Questions for Inquiry and the Activation of Critical Thinking in Early Childhood Education

Authors

Abstract

This paper explores the influence of the questions posed by a teacher in the activation of critical thinking among early childhood education students. We analysed the discursive interactions between the teacher and the students during an inquiry-based task about the fall of objects in order to identify which critical thinking skills and dispositions would be promoted among the students through teacher’s questions. The results show her questions activate the skills of explanation, inference, and analysis. Among the dispositions promoted by the teacher systematicity stands out. Nonetheless, the enactment on behalf of the children of some dispositions were not present, which might be explained by the fact that dispositions require more time to develop. It is concluded that the formulation of questions by the teacher activates critical thinking skills and that, were this teaching strategy an integral part of early childhood education, it would bring benefits to students.

Keywords

Critical thinking, Teacher intervention, Questions, Inquiry, Early childhood education

References

Abdal-Haqq, I. (1998). Constructivism in teacher education: Considerations for those who would link practice to theory. ERIC Digest, vol. 1 (p. 7). Washington, DC: ERIC Clearinghouse. https://doi.org/10.1037/e587642011-001

Bargiela, I., Puig, B. y Blanco-Anaya, P. (2018). Las prácticas científicas en infantil. Una aproximación al análisis del currículum y planes de formación del profesorado de Galicia. Enseñanza de las Ciencias, 36(1), 7-23. https://doi.org/10.5565/rev/ensciencias.2311

Bargiela, I., Puig, B., Blanco-Anaya, P. y Avraamidou, L. (en revisión). Teacher’s questioning and students’ engagement in an inquiry-based activity in early childhood education. Universidade de Santiago de Compostela.

Barnaby, B. (2016). From Theory to Practice: Critical Thinking as a Multifaceted Concept. A pilot study investigating consensus between students’ and tutors’ perceptions in higher education. Journal of Perspectives in Applied Academic Practice, 4(3), 40-47. https://doi.org/10.14297/jpaap.v4i3.209

Biggers, M. (2018). Questioning Questions: Elementary Teachers’ Adaptations of Investigation Questions Across the Inquiry Continuum. Research in Science Education, 48, 1-28. https://doi.org/10.1007/s11165-016-9556-4

Chin, C. y Osborne, J. (2008). Students’ questions: a potential resource for teaching and learning science. Studies in Science Education, 44(1), 1-39. https://doi.org/10.1080/03057260701828101

Choy, S. E. y Cheah, P. K. (2009). Teacher perceptions of critical thinking among students and its influence on higher education. International Journal of Teaching and Learning in Higher Education, 20(2), 198-206.

Constantinou, C., Tsivitanidou, O. y Rybska, E. (2018). What is Inquiry-Based Science Teaching and Learning? En O. Tsivitanidou, P. Gray, E. Rybska, L. Louca y C. Constantinou (Eds.), Professional Development for Inquiry-Based Science Teaching and Learning (pp. 1-23). Switzerland: Springer Publishing.

Corral-Verdugo, V., Frias-Armenta, M. y Corral-Verdugo, B. (1996). Predictors of Environmental Critical Thinking: A Study of Mexican Children. The Journal of Environmental Education, 27(4), 23-27. https://doi.org/10.1080/00958964.1996.9941472

Daniel, M-F., Gagnon, M. y Auriac-Slusarczyk, E. (2016). Dialogical critical thinking in kindergarten and elementary school. Studies on the impact of philosophical praxis in pupils. En G. M. Rollins, J. Haynes, y K. Murris (Eds.), The Routledge International Handbook of Philosophy for Children (pp. 236-244). Londres: Routledge.

Dovigo, F. (2016). Argumentation in preschool: a common ground for collaborative learning in early childhood. European Early Childhood Education Research Journal, 24(6), 818-840. https://doi.org/10.1080/1350293x.2016.1239327

Ennis, R. H. (2015). Critical Thinking: A Streamlined Conception. En M. Davies y R. Barnett (Eds.), The Palgrave Handbook of Critical Thinking in Higher Education (pp. 31-47). Nueva York: Palgrave Macmillan.

Eren, C. D. y Akinoglu, O. (2013). Effect of problem-based learning (PBL) on critical thinking disposition in science education. Journal of Environmental Protection and Ecology, 14(3a), 1353-1361.

Eshach, H. y Fried, M. N. (2005). Should Science be Taught in Early Childhood? Journal of Science Education and Technology, 14(3), 315-336. https://doi.org/10.1007/s10956-005-7198-9

Evagorou, M., Nicolau, C. y Lymbouridou, C. (2020). Modelling and Argumentation with Elementary School Students. Canadian Journal of Science, Mathematics and Technology Education, 20, 58-73. https://doi.org/10.1007/s42330-020-00076-9

Facione, P. A. (2000). California Critical Thinking Skills Test (CCTST-2000). California: California Academic Press.

