Effects of Digital Scaffolding on Students' Conceptual Knowledge of Radiation and Radioactivity.

Background: Teachers have their students practice physics problems both at home and in class. In class, the teacher provides students who need help with feedback. However, at home, students do not receive such feedback. A digital system that provides support outside the classroom could improve stude...

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Publicado en:Journal of Computer Assisted Learning Vol. 42; no. 3; pp. 1 - 20
Autores principales: Siersma, Pier T., Visscher, Adrie J., Pol, Henk J., Luyten, Hans, van Joolingen, Wouter R.
Formato: pictorial research tables/charts randomized controlled trial Journal Article
Publicado: Wiley-Blackwell Jun2026
Acceso en línea:Ver este registro en EBSCOhost
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      dt: Jun2026
      vid: 42
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      pub: Wiley-Blackwell
      place: Malden, Massachusetts
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        194050892
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        10.1002/jcal.70248
        194050892
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        atl: Effects of Digital Scaffolding on Students' Conceptual Knowledge of Radiation and Radioactivity.
      aug:
        au:
          Siersma, Pier T.
          Visscher, Adrie J.
          Pol, Henk J.
          Luyten, Hans
          van Joolingen, Wouter R.
        affil: Section Teacher Development ELAN, BMS, University of Twente, Enschede, the Netherlands
      sug:
        subj:
          Radioactivity Education
          Radiation Education
          Knowledge Evaluation
          Feedback
          Digital Technology
          Teaching Methods
          Outcomes of Education Evaluation
          Physics Education
          Students, High School
          Human
          Randomized Controlled Trials
          Double-Blind Studies
          Pretest-Posttest Design
          Netherlands
          Schools, Secondary
          Student Attitudes
          Learning Environment
          Funding Source
          T-Tests
          Comparative Studies
          Multiple Regression
          Descriptive Statistics
      ab: Background: Teachers have their students practice physics problems both at home and in class. In class, the teacher provides students who need help with feedback. However, at home, students do not receive such feedback. A digital system that provides support outside the classroom could improve student performance. Objectives: This study aimed to determine whether digital scaffolding can improve students' conceptual physics knowledge. The study addressed the topic of radiation and radioactivity, a secondary school physics subject that introduces many new concepts. Methods: The study involved a double‐blind, randomized controlled trial with a pre‐test and a post‐test. The Digi‐Feedback web‐based software was designed to provide students with digital scaffolding during all phases of problem solving, and Digi‐Feedback kept logs of all student actions. Results and Conclusions: Students' conceptual knowledge was enhanced by straightforward scaffolding, especially scaffolding that encouraged them to compare their solutions with worked examples. Immediate feedback played a crucial role here, as it helped to direct students towards correcting solutions real‐time, enabling them to correct errors and reinforce understanding. This immediate feedback fosters a responsive learning environment, allowing students to explore complex concepts more effectively. They deepened their conceptual knowledge by studying a worked example when they had first developed their own solution. The findings indicate that easily applied digital scaffolding has the potential to increase students' conceptual knowledge without extra time investment from students and teachers. This method of digital scaffolding could potentially be applied in other STEM subjects as well. Lay Description: What is currently known about the subject matter ○Feedback is potentially an effective mechanism to improve performance.○Students have three types of problems with physics assignments: they do not know the required concepts, they make incorrect connections between concepts, and their views do not match the scientific perspective.○Solving problems is one of the most important skills for physicists and a key learning objective in secondary schools.What does this paper add? ○Worked examples of solutions of physics problems enhance student understanding and knowledge.○Checklists boost student understanding.○Digital support helps students in all steps of problem solving.○Multiple‐choice questions and digital examples correct misconceptions.○Learners with little prior knowledge benefit greatly from immediate feedback.○Digital support results in significantly higher test scores without requiring students to spend more time on assignments.Implications for practice/or policy ○Students learn more from reviewing their own answers if they receive instruction on what to look for when marking their answers.○Answer booklets are used more effectively if they are supplemented with prompts and tips.○Digital feedback does not have to be complicated and is easily incorporated into existing digital components of physics textbooks.
      pubtype: Academic Journal
      doctype:
        pictorial
        research
        tables/charts
        randomized controlled trial
        Journal Article
      ougenre: Article
    language: English
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