Merging Design Thinking into Translational Research in a Biomedical Engineering Laboratory (DT-TRBEL) Course
Abstract
:1. Introduction
1.1. Practicing Translational Research (TR) via Design-Thinking (DT)
1.2. Student Motivation and Creativity
1.3. Gender Effects in Engineering Education
- Do relationships exist among variables of sense of creativity, motivation, and students learning performances of Material Science and DT-TRBEL?
- Does the DT-TRBEL (Lab) class have an effect on students’ learning performance, sense of creativity, and motivation?
- Does gender have an effect on the current DT-TRBEL class?
2. Materials and Methods
2.1. Integration of Design Thinking into the Translational Research in Biomedical Engineering Laboratory (DT-TRBEL) Course
2.2. Participants
2.3. Procedures
2.3.1. Motivation Survey (ARCS)
2.3.2. Short Scale for Creative Self (SSCS)
3. Results
- RQ 1. Do relationships exist among variables of sense of creativity, motivation, and students learning performances of Material Science and DT-TRBEL?
- RQ 2. Does the DT-TRBEL (Lab) class have an effect on students’ learning performance, sense of creativity, and motivation?
- RQ 3. Does gender have an effect on the current DT-TRBEL class?
4. Discussions
4.1. Effects regarding Design Thinking Integration
4.2. Gender Effects
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Weeks | Translational Research | Course Objective and Content | Technology Support | Design Thinking |
---|---|---|---|---|
1 to 2 | Defines the underlying mechanism of a health problem or disease | Course introduction, grouping, clinical problem discussion, basic laboratory equipment training | Lectures | Empathize |
3 | Analysis of fundamental research results to determine clinical effects. And propose new diagnoses, treatments, or new prevention methods | Dental materials preparation, characterization, surface morphology, surface functional group, materials’ setting time, mechanical strength, and materials’ degradation rate analysis | XRD, SEM, FTIR, viscometer, universal testing machine, UV-Vis, etc. | Define |
4 | Analysis of the ideal clinical conditions for this treatment | Ideate | ||
5 to 8 | Analysis of the clinical feasibility of the treatment method | Prototype | ||
9 | Mid-term examination | |||
10 to 18 | The final analysis of the impact of this inspection and treatment method on human health | Biocompatibility analysis | Cell culture incubator, biosafety cabinets, cells, culture medium, etc. | Test |
Process | Method |
---|---|
Production of HAp | Wet chemical method |
Chemical formula of HAp | Ca10(PO4)6(OH)2 |
Reactants | 0.3 M H3PO4 and 0.5 M Ca(OH)2 with a Ca/P ratio of 1.67 |
Temperature and time | 80 °C for 2 h |
Maintained pH | 8 |
Analysis methods | X-ray diffraction (XRD), scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), ultraviolet-visible spectroscopy (UV-Vis), viscometer, and universal testing machine |
Properties analyzed | Crystal structure, shape, functional groups, concentration, stability, and setting time of HAp materials |
Biocompatibility test | In vitro using 3-(4,5-Dimethylthiazol-2-yl)-2,5-Diphenyltetrazolium Bromide (MTT) assay in accordance with ISO-10993 |
1 | 2 | 3 | 4 | 5 | 6 | |
---|---|---|---|---|---|---|
| 1 | - | - | - | - | - |
| 0.637 ** | 1 | - | - | - | - |
| −0.065 | −0.012 | 1 | - | - | - |
| 0.047 | 0.120 | 0.728 ** | 1 | - | - |
| 0.416 * | 0.385 | −0.389 | −0.352 | 1 | - |
| 0.371 | 0.444 * | −0.039 | 0.078 | 0.386 | 1 |
Item | Mean | SD | t-Test |
---|---|---|---|
Motivation-pre | 32.61 | 4.06 | 0.25 |
Motivation-post | 32.43 | 4.47 | |
A-pre | 31.58 | 4.61 | 0.87 |
A-post | 30.88 | 5.03 | |
R-pre | 34.96 | 3.94 | 2.18 * |
R-post | 33.13 | 5.03 | |
C-pre | 29.63 | 3.56 | −1.10 |
C-post | 30.42 | 4.09 | |
S-pre | 34.29 | 5.20 | −0.89 |
S-post | 35.29 | 5.13 | |
MaterialSci | 75.58 | 13.54 | −3.70 ** |
LabFinalScore | 83.36 | 5.36 |
Item | t | df | Sig. (2-Tailed) |
---|---|---|---|
DT-TRBEL | −1.53 | 22 | 0.14 |
Post-SSCS | 1.60 | 22 | 0.12 |
Post-Motivation | 2.23 | 22 | 0.03 * |
Post-A | 1.98 | 22 | 0.06 |
Post-R | 2.48 | 22 | 0.02 * |
Post-C | 1.86 | 22 | 0.08 |
Post-S | 1.84 | 22 | 0.08 |
Gender | N | Mean | Std. Deviation | |
---|---|---|---|---|
Motivation-re | Male | 15 | 32.58 | 4.43 |
Female | 9 | 32.67 | 3.61 | |
Motivation-post | Male | 15 | 33.23 | 4.60 |
Female | 9 | 31.08 | 4.16 | |
SSCS-pre | Male | 15 | 43.60 | 7.93 |
Female | 9 | 38.89 | 8.27 | |
SSCS-post | Male | 15 | 42.27 | 7.04 |
Female | 9 | 41.56 | 12.06 | |
LabFinalScore | Male | 15 | 81.63 | 5.64 |
Female | 9 | 86.24 | 3.48 | |
MaterialSci | Male | 15 | 70.80 | 13.29 |
Female | 9 | 83.56 | 10.15 |
t | df | Sig. (2-Tailed) | |
---|---|---|---|
Pre-Motivation | −0.05 | 22 | 0.96 |
Post-Motivation | 1.15 | 22 | 0.26 |
Pre-SSCS | 1.39 | 22 | 0.18 |
Post-SSCS | 0.18 | 22 | 0.86 |
ScoreDT-TRBEL | −2.20 | 22 | 0.03 * |
ScoreMS | −2.47 | 22 | 0.02 * |
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Chen, M.-H.; Cheng, S.-P.; Wu, L.Y. Merging Design Thinking into Translational Research in a Biomedical Engineering Laboratory (DT-TRBEL) Course. Sustainability 2023, 15, 13688. https://doi.org/10.3390/su151813688
Chen M-H, Cheng S-P, Wu LY. Merging Design Thinking into Translational Research in a Biomedical Engineering Laboratory (DT-TRBEL) Course. Sustainability. 2023; 15(18):13688. https://doi.org/10.3390/su151813688
Chicago/Turabian StyleChen, Min-Hua, Shih-Ping Cheng, and Leon Yufeng Wu. 2023. "Merging Design Thinking into Translational Research in a Biomedical Engineering Laboratory (DT-TRBEL) Course" Sustainability 15, no. 18: 13688. https://doi.org/10.3390/su151813688
APA StyleChen, M.-H., Cheng, S.-P., & Wu, L. Y. (2023). Merging Design Thinking into Translational Research in a Biomedical Engineering Laboratory (DT-TRBEL) Course. Sustainability, 15(18), 13688. https://doi.org/10.3390/su151813688