Creating Meaningful Learning Opportunities through Incorporating Local Research into Chemistry Classroom Activities
Abstract
:1. Introduction
1.1. Meaningful Learning to Promote Knowledge Integration
1.2. Incorporating Research into the Curriculum Benefits Students
1.3. Atmospheric Chemistry Is a Timely Real-Life Context
2. Materials and Methods
2.1. Classroom Setting
2.2. Theoretical Framework
2.3. Activity Development
2.3.1. Activity Selection
2.3.2. Activity Design
2.4. Data Collection
2.5. Analysis
2.5.1. Activity Design Coding
2.5.2. Student Work Coding
3. Results and Discussion
3.1. Revised Activities Promoted Knowledge Integration
3.2. Students Make Connections When Prompted
3.3. Students Were Generally Dismissive of Contextual Information
3.4. Facilitation Did Not Promote Engagement
4. Limitations
5. Implications for Research and Practice
5.1. Practice
5.2. Research
6. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Week | Topics Discussed | Research Alignment |
---|---|---|
Week 4 | Identifying elements/compounds, writing molecular formulas | Identifying compounds in particulate matter and quantifying their concentrations |
Week 5 | Writing chemical formulas, mass spectrum data, stoichiometry, empirical formulas to molecular formula | Determining concentrations of compounds in particulate matter and using mass spectrometry data to confirm the identity of compounds in particulate matter |
Week 6 | Calculating frequency and energy, emission, absorption, calculating photons | Using fluorescence spectrometry to identify particle types in pollen |
Week 13 | Particulate representations of reactions, writing and balancing chemical reactions | Understanding chemical reactions that take place in seawater |
Initial Questions | Main Body Questions | Reflection | ‘Continuing On’ Questions | |
---|---|---|---|---|
Original Activities | Prompt review/summary of pre-class material | Guide students to achieve learning outcomes—data for analysis comes from a variety of sources/contexts | Guides students to reflect on proficiency in professional skills | Provides additional opportunities to master material, data for analysis comes from a variety of sources/contexts |
Revised Activities | Promote connections between pre-class material, content, and relevance to research/daily life | Guide students to achieve learning outcomes—data for analysis comes from research context | Guides students to reflect on proficiency in professional skills | Provides additional opportunities to master material, data for analysis situated in local research data and continues theme |
Activity | Original Week 4 | Revised Week 4 | Original Week 5 | Revised Week 5 | Original Week 6 | Revised Week 6 | Original Week 13 | Revised Week 13 |
---|---|---|---|---|---|---|---|---|
Retrieval | 3 (33%) | 2 (18%) | 0 (0%) | 0 (0%) | 4 (50%) | 6 (50%) | 2 (13%) | 1 (5%) |
Comprehension | 3 (33%) | 4 (36%) | 5 (100%) | 3 (30%) | 3 (38%) | 1 (8%) | 11 (73%) | 9 (47%) |
Analysis | 3 (33%) | 2 (18%) | 0 (0%) | 5 (50%) | 1 (13%) | 4 (33) | 2 (13%) | 6 (32%) |
Knowledge Utilization | 0 (0%) | 1 (9%) | 0 (0%) | 0 (0%) | 0 (0%) | 0 (0%) | 0 (0%) | 1 (5%) |
Metacognition | 0 (0%) | 2 (18%) | 0 (0%) | 2 (20%) | 0 (0%) | 1 (8%) | 0 (0%) | 2 (11%) |
Total Questions | 9 | 11 | 5 | 10 | 8 | 12 | 15 | 19 |
Activity | Original Week 4 | Revised Week 4 | Original Week 5 | Revised Week 5 | Original Week 6 | Revised Week 6 | Original Week 13 | Revised Week 13 |
---|---|---|---|---|---|---|---|---|
Retrieval | 7 (54%) | 3 (16%) | 0 (0%) | 1 (6%) | 5 (42%) | 6 (35%) | 3 (14%) | 2 (8%) |
Comprehension | 3 (23%) | 9 (47%) | 5 (63%) | 4 (24%) | 4 (33%) | 4 (24%) | 15 (71%) | 11 (42) |
Analysis | 3 (23%) | 4 (21%) | 3 (38%) | 9 (53%) | 3 (25%) | 6 (35%) | 3 (14%) | 10 (38%) |
Knowledge Utilization | 0 (0%) | 1 (5%) | 0 (0%) | 1 (6%) | 0 (0%) | 0 (0%) | 0 (0%) | 1 (4%) |
Metacognition | 0 (0%) | 2 (11%) | 0 (0%) | 2 (12%) | 0 (0%) | 1 (6%) | 0 (0%) | 2 (8%) |
Total Questions | 13 | 19 | 8 | 17 | 12 | 17 | 21 | 26 |
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States, N.; Stone, E.; Cole, R. Creating Meaningful Learning Opportunities through Incorporating Local Research into Chemistry Classroom Activities. Educ. Sci. 2023, 13, 192. https://doi.org/10.3390/educsci13020192
States N, Stone E, Cole R. Creating Meaningful Learning Opportunities through Incorporating Local Research into Chemistry Classroom Activities. Education Sciences. 2023; 13(2):192. https://doi.org/10.3390/educsci13020192
Chicago/Turabian StyleStates, Nicole, Elizabeth Stone, and Renee Cole. 2023. "Creating Meaningful Learning Opportunities through Incorporating Local Research into Chemistry Classroom Activities" Education Sciences 13, no. 2: 192. https://doi.org/10.3390/educsci13020192
APA StyleStates, N., Stone, E., & Cole, R. (2023). Creating Meaningful Learning Opportunities through Incorporating Local Research into Chemistry Classroom Activities. Education Sciences, 13(2), 192. https://doi.org/10.3390/educsci13020192