Teacher Training on Scientific Literacy
Description
Total Duration
48 hours (12 hours synchronous and 36 hours asynchronous)
Implementation Method
Remote
Subject Area
Scientific literacy
Information
To support science teachers to gain a deep understanding of the PISA framework for scientific literacy and to be able to translate the characteristics of PISA-style questions and topics into targeted teaching practices and assessment activities. In this way, students will strengthen their ability to interpret phenomena, design and evaluate investigations, critically analyze data, and make evidence-based decisions in authentic contexts.
Module 2:
Upon completion of this module, participants will be able to:
• describe the purpose, philosophy, and historical development of the PISA cycles
• explain what PISA assesses and what it does not assess, with an emphasis on the shift from testing school-based knowledge to evaluating the ability to apply knowledge and skills in a variety of real-world contexts
• describe the key features of the PISA test structure, such as topics, introductory texts, question types, the format of the digital test, and how adaptive testing works.
• interpret key methodological parameters of PISA, such as the target population, sampling, the role of questionnaires, performance scales and proficiency levels, as well as the scope of international participation in PISA 2025.
Module 3:
Upon completion of this module, participants will be able to:
• define scientific literacy as defined by PISA 2025.
• describe the key dimensions of scientific literacy in PISA, such as knowledge, skills, attitudes, and contexts.
• distinguish between the concepts of competence and skill, in accordance with the PISA framework
• relate the evolution of the definition of scientific literacy to changes in perceptions of the role of the scientifically and technologically literate citizen in modern society.
Module 4:
Upon completion of this module, participants will be able to:
• describe the thematic/question frameworks used by PISA (personal, local-national, and global) and explain the rationale behind the framework used for specific PISA-type questions.
• identify and explain the scientific competence assessed by a PISA-type question
• describe the three types of knowledge in PISA (content knowledge, procedural knowledge, and scientific/epistemological knowledge) and explain the type of knowledge required by different questions.
• design questions that utilize different contexts, assess selected scientific competencies, and require different types of knowledge to be answered.
• explain the importance of the environmental dimension and action in the Anthropocene, describing the environmental competencies assessed by PISA and their connection to scientific literacy.
• relate attitudes, scientific identity, and source evaluation to the concept of scientific identity within the PISA framework.
• recognize the relationship between attitudes toward science, scientific identity, and source evaluation, and explain how these factors influence the evidence-based interpretation of information and decision-making on scientific and social science issues
• apply the basic principles of coding and scoring responses.
Module 5:
Upon completion of this module, participants will be able to:
• describe the trends in Greek students’ performance on the PISA over time and compare key aspects of that performance with the performance of other countries.
• identify and analyze key weaknesses in teaching and assessment in the natural sciences, based on performance data and questionnaire responses, such as:
a) traditional teaching methods,
b) an emphasis on assessing declarative knowledge and solving problems that typically require knowledge of standardized methodology,
c) “recipe-style” laboratory work,
d) a lack of scientific knowledge.
e) questions that typically do not require students to utilize information from representations or from a combination of sources.
• identify disparities in student performance through performance data and questionnaire responses, such as:
a) The “performance gap.”
b) Performance differences based on socioeconomic status, gender, and immigrant background.
• link the difficulties in transitioning to more innovative forms of teaching to the centripetal forces present in our educational system and to problems with professional development.
Module 6:
Upon completion of this module, participants will be able to:
• translate key PISA findings into priorities for science education, with an emphasis on:
a) inquiry-based teaching and learning,
b) the interpretation of data from authentic contexts,
c) scientific methodology skills, and
d) scientific/epistemological knowledge.
• design activities that utilize authentic data and representations, such as tables and graphs, to enhance students’ scientific literacy.
• incorporate PISA-style topics into their teaching, integrating appropriate instructional scaffolding to support students with varying levels of readiness.
• adjust the difficulty of a question or activity to accommodate different levels of difficulty.
• design or redesign a one-class-period lesson, utilizing PISA topic repositories and educational materials, as well as sample lesson plans.
Module 7:
Upon completion of this module, participants will be able to:
• relate key principles of the PISA framework to elements of the New Curricula.
• evaluate 2–3 lesson plans in terms of their relevance to the PISA framework
• design a short-term intervention or action research project to investigate difficulties and strengthen students’ interpretation and argumentation skills.
