| Journal Articles: 33 results |
|
|
Configurational Entropy Revisited Frank L. Lambert Positional entropy should be eliminated from general chemistry instruction and replaced by emphasis on the motional energy of molecules as enabling entropy change. Lambert, Frank L. J. Chem. Educ. 2007, 84, 1548.
Statistical Mechanics |
Thermodynamics
|
What Are Students Thinking When They Pick Their Answer? Michael J. Sanger and Amy J. Phelps 330 students were asked to answer a multiple-choice question concerning gas properties at the microscopic level and explain their reasoning. Of those who selected the correct answer, 80% provided explanations consistent with the scientifically accepted answer, while 90% of the students who picked an incorrect choice provided explanations with at least one misconception. Sanger, Michael J.; Phelps, Amy J. J. Chem. Educ. 2007, 84, 870.
Gases |
Kinetic-Molecular Theory |
Phases / Phase Transitions / Diagrams |
Qualitative Analysis
|
Give Them Money: The Boltzmann Game, a Classroom or Laboratory Activity Modeling Entropy Changes and the Distribution of Energy in Chemical Systems Robert M. Hanson and Bridget Michalek Described here is a short, simple activity that can be used in any high school or college chemistry classroom or lab to explore the way energy is distributed in real chemical systems and as an entry into discussions of the probabilistic nature of entropy. Hanson, Robert M.; Michalek, Bridget. J. Chem. Educ. 2006, 83, 581.
Equilibrium |
Statistical Mechanics |
Thermodynamics
|
Teaching Entropy Analysis in the First-Year High School Course and Beyond Thomas H. Bindel A 16-day teaching unit is presented that develops chemical thermodynamics at the introductory high school level and beyond from exclusively an entropy viewpoint referred to as entropy analysis. Many concepts are presented, such as: entropy, spontaneity, the second law of thermodynamics, qualitative and quantitative entropy analysis, extent of reaction, thermodynamic equilibrium, coupled equilibria, and Gibbs free energy. Entropy is presented in a nontraditional way, using energy dispersal. Bindel, Thomas H. J. Chem. Educ. 2004, 81, 1585.
Thermodynamics
|
Why Does a Helium-Filled Balloon "Rise"? Richard W. Ramette The article is a lighthearted, conversational exploration of the microscopic basis for Archimedes principle. The principle is discussed in terms of molecular collisions and density gradients in a gravitational field. Ramette, Richard W. J. Chem. Educ. 2003, 80, 1149.
Atmospheric Chemistry |
Gases |
Kinetic-Molecular Theory |
Physical Properties
|
Experiencing and Visualizing the First Law of Thermodynamics: An In-Class Workshop Pamela Mills, William V. Sweeney, and Waldemar Cieniewicz A handheld device that illustrates the concepts of heat, work, energy transfer, and thermodynamic path. Mills, Pamela; Sweeney, William V.; Cieniewicz, Waldemar. J. Chem. Educ. 2001, 78, 1360.
Gases |
Thermodynamics |
Laboratory Equipment / Apparatus |
Laboratory Computing / Interfacing
|
Using a Computer Animation to Improve Students' Conceptual Understanding of a Can-Crushing Demonstration Michael J. Sanger, Amy J. Phelps, and Jason Fienhold This paper reports some of the misconceptions that were identified from these students' explanations. As a result of these misconceptions, a computer animation depicting the chemical processes occurring in the can-crushing demonstration was created. Sanger, Michael J.; Phelps, Amy J.; Fienhold, Jason. J. Chem. Educ. 2000, 77, 1517.
Kinetic-Molecular Theory |
Gases
|
The "Collisions Cube" Molecular Dynamics Simulator John J. Nash and Paul E. Smith Design and applications for a large, three-dimensional atomic/molecular motion/dynamics simulator using forced-air blowers and ping-pong balls. Nash, John J.; Smith, Paul E. J. Chem. Educ. 1995, 72, 805.
Laboratory Equipment / Apparatus |
Kinetic-Molecular Theory
|
Probing Student Misconceptions in Thermodynamics with In-Class Writing Beall, Herbert Examples of the use of in-class writing assignments in the teaching of thermodynamics in general chemistry are presented. Beall, Herbert J. Chem. Educ. 1994, 71, 1056.