Facione, P. A. (1990). Critical thinking: A statement of expert consensus for purposes of educational assessment and instruction. Research findings and recommendations (Report No. ED315423).

Facione, P. A., Sánchez, C. A., Facione, N. C. y Gainen, J. (1995). The disposition toward critical thinking. Journal of General Education, 44(1), 1-25.

Fleer, M. y Robbins, J. (2003). «Hit and Run Research» with «Hit and Miss» Results in Early Childhood Science Education. Research in Science Education, 33, 405-431. https://doi.org/10.1023/B:RISE.0000005249.45909.93

Flyvbjerg, B. (2006). Five Misunderstandings about Case-Study Research. Qualitative Inquiry, 12(2), 219-245. https://doi.org/10.1177/1077800405284363

Gee, J. P. (2014). An introduction to discourse analysis: Theory and method (4.ª ed.). Reino Unido: Routledge.

Giri, V. y Paily, M. U. (2020). Effect of collaborative scientific argumentation strategy argumentation on achievement in biology among 12th grade students. Journal of Critical Reviews, 7(3), 344-353. https://doi.org/10.31838/jcr.07.03.67

Glassner, A. y Schwarz, B. B. (2005). The antilogos ability to evaluate information supporting arguments. Learning and Instruction, 15(4), 363-375. https://doi.org/10.1016/j.learninstruc.2005.07.002

Greene, J. A. y Yu, S. B. (2016). Educating critical thinkers: the role of epistemic cognition. Policy Insights from the Behavorial and Brain Sciences, 3(1), 45-53. https://doi.org/10.1177/2372732215622223

Harbi, A. (2016). «He isn’t an animal, he isn’t a human; he is just different»: exploring the medium of comics empowering children’s critical thinking. Journal of Graphic Novels and Comics, 7(4), 431-444. https://doi.org/10.1080/21504857.2016.1219956

Hmelo-Silver, C. E., Duncan, R. G. y Chinn, C. A. (2007). Scaffolding and achievement in problem-based and inquiry learning: A response to Kirschner, Sweller, and Clark (2006). Educational Psychologist, 42, 99-107. https://doi.org/10.1080/00461520701263368

Hu, S., Kuh, G. D. y Li, S. (2008). The effects of engagement in inquiry-oriented activities on student learning and personal development. Innovative Higher Education, 33(2), 71-81. https://doi.org/10.1007/s10755-008-9066-z

Kuhn, D. (2019). Critical Thinking as Discourse. Human Development, 62(3), 146-164. https://doi.org/10.1159/000500171

Kuhn, D. (1999). A Developmental Model of Critical Thinking. Educational Researcher, 28(2), 16-46. https://doi.org/10.3102/0013189x028002016

Kuhn, D. (1993). Science as argument: implications for teaching and learning scientific thinking. Science Education, 77(3), 319-337. https://doi.org/10.1002/sce.3730770306

León, J. M. (2015). A Baseline Study of Strategies to Promote Critical Thinking in the Preschool Classroom. Gist Education and Learning Research Journal, 10, 113-127. https://doi.org/10.26817/16925777.270

Lipman, M., Sharp, A. y Oscanyan, F. S. (1992). La filosofía en el aula. Madrid: Ediciones de la Torre.

Lu, Y-Y., Lin, H-S., Smith, T. J., Hong, Z-R. y Hsu, W-Y. (2020). The effects of critique driven inquiry intervention on students’ critical thinking and scientific inquiry competency. Journal of Baltic Science Education, 19(6), 954-971. https://doi.org/10.33225/jbse/20.19.954

Makar, K., Bakker, A. y Ben-Zvi, D. (2015). Scaffolding norms of argumentation- based inquiry in a primary mathematics classroom. ZDM Mathematics Education, 47, 1107-1120. https://doi.org/10.1007/s11858-015-0732-1

Mason, L. (1996). An analysis of children’s construction of new knowledge through their use of reasoning and arguing in classroom discussions. International Journal of Qualitative Studies in Education, 9(4), 411-433. https://doi.org/10.1080/0951839960090404

Metz, K. (2008). Narrowing the gulf between the practices of science and the elementary school science classroom. The Elementary School Journal, 109(2), 138-161. https://doi.org/10.1086/590523

Mills, A., Eurepos, G. y Wiebe, E. (2010). Encyclopedia of Case Study Research (vol. 1). California: SAGE Publications.

