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Research

Attitudinal impediments to geology major recruitment among ninth graders at a STEM high school

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Pages 237-253 | Received 10 Feb 2019, Accepted 01 Dec 2019, Published online: 17 Dec 2019

References

  • Adetunji, O. O., Ba, J.-C M., Ghebreab, W., Joseph, J. F., Mayer, L. P., & Levine, R. (2012). Geosciences awareness program: A program for broadening participation of students in geosciences. Journal of Geoscience Education, 60(3), 234–240. doi:10.5408/10-208.1
  • American Institute of Professional Geologists (AIPG). (2019). The Professional Geologist. Retrieved from http://aipg.org/images/Publications/pdf/advratecardwithmap.pdf.
  • Bailey, T., & Karp, M. M. (2003). Promoting college access and success: A review of credit-based transition programs (Report No. 143). New York, NY: Community College Research Center, Columbia University.
  • Barrows, H. S., & Tamblyn, R. M. (1980). Problem-based learning: An approach to medical education. New York: Springer Publishing Company. doi:10.1111/j.1365-2923.1980.tb02390.x
  • Berger, A., Adelman, N., & Cole, S. (2010). The early college high school initiative: An overview of five evaluation years. Peabody Journal of Education, 85(3), 333–347. doi:10.1080/0161956X.2010.491697
  • Berger, A., Turk-Bicakci, L., Garet, M., Knudson, J., & Hoshen, G. (2014). Early college, continued success: Early college high school initiative impact study. Washington, DC: American Institutes for Research.
  • Berger, A., Turk-Bicakci, L., Garet, M., Song, M., Knudson, J., Haxton, C., & Stephan, J. (2013). Early college, early success: Early college high school initiative impact study. Washington, DC: American Institutes for Research.
  • Berk, L. J., Muret-Wagstaff, S. L., Goyal, R., Joyal, J. A., Gordon, J. A., Faux, R., & Oriol, N. E. (2014). Inspiring careers in STEM and healthcare fields through medical simulation embedded in high school science education. Advances in Physiology Education, 38(3), 210–215. doi:10.1152/advan.00143.2013
  • Bicer, A., Navruz, B., Capraro, R. M., Capraro, M. M., Oner, T., & Boedeker, P. (2015). STEM schools vs. non-STEM schools: Comparing students' mathematics growth rate on high-stakes test performance. International Journal of New Trends in Education and Their Implications, 6(1), 138–150.
  • Bloom, B.S. (1956). Taxonomy of educational objectives: The classification of educational goals. New York: Longmans.
  • Bursztyn, N., Pederson, J., Shelton, B., Walker, A., & Campbell, T. (2015). Utilizing geo-referenced mobile game technology for universally accessible virtual geology field trips. International Journal of Education in Mathematics, Science and Technology, 3(2), 93–100. doi:10.18404/ijemst.88970
  • Bursztyn, N., Walker, A., Shelton, B., & Pederson, J. (2017). Assessment of student learning using augmented reality Grand Canyon field trips for mobile smart devices. Geosphere, 13(2), 260–268. doi:10.1130/GES01404.1
  • Bystydzienski, J. M., Eisenhart, M., & Bruning, M. (2015). High school is not too late: Developing girls' interest and engagement in engineering careers. The Career Development Quarterly, 63(1), 88–95. doi:10.1002/j.2161-0045.2015.00097.x
  • Cantrell, P., & Ewing‐Taylor, J. (2009). Exploring STEM career options through collaborative high school seminars. Journal of Engineering Education, 98(3), 295–303. doi:10.1002/j.2168-9830.2009.tb01026.x
  • Capraro, M. M., & Jones, M. (2013). Interdisciplinary STEM project-based learning. In R. M. Capraro, M. M. Capraro, & M. Jones (Eds.) STEM project-based learning (pp. 47–54). Rotterdam: SensePublishers.
  • Capraro, R. M., & Slough, S. W. (2013). Why PBL? Why STEM? Why now? An introduction to STEM project-based learning. In R. M. Capraro, M. M. Capraro, & M. Jones (Eds.), STEM project-based learning (pp. 1–5). Rotterdam: SensePublishers.
  • Carabajal, I. G., Marshall, A. M., & Atchison, C. L. (2017). A synthesis of instructional strategies in geoscience education literature that address barriers to inclusion for students with disabilities. Journal of Geoscience Education, 65(4), 531–541. doi:10.5408/16-211.1
  • Carrick, T. L., Miller, K. C., Hagedorn, E. A., Smith-Konter, B. R., & Velasco, A. A. (2016). Pathways to the geosciences summer high school program: A ten-year evaluation. Journal of Geoscience Education, 64(1), 87–97. doi:10.5408/15-088.1
  • Christensen, R., Knezek, G., & Tyler-Wood, T. (2015). A retrospective analysis of STEM career interest among mathematics and science academy students. International Journal of Learning, Teaching and Educational Research, 10(1), 45–48.
