Asia-Pacific Forum on Science Learning and Teaching, Volume 12, Issue 2, Article 8 (Dec., 2011)
Hatice BELGE CAN and Yezdan BOZ
Evaluation of eleventh grade Turkish pupils’ comprehension of general chemistry concepts

Previous Contents


References

Abraham, M., Williamson, V., & Westbrook, S. (1994). A cross-age study of the understanding of five chemistry concepts. Journal of Research in Science Teaching, 31, 147-165.

Ausubel, D. P. (1968). Educational psychology: A cognitive view. New York: Holt, Rinehart & Winston.

Ayas, A., & Demirbas, A. (1997). Turkish secondary students’ conception of introductory chemistry concepts. Journal of Chemical Education, 74 (5), 518-521.

Ayas, A., Özmen, H., & Çalik, M. (2010). Students’ conception of the particulate nature of matter at secondary and tertiary level. International Journal of Science and Mathematics Education, 8 (1), 165-184.

Bar, V., & Travis, A. S. (1991). Children’s views concerning phase changes. Journal of Research in Science Teaching, 28, 363-382.

Boz, Y., & Uzuntiryaki, E. (2005). Self-efficacy and alternative conceptions of chemistry of pre-service teachers. Proceedings of ESERA, 796-799.

Boz, Y. (2006). Turkish pupils’ conception of the particulate nature of matter. Journal of Science Education and Technology, 15, 203-213.

Campbell, J.R., Voelkl, K.E, & Donohue, P.L., (1998). Report in brief: NAEP 1996 trends in academic progress.

Coll, R. K., & Treagust, D. F. (2001a). Learners’ mental models of chemical bonding. Research in Science Education, 31, 357-382.

Coll, R. K., & Treagust, D. F. (2001b). Learners’ use of analogy and alternative conceptions for chemical bonding: A cross-age study. Australian Science Teachers’ Journal, 48 (1), 24-32.

Costu, B., Ayas, A., Niaz, M., Ünal, S., & Çalik, M. (2007). Facilitating conceptual change in students’ understanding of boiling concept. Journal of Science Education and Technology, 16, 524-536.

Çalik, M. (2005). A cross-age study of different perspectives in solution chemistry from junior to senior high school. International Journal of Science and Mathematics Education, 3, 671-696.

Çalik, M., & Ayas, A. (2005). A comparison of level of understanding of eight-grade students and science student teachers related to selected chemistry concepts. Journal of Research in Science Teaching, 42 (6), 638-667.

Çalik, M., & Ayas, A. (2007). Farkli ögrenim seviyesindeki ögrencilerin çözünme esnasinda kütlenin korunumuyla ilgili anlamalarinin tespiti. Milli Egitim, 173, 219-230.

Çalik, M., Ayas, A., & Ebenezer, J. V. (2005). A review of solution chemistry studies: Insights into students’ conceptions. Journal of Science Education and Technology, 14 (1), 29-50.

Çalik, M., Ayas, A., & Coll, R. K. (2007). Enhancing pre-service elementary teachers’ conceptual understanding of solution chemistry with conceptual change text. International Journal of Science and Mathematics Education, 5, 1-28.

Çalik, M., Ayas, A., & Coll, R. K. (2009). Investigating the effectiveness of an analogy activity in improving students’ conceptual change for solution chemistry concepts. International Journal of Science and Mathematics Education, 7, 651-676.

Demircioglu, H. & Norman, N. (1999). Effects of some variables on chemistry achievements and chemistry-related attitudes of high school students. Hacettepe Üniversitesi Egitim Fakültesi Dergisi, 16-17, 40-44.

Driscoll, M. (2005). Psychology of Learning for Instruction, 3 rd Edition. New York: Allyn & Bacon.

De Jong, O., & Taber, K. S. (2007). Teaching and learning the many faces of chemistry. In Abell, S. K., & Lederman, N. G., Handbook of Research on Science Education, Lawrence Erlbaum Associates, 631-652.