Minner, D. D., Levy, A. J. y Century, J. (2010). Inquiry-based science instruction-What is it and does it matter? Results from a research synthesis years 1984 to 2002. Journal of Research in Science Teaching, 47(4), 474-496. https://doi.org/10.1002/tea.20347

National Academies of Sciences, Engineering, and Medicine (2019). Science and Engineering for Grades 6-21. Investigation and Design at the Center. Washington, DC: The National Academies Press. https://doi.org/10.17226/25216

National Research Council (NRC) (2012). A framework for K-12 Science Education: practices, crosscutting concepts and core ideas. Washington DC: National Academy Press.

NGSS Lead States (2013). Next Generation Science Standards: For States, by States. Washington DC: The National Academies Press.

Nussbaum, M. E. y Sinatra, G. M. (2003). Argument and conceptual engagement. Contemporary Educational Psychology, 28(3), 384-395. https://doi.org/10.1016/s0361-476x(02)00038-3

Organización para la Cooperación y el Desarrollo Económico (OECD) (2019). OECD Future of Education and Skills 2030. OECD Learning Compass 2030. A series of concept notes. https://www.oecd.org/education/2030-project/contact/OECD_Learning_Compass_2030_Concept_Note_Series.pdf

Puig, B., Blanco-Anaya, P. y Bargiela, I. (2020). A Systematic Review on E-learning Environments for Promoting Critical Thinking in Higher Education. En M. J. Bishop, E. Boling, J. Elen, y V. Svihla. (Eds.), Handbook of Research in Educational Communications and Technology (pp. 345-3629). Cham: Springer.

Puig, B., Crujeiras-Pérez, B., Bargiela, I. y Blanco-Anaya, P. (2021). Integration of Critical Thinking and Scientific Practices to Design-Based Pedagogy. En I. Elen (Ed.), Design Based Pedagogy book. Design Based Pedagogical Content Knowledge Across European Teacher Education Programs (pp. 89-128). Ankara: Anı Yayıncılık,

Puig, B. y Jiménez-Aleixandre, M. P. (2022). The Integration of Critical thinking in Biology and Environmental Education. Contributions and Further Directions. En B. Puig y M. P. Jiménez-Aleixandre (Eds.), Critical thinking in Biology and Environmental Education. Facing Challenges in a Post-truth World. Springer.

Saiz, C. y Rivas, S. (2017). Desarrollo del Pensamiento Crítico. En L. S. Almeida (Ed.), Criatividade e Pensamento Crítico: Conceito, Avaliação e Desenvolvimento, (pp. 133-179). Braga: Centro de Estudos e Recursos em Psicologia.

Santika, A. R., Purwianingsih, W. y Nuraeni, E. (14 de octubre de 2018). Analysis of students critical thinking skills in socio-scientific issues of biodiversity subject [Comunicación oral]. 4th International Seminar of Mathematics, Science and Computer Science Education, Indonesia. https://doi.org/

Tenreiro-Vieira, C. y Vieira, R. M. (2006). Diseño y validación de actividades de laboratorio para promover el pensamiento crítico de los alumnos. Revista Eureka sobre Enseñanza y Divulgación de las Ciencias, 3(3), 452-466. https://doi.org/10.25267/rev_eureka_ensen_divulg_cienc.2006.v3.i3.07

Torres Merchán, N. Y. y Solbes, J. (2016). Contribuciones de una intervención didáctica usando cuestiones sociocientíficas para desarrollar el pensamiento crítico. Enseñanza de las Ciencias, 34(2), 43-65. http://dx.doi.org/10.5565/rev/ensciencias.1638

Van Uum, M. S. J., Verhoeff, R. P. y Peeters, M. (2016). Inquiry-based science education: towards a pedagogical framework for primary teachers. International Journal of Science Education, 38(3), 450-469. https://doi.org/10.1080/09500693.2016.1147660

Vieira, R. M. y Tenreiro-Vieira, C. (2014). Fostering Scientific Literacy and Critical Thinking in Elementary Science Education. International Journal of Science and Mathematics Education, 14(4), 659-680. https://doi.org/10.1007/s10763-014-9605-2

Vieira, R. M., Tenreiro-Vieira, C. y Martins, E. (2010). Pensamiento crítico y literacia científica. Alambique, Didáctica de las Ciencias Experimentales, 65, 96-104.

Yuliati, L., Fauziah, R. y Hidayat, A. (octubre 14, 2018). Students’ critical thinking skills in authentic problem based learning [Comunicación oral]. 4th International Seminar of Mathematics, Science and Computer Science Education, Indonesia. https://doi.org/

Zembal-Saul, C. (2008). Learning to Teach Elementary School Science as Argument. Science Education, 93(4), 687-719. https://doi.org/10.1002/sce.20325

Published

2022-11-03

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