Course Descriptions
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Licata, Kenneth P. – Science Teacher, 1988
Explains the use of constructing and analyzing analogies as a way to enhance student understanding and recollection of scientific concepts. Offers suggestions for topics including energy activation, phases of matter, electron transitions, equilibrium, covalent bonds, wave and particle duality, reaction types, ideal versus real gases, and oxidation…
Descriptors: Chemistry, Comprehension, Concept Formation, Concept Teaching
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Pool, Robert – Science, 1990
Described are chemistry and physics courses at several colleges as applications of the New Liberal Arts program for nonscience majors. The major themes of the program and several examples of this approach are discussed. (CW)
Descriptors: Chemistry, College Science, Course Content, Course Descriptions
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Jordan, Thomas M. – Science Teacher, 1989
Explained is a representation of the three categories of spectra. Discusses what a lesson on spectra should include, background information, and equipment needed. Provided is a diagram of an absorption box. (RT)
Descriptors: Astronomy, Chemistry, Laboratory Equipment, Light
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Foukaridis, G. N.; McFarlane, L. R. – Journal of Chemical Education, 1988
Notes that criticism of the training offered by universities to future chemists is well documented. Suggests a 17-step model for the planning of a chemistry course that utilizes a competency-based training program. Explains each step and lists sample objectives. (MVL)
Descriptors: Accountability, Chemical Industry, Chemistry, College Science
Hinchman, Kathleen A., Ed.; Sheridan-Thomas, Heather K., Ed. – Guilford Publications, 2008
Covering everything from day-to-day learning activities to schoolwide goals, this engaging book reviews key topics in literacy instruction for grades 5-12 and provides research-based recommendations for practice. Leading scholars present culturally responsive strategies for motivating adolescents; using multiple texts and digital media;…
Descriptors: Middle School Students, Adolescents, Literacy, Program Development
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Goh, N. K.; And Others – Journal of Chemical Education, 1989
Provided is a model to depict how the development of process skills can be systematically achieved and in turn determine the students' achievement in science practicals. Modified laboratory instruction is compared with conventional laboratory instruction. The results of field testing on 164 ninth grade subjects are described. (MVL)
Descriptors: Chemistry, Grade 9, Instructional Effectiveness, Laboratories
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Rund, John V.; And Others – Journal of Chemical Education, 1989
Discusses a survey of selected undergraduate chemistry laboratory courses. Topics include: who preps the experiment; degree of faculty involvement; instructional loads; types of directions used; satisfaction with materials used; techniques taught; computer use; rating the laboratory; and a self rating. Provides data for each topic. (MVL)
Descriptors: Chemistry, Class Size, College Science, Computer Uses in Education
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Krieger, James – Chemical and Engineering News, 1989
Discusses a continuing education course that reached 1000 viewers at 43 North American sites. Points out that each professor had 35 minutes for his presentation followed by a 10-minute call-in question and answer period. Notes polymer topics will be the focus of upcoming lessons. (MVL)
Descriptors: Chemical Reactions, Chemistry, College Science, Continuing Education
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