Driver, R., & Easley, J. (1978). Pupils and paradigms: A review of literature related to concept development in adolescent science students. Studies in Science Education, 5, 61-84.

Driver, R. (1981). Pupils’ alternative frameworks in science. European Journal of Science Education, 3, 93-101.

Ebenezer, J. V., & Erickson, L. G. (1996). Chemistry students’ conception of solubility: A phenomenography. Science Education, 80 (2), 181-201.

Erickson, G. L. (1979). Children’s conceptions of heat and temperature. Science Education, 63, 221-230.

Fraenkel, J. R. & Wallen, N. E. (2006). How to Design and Evaluate Research in Education. New York: The McGraw-Hill.

Garnett, P. J. & Treagust, D. F. (1992). Conceptual difficulties experienced by senior high school students in electrochemistry: Electrochemical (Galvanic) and electolytic cells. Journal of Research in Science Teaching, 29, 1079-1099.

Gilbert, J. K., Osborne, R. J., & Fensham, P. J. (1982). Children’s science and its consequences for teaching. Science Education, 66 (4), 623-633.

Goodwin, A. (2000). The teaching of chemistry: Who is the learner? Chemistry Education Research and Practice in Europe, 1 (1), 51-60.

Griffiths, A. K. & Preston, K. R. (1999). Grade-12 students’ misconceptions relating to fundamental characteristics of atoms and molecules. Journal of Research in Science Teaching, 29 (6), 2611-2628.

Haidar, A. H. & Abraham, M. R. (1991). A comparison of applied and theoretical knowkedge of concept based on the perticulate nature of matter. Journal of Research in Science Teaching, 28 (10), 919-938.

Harrison, A. G., Grayson, D. J., & Treagust, D. F. (1999). Investigating grade 11 students’ evolving conceptions of heat and temperature. Journal of Research in Science Teaching, 36 (1), 55-87.

Helm, H. (1980). Misconceptions in physics amongst South African students. Physics Education, 15, 92-105.

Kesidou, S., & Duit, R. (1993). Students’ conceptions of the second law of thermodynamics-An interpretative study. Journal of Research in Science Teaching, 30, 85-106.

Kabapinar, F. (2001). Ortaögretim ögrencilerinin çözünürlük kavramina iliskin yanilgilarini besleyen düsünce birimleri. Yeni Bin Yilin Basinda Türkiye’de Fen Bilimleri Egitimi Sempozyumu, Maltepe Üniversitesi, Istanbul.

Lee, O., Eichinger, D. C., Anderson, C. W., Berkheimer, G. D., & Blakeslee, T. D. (1993). Changing middle school students’ conceptions of matter and molecules. Journal of Research in Science Teaching, 30 (3), 249-270.

Mas, C. J. F., Perez, J. H., & Harris, H. H. (1987). Parallels between adolescents’ conception of gases and history of chemistry. Journal of Chemical Education, 64 (7), 616-618.

Ministry of National Education. (2007). Ortaögretim 9. Sinif Kmya Dersi Ögretim Programi. Ankara, Türkiye.

Mulford, D. R., & Robinson, W. R. (2002). An inventory for alternate conceptions among first-semester general chemistry students. Journal of Chemical Education, 79 (6), 739-744.

Nakhleh, M. B. (1992). Why some students don’t learn chemistry. Journal of Chemical Education, 69 (3), 191-196.

Niaz, M. (2000). A framework to understand students’ differentiation between heat energy and temperature and its educational implications. Interchange, 31, 1-20.

Nicoll, G. A. (2001). Report of undergraduates’ bonding misconception. International Journal of Science Education, 23 (7), 707-730.

Novak, J. D. (1977). A theory of education. Ithaca, NY: Cornell University Press.

Novick, S., & Nussbaum, J. (1981). Pupils’ understanding of particulate nature of matter: A cross-age study. Science Education, 65, 187-196.

