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Peer reviewedFalk, Peter M. – Science Teacher, 1990
Described are several laboratory investigations that may be used to introduce biochemistry. Topics covered include carbohydrates, lipids, proteins, and metabolism. Reactions, stock solution formulas, and procedures are listed. Emphasized are individualizing work, designing alternative investigations, solving problems, and drawing conclusions. (KR)
Descriptors: Biochemistry, Demonstrations (Educational), Educational Experiments, Instructional Materials
Peer reviewedWruck, Betty; Reinstein, Jesse – Journal of Chemical Education, 1989
Provides a two hour experiment using direct gravimetric methods to determine solubility constants. Provides methodology and sample results. Discusses the effect of the common ion on the solubility constant. (MVL)
Descriptors: Chemical Analysis, Chemical Equilibrium, Chemical Reactions, Chemistry
Peer reviewedLeff, Harvey S. – Physics Teacher, 1990
Presents ideas on how common household light bulbs can be used to develop interest in learning physics. Focuses on supermarket data taking and analyses, filament temperatures, detective work with three-way bulbs, and lifetime statistics. (YP)
Descriptors: College Science, Electricity, Higher Education, Laboratory Experiments
Peer reviewedShaw, G. W.; And Others – School Science Review, 1989
Provides a reading list for A- and S-level biology. Contains several experiments and demonstrations with topics on: the intestine, bullock corneal cells, valences, the science of tea, automated hydrolysis, electronics characteristics, bromine diffusion, enthalpy of vaporization determination, thermometers, pendulums, hovercraft, Bernoulli fluid…
Descriptors: Astronomy, Biology, Chemical Nomenclature, Chemistry
Peer reviewedGlasson, George E. – Journal of Research in Science Teaching, 1989
Compares the relative effects of hands-on and teacher demonstration laboratory methods on declarative knowledge and procedural knowledge achievement. Reports that students in the hands-on class were better on the procedural knowledge test than students in the demonstration class. (Author/YP)
Descriptors: Demonstrations (Educational), Experiential Learning, Formal Operations, Grade 9
Peer reviewedRettich, Timothy R.; Battino, Rubin – Journal of Chemical Education, 1989
Presents a low cost system with easily replaced electrodes for use in general chemistry. Notes the accuracy and wide applicability permit easy use in physical or quantitative chemistry experiments. Provides schematic, theory, and helpful suggestions. (MVL)
Descriptors: Chemical Analysis, Chemistry, College Science, Inorganic Chemistry
Peer reviewedKirksey, H. Graden; Jones, Richard F. – Journal of Chemical Education, 1988
Shows how video recordings of the Brownian motion of tiny particles may be made. Describes a classroom demonstration and cites a reported experiment designed to show the random nature of Brownian motion. Suggests a student experiment to discover the distance a tiny particle travels as a function of time. (MVL)
Descriptors: Chemical Nomenclature, Chemistry, College Science, Inorganic Chemistry
Peer reviewedGuenther, W. B. – Journal of Chemical Education, 1988
Offers challenging work at a higher level of technique than most students meet in elementary laboratory work. Uses a combined weight and volumetric sequence not shown in textbooks. Notes modern rapid balances help lower evaporation loss during weighings. Discusses the balance, weights, and buoyancy considerations. (MVL)
Descriptors: Chemical Analysis, Chemical Reactions, Chemistry, College Science
Peer reviewedTodd, David; Pickering, Miles – Journal of Chemical Education, 1988
Notes that laboratory work should be more oriented towards puzzle solving rather than technique or illustration. Offers three organic laboratory puzzles which can be solved by melting point alone. Involves lab work at the 100-200-mg scale but still uses conventional glassware. (MVL)
Descriptors: Chemical Analysis, Chemical Reactions, Chemistry, College Science
Peer reviewedZanger, Murray; McKee, James R. – Journal of Chemical Education, 1988
Notes that this experiment takes safety and noncarcinogenic reactants into account. Demonstrates the use of diazonium salts for the replacement of an aromatic amine group by a phenolic hydroxyl. Involves two pleasant-smelling organic compounds, methyl anthranilate (grape) and methyl salicylate (oil of wintergreen). (MVL)
Descriptors: Chemical Analysis, Chemical Reactions, Chemistry, College Science
Peer reviewedHounshell, Paul B. – Science Teacher, 1989
Addresses whether or not science laboratory activities should become a thing of the past. Discusses the impact of the curriculum reforms of the 1960s and 1970s, physical restraints which cause teacher overload, rationale, and objectives of laboratory work. (RT)
Descriptors: Elementary School Science, Experiential Learning, Laboratories, Laboratory Experiments
Peer reviewedKruglak, Haym – Journal of Chemical Education, 1988
Reports an experimental procedure for studying Einstein's theory of Brownian movement using commercially available latex microspheres and a video camera. Describes how students can monitor sphere motions and determine Avogadro's number. Uses a black and white video camera, microscope, and TV. (ML)
Descriptors: Chemistry, College Science, Higher Education, Instructional Materials
Trent, Ann – Science Teacher, 2004
While babysitting or preparing home meals, young people (and adults too) sometimes overlook cleanliness procedures. One of the first employment opportunities for teenagers is often in a fast-food restaurant where the safe handling and proper cooking of foods is essential. To teach students about food safety practices, the U.S. Food and Drug…
Descriptors: Safety, Food Service, Food Standards, Science Education
Henry, Jim; Schaedel, Herbert M. – European Journal of Engineering Education, 2005
This paper describes the international co-operation experience in teaching control engineering with laboratories being conducted remotely by students via the Internet. This paper describes how the students ran the experiments and their personal experiences with the laboratory. A tool for process identification and controller tuning based on…
Descriptors: Engineering Education, International Cooperation, Laboratory Experiments, Science Experiments
Bonds, Wesley D., Sr.; Paolella, Mary Jane – American Biology Teacher, 2006
A single-semester elective combines Mendelian and molecular genetics in a problem-solving format. Students encounter a genetic disease scenario, construct a family pedigree, and try to confirm their medical diagnoses through laboratory experiences. Encouraged to generate ideas as they test their hypotheses, students realize the importance of data…
Descriptors: Teaching Methods, Learning Experience, Science Experiments, Science Laboratories

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