  • Edmunds, J. A., Bernstein, L., Unlu, F., Glennie, E., Willse, J., Smith, A., & Arshavsky, N. (2012). Expanding the start of the college pipeline: Ninth-grade findings from an experimental study of the impact of the early college high school model. Journal of Research on Educational Effectiveness, 5(2), 136–159. doi:10.1080/19345747.2012.656182
  • El Sayary, A. M. A., Forawi, S. A., & Mansour, N. (2015). STEM education and problem-based learning. In R. Wegerif, L. Li, & J. C. Kaufman (Eds.), The Routledge international handbook of research on teaching thinking (pp. 357–369). London and New York: Routledge.
  • Franco, M. S., Patel, N. H., & Lindsey, J. (2012). Are STEM high school students entering the STEM pipeline? NCSSSMST Journal, 17(1), 14–23.
  • Fuhrman, M., Gonzalez, R., & Levine, R. (2004). Developing short-term indicators of recruitment and retention in the geosciences. In AGU Fall Meeting Abstracts.
  • Geiger, M. A., & Ogilby, S. M. (2000). The first course in accounting: Students’ perceptions and their effect on the decision to major in accounting. Journal of Accounting Education, 18(2), 63–78. doi:10.1016/S0748-5751(00)00011-7
  • Han, E. M., Lynch, S. J., Ross, K. M., & House, A. (2014). Metro Early College High School: A case study of an inclusive STEM-focused high school in Columbus, Ohio. Retrieved from https://ospri.research.gwu.edu/sites/%20ospri.research.gwu.edu/files/downloads/OSPrI_Report_2014-01.pdf.
  • Han, S., Capraro, R., & Capraro, M. M. (2015). How science, technology, engineering, and mathematics (STEM) project-based learning (PBL) affects high, middle, and low achievers differently: The impact of student factors on achievement. International Journal of Science and Mathematics Education, 13(5), 1089–1113. doi:10.1007/s10763-014-9526-0
  • Hanks, C., Levine, R., González, R., Wartes, D., & Fowell, S. (2007). Survey development for measuring the near-term effectiveness of a program to recruit minority geoscientists. Journal of Geoscience Education, 55(3), 244–250. doi:10.5408/1089-9995-55.3.244
  • Haynes, N. A., & Jacobson, S. (2015). Barriers and perceptions of natural resource careers by minority students. The Journal of Environmental Education, 46(3), 166–182. doi:10.1080/00958964.2015.1011595
  • Hendricks, J. E., Atchison, C. L., & Feig, A. D. (2017). Effective use of personal assistants for students with disabilities: Lessons learned from the 2014 accessible geoscience field trip. Journal of Geoscience Education, 65(1), 72–80. doi:10.5408/16-185.1
  • Hmelo-Silver, C. E. (2004). Problem-based learning: What and how do students learn? Educational Psychology Review, 16(3), 235–266. doi:10.1023/B:EDPR.0000034022.16470.f3
  • Hoisch, T. D., & Bowie, J. I. (2010). Assessing factors that influence the recruitment of majors from introductory geology classes at Northern Arizona University. Journal of Geoscience Education, 58(3), 166–176. doi:10.5408/1.3544297
  • Huyer, L. D., Callaghan, N. I., Saab, R., Smieja, D., Effat, M. A., & Kilkenny, D. M. (2018). IBBME discovery: Biomedical Engineering-based iterative learning in a high school STEM curriculum (Evaluation). Paper presented at the American Society for Engineering Education Annual Conference and Exposition, Salt Lake City, UT.
  • Ing, M. (2014). Can parents influence children’s mathematics achievement and persistence in STEM careers?. Journal of Career Development, 41(2), 87–103. doi:10.1177/0894845313481672
  • Jahn, J. L., & Myers, K. K. (2015). When will I use this?” How math and science classes communicate impressions of STEM careers: Implications for vocational anticipatory socialization. Communication Studies, 66(2), 218–237. doi:10.1080/10510974.2014.990047
  • Kim, D., Markham, F. S., & Cangelosi, J. D. (2002). Why students pursue the business degree: A comparison of business majors across universities. Journal of Education for Business, 78(1), 28–32. doi:10.1080/08832320209599694
  • Kitts, K. (2009). The paradox of middle and high school students' attitudes towards science versus their attitudes about science as a career. Journal of Geoscience Education, 57(2), 159–164. doi:10.5408/1.3544253
  • Krathwohl, D. R., Bloom, B. S., & Masia, B. B. (1964). Taxonomy of educational objectives, handbook II: Affective domain. New York: David McKay Company.
  • LaDue, N. D., & Pacheco, H. A. (2013). Critical experiences for field geologists: Emergent themes in interest development. Journal of Geoscience Education, 61(4), 428–436.
  • LaForce, M., Noble, E., & Blackwell, C. (2017). Problem-based learning (PBL) and student interest in STEM careers: The roles of motivation and ability beliefs. Education Sciences, 7(4), 22–92. doi:10.3390/educsci7040092
  • Larmer, J. (2014, July 13). Project-based learning vs. problem-based learning vs. X-BL. Retrieved from https://www.edutopia.org/blog/pbl-vs-pbl-vs-xbl-john-larmer.