OECD (2003). The Programme for International Student Assessment 2003 Assessment Framework: Mathematics, Reading, Science and Problem Solving Knowledge and Skills. http://www.oecd.org/dataoecd/46/14/33694881.pdf, visited on 22/05/2011.

Osborne, R. J., & Cosgrove, M. M. (1983). Children’s conceptions of the changes of state of water. Journal of Research in Science Teaching, 20 (9), 825-838.

Posner, G. J., Strike, K. A., Hewson, P. W., & Gertzog, W. A. (1982). Accommodation of a scientific conception: Toward of conceptual change. Science Education, 66, 211-227.

Prieto, T., Blanco, A., & Rodriguez, A. (1989). The ideas of 11-to-14-year-old students about the nature of solutions. International Journal of Science Education, 11, 451-463.

Robinson, W. & Niaz, M. (1991). Performance based on instruction by lecture or by interaction and its relationship to cognitive variables. International Journal of Science Education, 13, 203–215

Sarier, Y. (2010). Ortaögretime giris sinavlari (OKS-SBS) ve PISA sonuçlari isiginda egitimde firsat esitliginin degerlendirilmesi, Ahi Evran Üniversitesi Egitim Fakültesi Dergisi, 11(3), 107-129.

Shaw, E. L. and Doan, R. L. (1990). An investigation of the differences in attitude and achievement between male and female second and fifth grade science students. Paper presented at the annual meeting of the National Association for research in science teaching

Simpson, R. D., and Oliver, J. S. (1990). A summary of major influences on attitude toward and achievement in science among adolescent students. Science Education, 74, 1–18

Stains, M., & Talanquer, V. (2007). Classification of chemical substances using particulate representations of matter: An analysis of student thinking. International Journal of Science Education, 29 (7), 935-948.

Stavy, R. (1988). Children’s conception of gas. International Journal of Science Education, 10 (5), 553-560.

Stavy, R. (1990). Children’s conceptions of changes in the state of matter: From liquid (or solid) to gas. Journal of Research in Science Teaching, 27 (3), 247-266.

Sungur, S. & Tekkaya, C. (2003). Students’ achievement in human circilatory system unit: The effect of reasoning ability and gender. Journal of Science Education and Technology, 12, 59-64.

Taber, K. S. (1997). Student understanding of ionic bonding: Molecular versus electrostatic thinking?. School Science Review, 78 (285), 85-95.

Taber, K. S. (2000). Chemistry lessons for universities?: A review of constructivist ideas. University Chemistry Education, 4 (2), 63-73.

Tan, K. D., & Treagust, D. F. (1999). Evaluating students’ understanding of chemical bonding. School Science Review, 81 (294), 75-84.

Uzuntiryaki, E., & Geban, Ö. (2005). Effect of conceptual change approach accompanied with concept mapping on understanding of solution concepts. Instructional Science, 33, 311-339.

Ünal, S., Costu, B., & Ayas, A. (2010). Secondary school students’ misconceptions of covalent bonding. Journal of Turkish Science Education, 7 (2), 3-29.

Valanides, N. (1997). Cognitive abilities ampng twelfth-grade students: Implications for science teaching. Educational Research and Evaluation, 3, 160-186.

Valanides, N. (2000a). Primary student teachers’ understanding of the particulate nature of matter and its transformations during dissolving. Chemistry Education: Research and Practice in Europe, 1 (2), 249-262.

Valanides, N. (2000b). Primary student teachers’ understanding of the process and effects of distillation. Chemistry Education: Research and Practice in Europe, 1 (3), 355-364.

Yeo, S., & Zadnik, M. (2001). Introductory thermal concept evaluation: Assessing students’ understanding. The Physics Teacher, 39, 496-504.

Yilmaz, A., & Alp, E. (2006). Students’ understanding of matter: The effect of reasoning ability and grade level. Chemistry Education Research and Practice, 7 (1), 22-31.

 


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