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Odom, Arthur L.; Bell, Clare V. – Science Teacher, 2019
In 1827, Robert Brown noticed pollen suspended in water bouncing around erratically. It wasn't until 1905 that Albert Einstein provided an acceptable explanation of the phenomenon (Kac 1947): Brownian motion is the random movement of particles (e.g., pollen) in a fluid (liquid or gas) as a result of collisions with atoms and molecules. Movement of…
Descriptors: Science Instruction, Molecular Structure, Motion, Scientific Concepts
Stoeckel, Marta R. – Science Teacher, 2018
Along-standing energy lab involves dropping bouncy balls and measuring their rebound heights on successive bounces. The lab demonstrates a situation in which the mechanical energy of a system is not conserved. Although students enjoyed the lab, the author wanted to deepen their thinking about energy, including the connections to motion, with a new…
Descriptors: Energy, Science Instruction, Scientific Concepts, Misconceptions
Pleasants, Jacob – Science Teacher, 2018
In classroom science laboratories, unlike a real science laboratory, the teacher can guide students away from potential dead ends and toward data that are most likely to result in accurate conclusions. Sometimes, though, allowing students to pursue dead ends and to collect "bad" data can provide especially rich learning opportunities.…
Descriptors: Science Instruction, Science Experiments, Science Laboratories, Laboratory Experiments
Vieyra, Rebecca; Vieyra, Chrystian; Jeanjacquot, Philippe; Marti, Arturo; Monteiro, Martín – Science Teacher, 2015
Mobile devices have become a popular form of education technology, but little attention has been paid to the use of their sensors for data collection and analysis. This article describes some of the benefits of using mobile devices this way and presents five challenges to help students overcome common misconceptions about force and motion. The…
Descriptors: Handheld Devices, Telecommunications, Science Laboratories, Educational Technology