• incorporate elements of the PISA framework into Collaborative Planning activities and forms of collaborative professional learning at school.
Module 8:
Upon completion of this unit, participants will be able to:
• responsibly communicate PISA results, recognizing what the study measures and what it does not, and translating key findings into evidence-based educational priorities, rather than focusing narrowly on the country’s position in the overall rankings.
• explain the importance of developing scientific literacy in modern societies, linking it to the needs of evidence-based decision-making and responsible engagement in social and scientific issues.
The Training Program is organized into modules, with a total training duration of 48 hours. The modules that make up the program are as follows:
1. PISA [Programme for International Student Assessment]
2. Literacy [in Science]: Concepts and Theoretical Framework
3. Literacy [in Science]: The Assessment Framework
4. Literacy [in Science]: Research Materials, Data, and Results from the PISA Study
5. Educational/Instructional Applications of the PISA Study
6. Utilization of PISA Research Findings
7. Public Understanding and Communication of PISA Research
8. Final Project—Submission of a Lesson Plan and Development of PISA-Style Questions
The training program is intended for secondary school teachers in the following subject areas: PE04
Participants who complete the entire Training Program (both synchronous and asynchronous formats) are required to complete all self-assessment exercises, as well as the final project. Participants who complete the Training Program in full will receive a Certificate of Successful Completion from the Center for Lifelong Learning (KEDIVIM) of the University of Ioannina, which will specify the duration of the program and the number of ECTS credits.
Please note that in order to progress from one module to the next, full-time participants must achieve a 75% passing score on the Self-Assessment Exercise. To successfully complete the Training Program, the final project must receive a positive evaluation.
Sotiris Dosis
Sotiris Dosis holds a Ph.D. in Science Education and is a graduate of the School of Physics and Mathematics at the National and Kapodistrian University of Athens. He has many years of teaching experience in both public and private education, having held positions of responsibility such as school principal, Head of the Center for Teacher Training and Development (EKFE), and Coordinator of the PE04 Educational Project. For the past four years, he has served as the PE04 Education Advisor at the 4th Athens Regional Directorate of Education. Additionally, he is a certified Level II ICT trainer with extensive experience in both in-person and distance learning programs. His work includes the publication of educational materials, as well as the design of learning resources for physics, several of which have been incorporated into the National Repository of Educational Content “Fotodendro.”
Christos Papakonstantinopoulos
Graduate of the Department of Physics at the University of Patras (1996). Physics teacher at a private high school.
Stavros Kolovos
He holds a bachelor’s degree in Physics from the University of Patras and a master’s degree from the University of the Peloponnese (Department of Social and Educational Policy). He has worked for many years as a teacher in public secondary education.
Kostas Apostolopoulos
Chemist and Pharmacist, Ph.D. in Chemistry, M.Ed. (Theory, Practice, and Evaluation of Educational Work, Specialization in Educational Evaluation), M.A.Ed. (Adult Education) Member of the Council of the Quality Assurance Authority for Primary and Secondary Education (ADIPSE). Member of the Scientific Committee for National Diagnostic Examinations. Member of the Council of the National Examinations Organization (EOE).
Maria Vlassi
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Christodoulos Makedonas
Christodoulos D. Makedonas is a chemist, a graduate of the Department of Chemistry at the National and Kapodistrian University of Athens, and holds a master’s degree in Inorganic Chemistry and Technology as well as a Ph.D. in Chemistry from the same university. After completing his Ph.D., he worked as a postdoctoral researcher at the Inorganic Chemistry Laboratory of the National and Kapodistrian University of Athens. As part of his duties, he taught both undergraduate and graduate courses in his department. He has been serving in public education since 2007, having worked at both middle schools and high schools, including vocational high schools (EPAL). He has been a member of the faculty at the Model High School of the Evangelical School of Smyrna since 2013. In 2014, he founded the Chemistry Club titled “Chemistry in vivo, in vitro, and in silico.” As part of the Chemistry Club’s activities, both he and his students have won awards in national and international competitions. His research interests focus on the adaptation of scientific knowledge for the classroom, with a particular emphasis on the fields of spectroscopy, molecular simulations, and drug design.
Maria Dokopoulou
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Stratis Katakos
A secondary school teacher with master’s degrees in Biology Education and New Technologies, as well as in Distance Education. He also holds a Ph.D. in conceptual ecology of evolutionary theory.