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Elizabeth Stippell; Alexey V. Akimov; Oleg V. Prezhdo – Journal of Chemical Education, 2023
We report an educational tool for the upper level undergraduate quantum chemistry or quantum physics course that uses a symbolic approach via the PySyComp Python library. The tool covers both time-independent and time-dependent quantum chemistry, with the latter rarely considered in the foundations course due to topic complexity. We use quantized…
Descriptors: Undergraduate Students, College Science, Quantum Mechanics, Chemistry
Tu, Tao; Li, Chuan-Feng; Xu, Jin-Shi; Guo, Guang-Can – Physical Review Physics Education Research, 2023
In the context of quantum mechanics, students are often asked to use delta functions to solve problems. Here, we investigate three typical problem-solving processes using delta functions: a delta function potential well problem, a position space delta function problem, and a momentum space delta function problem. We studied students'solutions in…
Descriptors: Quantum Mechanics, Science Instruction, Problem Solving, Scientific Concepts
Corsiglia, Giaco; Schermerhorn, Benjamin P.; Sadaghiani, Homeyra; Villaseñor, Armando; Pollock, Steven; Passante, Gina – Physical Review Physics Education Research, 2022
A common task when problem solving in quantum mechanics, including in a spins-first curriculum, involves changing the basis of a given state. Our research in undergraduate quantum mechanics courses at three institutions explores student thinking about basis, basis expansion coefficients, and change of basis in the context of spin-½ systems. Our…
Descriptors: Physics, Science Instruction, Teaching Methods, Student Attitudes
Avraham Merzel; Efraim Yehuda Weissman; Nadav Katz; Igal Galili – Physical Review Physics Education Research, 2024
Teaching quantum physics (QP) to high school (HS) students is gaining momentum, necessitating the exploration of various effective methods. Specifically, the research on quantitative teaching methods is still in its early stages. Understanding the power of Dirac notation (DN) in teaching is crucial for grasping the complexities of QP, as it…
Descriptors: High School Students, Secondary School Science, Science Education, Physics
Erol, Mustafa; Oflaz, Özlem – Electronic Journal for Research in Science & Mathematics Education, 2020
In contrast to the determinist and non-discrete structure of classical physical concepts, the probabilistic and discrete/quantised structure of quantum physics embeds certain difficulties in deeper understanding and teaching activities. In this study, in order to understand and to teach the concept of quantization more effectively, a clear analogy…
Descriptors: Teaching Methods, Science Instruction, Quantum Mechanics, Mechanics (Physics)
Tu, Tao; Li, Chuan-Feng; Xu, Jin-Shi; Guo, Guang-Can – Physical Review Physics Education Research, 2021
In quantum mechanics courses, students are often asked to solve bound and scattering state problems. The use of an ordinary differential equation is a standard technique to solve these questions. Here, we investigated students' problem-solving processes for two typical problems of a single particle in one spatial dimension: a bound state problem…
Descriptors: Quantum Mechanics, Science Instruction, Problem Solving, Barriers
Agcali, Rahime Yagmur; Atik, Bahar; Bilgen, Ecenaz; Karli, Berfu; Danisman, Mehmet Fatih – Journal of Chemical Education, 2019
Understanding the concepts of quantum mechanics has always been a challenge for undergraduate students. This is especially so because many of the introductory (analytically solvable) systems and problems discussed in textbooks are seemingly abstract. Using approximate experimental demonstrations of such systems and problems have been shown to be…
Descriptors: Science Instruction, Undergraduate Students, College Science, Quantum Mechanics
Singh, Satya Pal – European Journal of Physics Education, 2019
Quantum mechanics has completed century since its genesis. Quantum mechanics is taught at various levels-starting from school and colleges to universities. Regression methods are introduced at under graduate and post graduate levels to solve Schrodinger equation for finding solutions of various trivial and non-trivial physical problems. The common…
Descriptors: Problem Solving, Quantum Mechanics, Mechanics (Physics), Science Instruction
Muniz, Marc N.; Crickmore, Cassidy; Kirsch, Joshua; Beck, Jordan P. – Chemistry Education Research and Practice, 2018
Chemical processes can be fully explained only by employing quantum mechanical models. These models are abstract and require navigation of a variety of cognitively taxing representations. Published research about how students use quantum mechanical models at the upper-division level is sparse. Through a mixed-methods study involving think-aloud…
Descriptors: Advanced Courses, Chemistry, Science Instruction, Correlation
Stapleton, Andrew J. – Cultural Studies of Science Education, 2018
In response to the authors, I demonstrate how threshold concepts offer a means to both contextualise teaching and learning of quantum physics and help transform students into the culture of physics, and as a way to identify particularly troublesome concepts within quantum physics. By drawing parallels from my own doctoral research in another area…
Descriptors: Quantum Mechanics, Physics, Science Education, Imagery
Marshman, Emily; Sayer, Ryan; Henderson, Charles; Singh, Chandralekha – Physical Review Physics Education Research, 2017
At large research universities, physics graduate teaching assistants (TAs) are often responsible for grading in courses at all levels. However, few studies have focused on TAs' grading practices in introductory and advanced physics courses. This study was designed to investigate whether physics graduate TAs grade students in introductory physics…
Descriptors: Teaching Assistants, Grading, Introductory Courses, Physics
Singh, Chandralekha; Marshman, Emily – Physical Review Special Topics - Physics Education Research, 2015
Learning advanced physics, in general, is challenging not only due to the increased mathematical sophistication but also because one must continue to build on all of the prior knowledge acquired at the introductory and intermediate levels. In addition, learning quantum mechanics can be especially challenging because the paradigms of classical…
Descriptors: Mechanics (Physics), Quantum Mechanics, Science Instruction, Logical Thinking
Marshman, Emily; Singh, Chandralekha – Physical Review Physics Education Research, 2017
Single photon experiments involving a Mach-Zehnder interferometer can illustrate the fundamental principles of quantum mechanics, e.g., the wave-particle duality of a single photon, single photon interference, and the probabilistic nature of quantum measurement involving single photons. These experiments explicitly make the connection between the…
Descriptors: Quantum Mechanics, Difficulty Level, Problem Solving, Action Research
Salah, Hazzi; Dumon, Alain – Chemistry Education Research and Practice, 2014
The concept of covalent bonding is characterized by an interconnected knowledge framework based on Lewis and quantum models of atoms and molecules. Several research studies have shown that students at all levels of chemistry learning find the quantum model to be one of the most difficult subjects to understand. We have tried in this paper to…
Descriptors: Foreign Countries, Molecular Structure, Science Instruction, Questionnaires
Wilcox, Bethany R.; Pollock, Steven J. – Physical Review Special Topics - Physics Education Research, 2015
The Dirac delta function is a standard mathematical tool that appears repeatedly in the undergraduate physics curriculum in multiple topical areas including electrostatics, and quantum mechanics. While Dirac delta functions are often introduced in order to simplify a problem mathematically, students still struggle to manipulate and interpret them.…
Descriptors: Science Instruction, Undergraduate Study, College Science, Physics
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