Thermodynamics
|
Dynamic Computer Simulation of the Motion of Gas Molecules Turner, Dean E. 165. Bits and pieces, 52. A program that simulates the motion of gas particles and illustrates the effects of temperature, mass, and volume. Turner, Dean E. J. Chem. Educ. 1994, 71, 784.
Kinetic-Molecular Theory |
Gases
|
Cryophori, Hot Molecules, and Frozen Nitrogen Hunter, Paul W. W.; Knoespel, Sheldon L. Freezing water and nitrogen at low atmospheric pressure. Hunter, Paul W. W.; Knoespel, Sheldon L. J. Chem. Educ. 1994, 71, 67.
Thermodynamics |
Phases / Phase Transitions / Diagrams
|
Fast molecular motion Knox, Kerro A demonstration that shows that molecules do indeed move very fast and over long distances in a short time when nothing is in the way. Knox, Kerro J. Chem. Educ. 1992, 69, 574.
Gases |
Kinetic-Molecular Theory
|
The kinetic molecular theory and the weighing of gas samples Brenner, Henry C. How is it possible to weigh gas samples since the molecules are constantly moving around and not always in contact with the floor of the container? Brenner, Henry C. J. Chem. Educ. 1992, 69, 558.
Kinetic-Molecular Theory |
Gases |
Physical Properties
|
Applications of Maxwell-Boltzmann distribution diagrams. Peckham, Gavin D.; McNaught, Ian J. Although Maxwell-Boltzmann distribution diagrams are intuitively appealing, care must be taken to avoid several common errors and misconceptions. Peckham, Gavin D.; McNaught, Ian J. J. Chem. Educ. 1992, 69, 554.
Thermodynamics |
Rate Law |
Catalysis
|
Does a one-molecule gas obey Boyle's law? Rhodes, Gail Because the kinetic molecular theory provides a plausible explanation for the lawful behavior of gases, it should be treated in enough depth to show students that the theory accounts for all of the important aspects of ideal gas behavior. Rhodes, Gail J. Chem. Educ. 1992, 69, 16.
Gases |
Kinetic-Molecular Theory
|
The BedBugs game: A molecular motion simulator Hogue, Lynn; Williams, John P. Using the electronic game BedBugs to simulate molecular motion and illustrate diffusion, effusion, and Graham's law. Hogue, Lynn; Williams, John P. J. Chem. Educ. 1990, 67, 585.
Kinetic-Molecular Theory |
Transport Properties
|
Energy interconversions in photosynthesis Bering, Charles L. Reviews the energetics of the light reactions of photosynthesis. Bering, Charles L. J. Chem. Educ. 1985, 62, 659.
Photosynthesis |
Photochemistry |
Thermodynamics |
Bioenergetics
|
A new road to reactions. Part 2 de Vos, Wobbe; Verdonk, Adri H. Helping introductory students understand the nature of chemical reactions. de Vos, Wobbe; Verdonk, Adri H. J. Chem. Educ. 1985, 62, 648.
Reactions |
Aqueous Solution Chemistry |
Precipitation / Solubility |
Kinetic-Molecular Theory
|
A gas kinetic explanation of simple thermodynamic processes Waite, Boyd A. Proposes a simplified, semi-quantitative description of heat, work, and internal energy from the viewpoint of gas kinetic theory; both heat and work should not be considered as forms of energy but rather as different mechanisms by which internal energy is transferred from system to surroundings. Waite, Boyd A. J. Chem. Educ. 1985, 62, 224.
Gases |
Kinetic-Molecular Theory |
Thermodynamics
|
Further reflections on heat Hornack, Frederick M. Confusion regarding the nature of heat and thermodynamics. Hornack, Frederick M. J. Chem. Educ. 1984, 61, 869.
Kinetic-Molecular Theory |
Thermodynamics |
Calorimetry / Thermochemistry
|
Cinema, flirts, snakes, and gases Hartwig, Dcio R.; Filho, Romeu C. Rocha Explaining the kinetic behavior of gases through several analogies. Hartwig, Dcio R.; Filho, Romeu C. Rocha J. Chem. Educ. 1982, 59, 295.
Kinetic-Molecular Theory |
Gases
|
Participatory lecture demonstrations Battino, Rubin Examples of participatory lecture demonstrations in chromatography, chemical kinetics, balancing equations, the gas laws, the kinetic-molecular theory, Henry's law, electronic energy levels in atoms, translational, vibrational, and rotational energies of molecules, and organic chemistry. Battino, Rubin J. Chem. Educ. 1979, 56, 39.
Chromatography |
Kinetic-Molecular Theory |
Kinetics |
Stoichiometry |
Gases |
Atomic Properties / Structure |
Molecular Properties / Structure
|
The first law. For scientists, citizens, poets and philosophers Bent, Henry A. Practical experiences and phenomena that serve to illustrate the first law of thermodynamics. Bent, Henry A. J. Chem. Educ. 1973, 50, 323.
Thermodynamics
|
Questions [and] Answers Campbell, J. A. Seven questions requiring the application of basic principles of chemistry. Campbell, J. A. J. Chem. Educ. 1972, 49, 769.
Enrichment / Review Materials |
Applications of Chemistry |
Thermodynamics |
Gases |
Astrochemistry
|
Teaching kinetic molecular theory by the factor change method Koons, Lawrence F. Develops the "factor change method" for teaching kinetic molecular theory and presents examples of its application. Koons, Lawrence F. J. Chem. Educ. 1967, 44, 288.
Kinetic-Molecular Theory |
Gases
|
Hard sphere simulation of statistical mechanical behavior of molecules Plumb, Robert C. Describes the design and use of a demonstration device to illustrate the kinetic behavior of gases, liquids, and solids. Plumb, Robert C. J. Chem. Educ. 1966, 43, 648.
Statistical Mechanics |
Gases |
Liquids |
Solids |
Kinetic-Molecular Theory |
Equilibrium |
Phases / Phase Transitions / Diagrams
|
Maximum work revisited (Letters) Bauman, Robert Comments on an earlier "Textbook Error" article that considers at length errors in the calculation of work done in compression or expansion of an ideal gas. Bauman, Robert J. Chem. Educ. 1964, 41, 676.
Thermodynamics |
Gases
|
Maximum work revisited (Letters) Kokes, Richard J. Comments on an earlier "Textbook Error" article that considers at length errors in the calculation of work done in compression or expansion of an ideal gas. Kokes, Richard J. J. Chem. Educ. 1964, 41, 675.
Thermodynamics |
Gases
|
Maximum work revisited (Letters) Bauman, Robert Comments on an earlier "Textbook Error" article that considers at length errors in the calculation of work done in compression or expansion of an ideal gas. Bauman, Robert J. Chem. Educ. 1964, 41, 675.
Thermodynamics |
Gases
|
Teaching the entropy concept Plumb, Robert C. Presents a macroscopic lecture demonstration illustrating both potential energy and entropy driving forces and showing their interrelationship. Plumb, Robert C. J. Chem. Educ. 1964, 41, 254.
Thermodynamics |
Statistical Mechanics
|
Work of compressing an ideal gas Bauman, Robert P. In formulating examples of compression problems there should be an explicit statement that the process is reversible, or at least slow. Bauman, Robert P. J. Chem. Educ. 1964, 41, 102.
Thermodynamics |
Gases
|
Some aspects of chemical kinetics for elementary chemistry Benson, Sidney W. The author suggests greater efforts to address the issue of kinetics and reaction mechanisms in introductory chemistry. Benson, Sidney W. J. Chem. Educ. 1962, 39, 321.
Kinetic-Molecular Theory |
Gases |
Kinetics |
Mechanisms of Reactions |
Descriptive Chemistry
|
The kinetic structure of gases Slabaugh, W. H. Describes a model that illustrates the kinetic properties of gases and ii use to demonstrate the effect of temperature changes on the motion of gas particles. Slabaugh, W. H. J. Chem. Educ. 1953, 30, 68.
Gases |
Kinetic-Molecular Theory |
Phases / Phase Transitions / Diagrams
|
|