Publication Date
| In 2026 | 0 |
| Since 2025 | 2 |
| Since 2022 (last 5 years) | 7 |
| Since 2017 (last 10 years) | 18 |
| Since 2007 (last 20 years) | 49 |
Descriptor
| Course Descriptions | 687 |
| Science Curriculum | 687 |
| Science Education | 541 |
| Higher Education | 393 |
| College Science | 387 |
| Science Instruction | 271 |
| Chemistry | 203 |
| Secondary School Science | 187 |
| Course Content | 149 |
| Physics | 139 |
| Teaching Methods | 129 |
| More ▼ | |
Source
Author
Publication Type
Education Level
Audience
| Practitioners | 215 |
| Teachers | 101 |
| Researchers | 11 |
| Administrators | 10 |
| Policymakers | 6 |
| Students | 2 |
Location
| United Kingdom (Great Britain) | 35 |
| Australia | 13 |
| United Kingdom | 13 |
| Canada | 10 |
| Louisiana | 9 |
| Israel | 8 |
| New York | 8 |
| United Kingdom (Scotland) | 6 |
| California | 4 |
| China | 4 |
| India | 3 |
| More ▼ | |
Laws, Policies, & Programs
Assessments and Surveys
| Test on Understanding Science | 1 |
| Trends in International… | 1 |
What Works Clearinghouse Rating
Peer reviewedGetzin, Donald R. – Journal of Chemical Education, 1985
Describes an interdisciplinary chemistry course at the New Jersey Institute of Technology (NJIT) in which at least one quarter of the time is devoted to materials science. Includes information on course content, laboratory work, and assessment of student performance on chemistry and materials science topics. (JN)
Descriptors: Chemical Engineering, Chemistry, College Science, Course Descriptions
Peer reviewedHarrison, Michael J. – Journal of College Science Teaching, 1985
Nuclear arms education is being addressed in many academic disciplines and can be approached from many viewpoints. Rationale, ethical issues, instructional strategies, European views, and course materials are considered. A syllabus and references are also included for a course titled "Physics of Nuclear Arms and Nuclear War." (DH)
Descriptors: College Science, Course Descriptions, Curriculum Development, Higher Education
Peer reviewedButzow, John W.; Pare, Roland R. – Science Education, 1973
Describes "Studies in the Physical Sciences" (SPS), an audiotutorial physical science course designed for non-science elementary school classrooms. The course is completely laboratory-centered with no formally scheduled classes. Students can work at their own speed, choose what they will study from the sixteen units available and design…
Descriptors: Course Descriptions, Elementary School Science, Individualized Instruction, Individualized Programs
Peer reviewedPeterson, Priscilla – American Biology Teacher, 1973
Describes a course in microbiology offered as a high school science elective. The laboratory-oriented course has proved to be very popular and provides students with the basic techniques for handling equipment and working safely with bacteria. (JR)
Descriptors: Biology, Course Descriptions, Educational Programs, Elective Courses
Peer reviewedWatts, Stephen H. – Journal of Geological Education, 1983
Describes two- and three-year undergraduate curricula for training earth science technicians at Sir Sanford Fleming College (Canada), emphasizing practical aspects and close student-faculty interaction. List of employment opportunities for geology graduates based on past placement data and geology curriculum outline are provided in tables. (JN)
Descriptors: College Science, Course Content, Course Descriptions, Earth Science
Peer reviewedMueller, William J. – Journal of Chemical Education, 1982
The laboratory of an organic chemistry course for dietetics students is based on the learning cycle approach (exploration, invention-concept introduction, and concept application). The laboratory program is divided into four sections: lab techniques, compound types, reaction types, and reaction characteristics. (SK)
Descriptors: Chemistry, College Science, Concept Formation, Course Descriptions
Peer reviewedNewman, Melvin S. – Journal of Chemical Education, 1982
Describes a two-quarter, freshman honors laboratory course at the Ohio State University, including selection of students, nature of experiments, and safety precautions. Specific instructions are not given to students, who then run reactions under conditions they devise. (SK)
Descriptors: Chemistry, College Science, Course Descriptions, Higher Education
Peer reviewedPopp, Carl J. – Journal of Chemical Education, 1983
Selected aspects of a self-paced chemistry program are described. These include student selection, supervision requirements, and grading indicating that student selection is the key to a successful program. Also points out that quality/quantity of learning (determined by testing) is comparable to traditional lecture courses. (Author/JN)
Descriptors: Admission Criteria, Chemistry, College Science, Course Descriptions
Peer reviewedWiggins, Gary – Journal of Chemical Education, 1982
Describes three chemical information science courses offered by Indiana University (IU) Department of Chemistry. Also describes goals and operation of IU's Chemical Information Center, created to implement online searching of chemical databases and to assume operation of the IU dissemination of information services based on Chemical Abstracts…
Descriptors: Chemistry, College Science, Course Descriptions, Higher Education
Peer reviewedChemical and Engineering News, 1982
Describes a laboratory course, modeled on the approach developed by Robert Karplus for physics laboratory courses, emphasizing discovery learning. (SK)
Descriptors: Chemistry, College Science, Course Descriptions, Discovery Learning
Peer reviewedAriel, Magda; And Others – European Journal of Science Education, 1982
A two-semester basic chemistry course for nonchemistry engineering majors is described. First semester provides introductory chemistry for freshmen while second semester is "customer-oriented," based on a departmental choice of three out of six independent modules. For example, aeronautical engineering "customers" would select…
Descriptors: Chemistry, College Science, Course Descriptions, Engineering Education
Peer reviewedMiller, Clarence A. – Chemical Engineering Education, 1981
Discusses a one-semester course on recovering fossil fuels and minerals from underground formations. Includes course outline and information of its major divisions: (1) Geological Background; (2) Flow, Transport, and Interfacial Phenomena in Porous Media; and (3) Description of Underground Processes. (SK)
Descriptors: Chemistry, College Science, Course Content, Course Descriptions
Peer reviewedMarble, Richard A. – Physics Teacher, 1980
A physics teacher describes the learning environment of an independent day school in Oklahoma. Emphasis is directed towards the science and mathematics curriculum and the teacher's responsibilities in teaching and advising the young people. (SA)
Descriptors: Chemistry, Course Descriptions, Educational Environment, Mathematics Education
Peer reviewedDarlington, C. LeRoy – Journal of Chemical Education, 1981
Describes units included in a high school chemistry course for mathematics-shy students. Includes rationale for developing and maintaining the course. (SK)
Descriptors: Chemistry, Course Content, Course Descriptions, Course Objectives
Peer reviewedMoss, S.; Theobald, D. – Journal of Biological Education, 1979
Describes an approach to ecology teaching based on a workbook of structured integrated exercises and in-service courses for teachers. (Author/MA)
Descriptors: Biology, Course Descriptions, Ecology, Environmental Education