  • Levine, R., González, R., Cole, S., Fuhrman, M., & Le Floch, K. C. (2007). The geoscience pipeline: A conceptual framework. Journal of Geoscience Education, 55(6), 458–468. doi:10.5408/1089-9995-55.6.458
  • Likert, R. (1932). A technique for the measurement of attitudes. Archives of Psychology, 22(140), 1–55.
  • Malgwi, C. A., Howe, M. A., & Burnaby, P. A. (2005). Influences on students' choice of college major. Journal of Education for Business, 80(5), 275–282. doi:10.3200/JOEB.80.5.275-282
  • Maltese, A. V., & Tai, R. H. (2011). Pipeline persistence: Examining the association of educational experiences with earned degrees in STEM among US students. Science Education, 95(5), 877–907. doi:10.1002/sce.20441
  • McDonald, D., & Farrell, T. (2012). Out of the mouths of babes: Early college high school students’ transformational learning experiences. Journal of Advanced Academics, 23(3), 217–248. doi:10.1177/1932202X12451440
  • McNeal, K. S. (2010). The geosciences gap in K-12 education. Journal of Geoscience Education, 58(4), 197. doi:10.5408/1.3534857
  • Milgram, D. (2011). How to recruit women and girls to the science, technology, engineering, and math (STEM) classroom. Technology and Engineering Teacher, 71(3), 4–11.
  • Moakler, M. W., Jr,., & Kim, M. M. (2014). College major choice in STEM: Revisiting confidence and demographic factors. The Career Development Quarterly, 62(2), 128–142. doi:10.1002/j.2161-0045.2014.00075.x
  • Mogk, D. W., & Goodwin, C. (2012). Learning in the field: Synthesis of research on thinking and learning in the geosciences. Geological Society of America Special Papers, 486, 131–163.
  • National Science Board. (2014). Science and engineering indicators 2014. Retrieved from https://www.nsf.gov/statistics/seind14/content/etc/nsb1401.pdf.
  • NGSS Lead States. (2013). DCI arrangements of the NGSS. Retrieved from https://www.nextgenscience.org/overview-dci.
  • O’Connell, S., & Holmes, M. A. (2011). Obstacles to the recruitment of minorities into the geosciences: A call to action. GSA Today, 21(6), 52–54. doi:10.1130/G105GW.1
  • Olszewski-Kubilius, P. (2009). Special schools and other options for gifted STEM students. Roeper Review, 32(1), 61–70. doi:10.1080/02783190903386892
  • Pearson, K. (1895). Note on regression and inheritance in the case of two parents. Proceedings of the Royal Society of London, 58, 240–242.
  • Petcovic, H. L., Stokes, A., & Caulkins, J. L. (2014). Geoscientists’ perceptions of the value of undergraduate field education. GSA Today, 24(7), 4–10. doi:10.1130/GSATG196A.1
  • Pluta, W. J., Richards, B. F., & Mutnick, A. (2013). PBL and beyond: Trends in collaborative learning. Teaching and Learning in Medicine, 25(sup1), S9–S16. doi:10.1080/10401334.2013.842917
  • Ratinen, I., & Keinonen, T. (2011). Student-teachers’ use of Google Earth in problem-based geology learning. International Research in Geographical and Environmental Education, 20(4), 345–358. doi:10.1080/10382046.2011.619811
  • Robnett, R. D., & Leaper, C. (2013). Friendship groups, personal motivation, and gender in relation to high school students' STEM career interest. Journal of Research on Adolescence, 23(4), 652–664. doi:10.1111/jora.12013
  • Savery, J. R. (2006). Overview of problem-based learning: Definitions and distinctions. Interdisciplinary Journal of Problem-Based Learning, 1(1), 9–20. doi:10.7771/1541-5015.1002
  • Scott, C. E. (2012). An investigation of science, technology, engineering and mathematics (STEM) focused high schools in the US. Journal of STEM Education: Innovations and Research, 13(5), 30–39.
  • Shapiro, S. S., & Wilk, M. B. (1965). An analysis of variance test for normality (complete samples). Biometrika, 52(3-4), 591–611. doi:10.1093/biomet/52.3-4.591
  • Sherman-Morris, K., Brown, M. E., Dyer, J. L., McNeal, K. S., & Rodgers, J. C. III, (2013). Teachers' geoscience career knowledge and implications for enhancing diversity in the geosciences. Journal of Geoscience Education, 61(3), 326–333.
  • Sherman-Morris, K., & McNeal, K. S. (2016). Understanding perceptions of the geosciences among minority and nonminority undergraduate students. Journal of Geoscience Education, 64(2), 147–156. doi:10.5408/15-112.1
  • Sherman-Morris, K., Clary, R. M., McNeal, K. S., Diaz-Ramirez, J., & Brown, M. E. (2017). An earth hazards camp to encourage minority participation in the geosciences. Journal of Geoscience Education, 65(1), 12–22. doi:10.5408/16-192.1
  • Smith, D. L., Hoersch, A. L., & Gordon, P. R. (1995). Problem-based learning in the undergraduate geology classroom. Journal of Geological Education, 43(4), 385–390. doi:10.5408/0022-1368-43.4.385
  • Stevenson, K. T., Peterson, M. N., