Publication Date
| In 2026 | 0 |
| Since 2025 | 0 |
| Since 2022 (last 5 years) | 2 |
| Since 2017 (last 10 years) | 7 |
| Since 2007 (last 20 years) | 9 |
Descriptor
| Chemistry | 10 |
| Problem Solving | 10 |
| Scientists | 10 |
| Science Instruction | 4 |
| Teaching Methods | 4 |
| Feedback (Response) | 3 |
| Foreign Countries | 3 |
| Instructional Design | 3 |
| Novices | 3 |
| STEM Education | 3 |
| Student Attitudes | 3 |
| More ▼ | |
Source
| Journal of Chemical Education | 4 |
| Chemistry Education Research… | 2 |
| Grantee Submission | 2 |
| EURASIA Journal of… | 1 |
| IEEE Transactions on Learning… | 1 |
Author
| Martina Angela Rau | 2 |
| Will Keesler | 2 |
| Ying Zhang | 2 |
| Button, John | 1 |
| Christopher, Casey R. | 1 |
| Davenport, Jodi | 1 |
| Giordano, Andrea N. | 1 |
| Grinbaum, Baruch | 1 |
| Hagit Levy | 1 |
| Hammer, David | 1 |
| Inbar Haimovich | 1 |
| More ▼ | |
Publication Type
| Journal Articles | 10 |
| Reports - Research | 6 |
| Reports - Descriptive | 3 |
| Opinion Papers | 1 |
Education Level
| Higher Education | 5 |
| Postsecondary Education | 5 |
| Secondary Education | 3 |
| High Schools | 1 |
Audience
Laws, Policies, & Programs
Assessments and Surveys
What Works Clearinghouse Rating
Button, John; Turner, Diren Pamuk; Hammer, David – Chemistry Education Research and Practice, 2023
The most obvious feature of expertise in chemistry is content knowledge, which defines the primary objectives of instruction. Research in chemistry education, and STEM education more broadly, has also devoted attention to students' developing scientific practices of reasoning, investigation, and learning. In this study, we set out to investigate…
Descriptors: Chemistry, Scientists, Abstract Reasoning, Epistemology
Inbar Haimovich; Malka Yayon; Vered Adler; Hagit Levy; Ron Blonder; Shelley Rap – Journal of Chemical Education, 2022
Chemical escape rooms (ChEsRms) are educational games in which students use their brain, chemical knowledge, intuition, and a bit of luck to solve a mystery. At the Weizmann Institute, we have developed ChEsRms that are implemented by teachers in their classes. Since the COVID-19 pandemic stopped all the educational activities that took place in…
Descriptors: Chemistry, Science Instruction, Teaching Methods, Science Activities
Martina Angela Rau; Will Keesler; Ying Zhang; Sally Wu – IEEE Transactions on Learning Technologies, 2020
Instruction in most STEM domains uses visuals to illustrate complex problems. During problem solving, students often manipulate and construct visuals. Traditionally, students draw visuals on paper and receive delayed feedback from an instructor. Educational technologies have the advantage that they can provide immediate feedback on students'…
Descriptors: Visualization, Educational Technology, Chemistry, STEM Education
McCormick, Sierra; Powers, Jacklyn; Davenport, Jodi; Yaron, David – Grantee Submission, 2021
In today's science classrooms, with the integration of the Next Generation Science Standards (NGSS), teachers are encouraged to guide instruction through real-world phenomena and promote critical thinking through inquiry-based learning that helps students learn the reasoning and practical skills of scientists, rather than just rote memorization of…
Descriptors: Science Instruction, Chemistry, Inquiry, Thinking Skills
Müller, Swantje; Pietzner, Verena Pietzner – EURASIA Journal of Mathematics, Science and Technology Education, 2020
Creativity is an important skill that will increasingly play a role in the future professional sphere, not only in arts and crafts professions but also in science, technology, engineering and mathematics (STEM) professions. It is precisely in this field that new methods and products have to be constantly developed. Therefore, the promotion of high…
Descriptors: Creative Thinking, Problem Solving, Competition, Science Activities
Martina Angela Rau; Will Keesler; Ying Zhang; Sally PW Wu – Grantee Submission, 2020
Instruction in most STEM domains uses visuals to illustrate complex problems. During problem solving, students often manipulate and construct visuals. Traditionally, students draw visuals on paper and receive delayed feedback from an instructor. Educational technologies have the advantage that they can provide immediate feedback on students'…
Descriptors: Visualization, Educational Technology, Chemistry, STEM Education
Giordano, Andrea N.; Christopher, Casey R. – Journal of Chemical Education, 2020
The Spring 2020 semester will be marked in our history as one of the most challenging semesters for higher education, although through the adversity, we were presented with opportunities for classroom innovation. A reflective account of the teaching insights gained from implementing a COVID-19 miniunit and utilizing remote oral examinations is…
Descriptors: Best Practices, Teaching Methods, COVID-19, Pandemics
Randles, C. A.; Overton, T. L. – Chemistry Education Research and Practice, 2015
This paper describes the results of a qualitative study using ground theory to investigate the different approaches used by chemists when answering open-ended problems. The study involved undergraduate, industrialist and academic participants who individually answered three open-ended problems using a think aloud protocol. Open-ended problems are…
Descriptors: Chemistry, Undergraduate Students, Problem Solving, Expertise
Windsor, Sarah A. M.; Rutter, Kerry; McKay, David B.; Meyers, Noel – Journal of Chemical Education, 2014
Future employers increasingly require work-ready graduates. Higher education institutions throughout the world have responded through reforming the curriculum of major strands of study to incorporate graduate attributes. In this case study, we explicitly taught graduate attributes, obliged students to practice their newfound capabilities, gave…
Descriptors: Chemistry, Science Instruction, Education Work Relationship, Job Skills
Peer reviewedGrinbaum, Baruch; Semiat, Raphael – Journal of Chemical Education, 1998
Cites the shortcomings of the traditional educational experiences of chemists. Focuses on their training in engineering and concludes that training is lacking in the areas of mass balances in flow processes, heat balances, reactors, separation processes, and scaleup. (DDR)
Descriptors: Chemical Engineering, Chemistry, College Curriculum, Curriculum Development

Direct link
