Descriptor
| Atomic Structure | 40 |
| Science Experiments | 40 |
| Chemistry | 27 |
| Science Education | 25 |
| Higher Education | 21 |
| Science Instruction | 20 |
| College Science | 19 |
| Science Activities | 13 |
| Physics | 12 |
| Secondary School Science | 12 |
| Molecular Structure | 11 |
| More ▼ | |
Source
Author
Publication Type
Education Level
Audience
| Practitioners | 15 |
| Teachers | 11 |
| Students | 6 |
Laws, Policies, & Programs
Assessments and Surveys
What Works Clearinghouse Rating
Peer reviewedLehman, Thomas A. – Journal of Chemical Education, 1972
Descriptors: Atomic Structure, Chemistry, College Science, Instructional Materials
Peer reviewedCiparick, Joseph D. – Journal of Chemical Education, 1988
Demonstrates a variety of electrical phenomena to help explain atomic structure. Topics include: establishing electrical properties, electrochemistry, and electrostatic charges. Recommends demonstration equipment needed and an explanation of each. (MVL)
Descriptors: Atomic Structure, Atomic Theory, Chemistry, Instruction
Peer reviewedLoveland, Walter – American Journal of Physics, 1971
Describes an undergraduate laboratory experiment on the statistical theory of nuclear reactions. The experiment involves measuring the relative cross sections for formation of a nucleus in its meta stable excited state and its ground state by applying gamma-ray spectroscopy to an irradiated sample. Involves 3-4 hours of laboratory time plus…
Descriptors: Atomic Structure, College Science, Instruction, Nuclear Physics
Peer reviewedMarshak, Marvin L. – Physics Teacher, 1984
Provides the rationale for and examples of experiments designed to test the stability of protons and bound neutrons. Also considers the unification question, cosmological implications, current and future detectors, and current status of knowledge on proton decay. (JN)
Descriptors: Atomic Structure, College Science, Higher Education, Matter
Peer reviewedGillespie, Ronald J.; And Others – Journal of Chemical Education, 1996
Presents suggestions for alternative presentations of some of the material that usually forms part of the introductory chemistry course. Emphasizes development of concepts from experimental results. Discusses electronic configurations and quantum numbers, experimental evidence for electron configurations, deducing the shell model from the periodic…
Descriptors: Atomic Structure, Chemistry, Higher Education, Inquiry
Peer reviewedSchawlow, Arthur L. – Science, 1978
Surveys new laser techniques and a variety of spectroscopic experiments that can be used to detect, measure and study very small numbers of atoms on molecules. The range of applicability of these techniques is also included. (HM)
Descriptors: Atomic Structure, Lasers, Optics, Physics
Peer reviewedJohnson, Kristin A.; Schreiner, Rodney – Journal of Chemical Education, 2001
Flame tests are used for demonstration of atomic structure. Describes a demonstration that uses spray bottles filled with methanol and a variety of salts to produce a brilliantly colored flame. (Contains 11 references.) (ASK)
Descriptors: Atomic Structure, Chemistry, College Science, Demonstrations (Science)
Peer reviewedBolton, Ed; Richter, Mark M. – Journal of Chemical Education, 2001
Electrochemiluminescence involves the production of light near an electrode surface by generating species that can undergo highly energetic electron transfer reactions. Presents a demonstration that uses Ru(bpy)32+ (bpy = 2,2'-bipyridine) as the light-emitting molecule and tri-n-propylamine (C9H21N) as a coreactant. (Contains 25 references.) (ASK)
Descriptors: Atomic Structure, Chemistry, College Science, Demonstrations (Science)
Peterson, I. – Science News, 1989
Describes the theory and application of an atomic fountain which pushes the atoms by laser pulses. Discusses the applications in measuring atomic properties and in building an atomic clock. (YP)
Descriptors: Atomic Structure, Higher Education, Lasers, Measurement
Peer reviewedGillespie, Ronald J.; And Others – Journal of Chemical Education, 1996
Presents an alternative approach to bonding and geometry--the electron domain model--which avoids some of the problems with the conventional approach. Discusses difficulties with the orbital model at the introductory level, electron spin and the Pauli exclusion principle, electron pair domains, nonequivalent domains, multiple bonds, and origins…
Descriptors: Atomic Structure, Chemical Bonding, Chemistry, Higher Education
Peer reviewedSpencer, James; And Others – Journal of Chemical Education, 1996
Shows how ionization energies provide a convenient method for obtaining electronegativity values that is simpler than the conventional methods. Demonstrates how approximate atomic charges can be calculated for polar molecules and how this method of determining electronegativities may lead to deeper insights than are typically possible for the…
Descriptors: Atomic Structure, Chemical Bonding, Chemistry, Higher Education
Danner, Greg, Ed.; Fresen, Sue, Ed. – 1999
This teacher's guide and student guide unit contains supplemental readings, activities, and methods adapted for secondary students who have disabilities and other students with diverse learning needs. The materials are designed to help these students succeed in regular education content courses and include simplified text and smaller units of…
Descriptors: Academic Accommodations (Disabilities), Academic Standards, Atomic Structure, Biochemistry
Peer reviewedFassel, Velmer A. – Science, 1978
Describes the use of atomic spectra that are excited in inductively coupled plasmas for the simultaneous or sequential determination of the elements at all concentration levels. (HM)
Descriptors: Atomic Structure, Chemical Analysis, Chemistry, Metal Industry
Peer reviewedJones, Edwin R., Jr.; Childers, Richard L. – Physics Teacher, 1984
Discusses the development of the concept of atomicity and some of the many which can be used to establish its validity. Chemical evidence, evidence from crystals, Faraday's law of electrolysis, and Avogadro's number are among the areas which show how the concept originally developed from a purely philosophical idea. (JN)
Descriptors: Atomic Structure, Chemistry, College Science, Crystallography
Peer reviewedCraig, Norman C.; And Others – Journal of Chemical Education, 1971
Discusses student use of the computer with mathematical models and with laboratory simulations. Examples given. (DS)
Descriptors: Atomic Structure, Chemical Reactions, Chemistry, College Science


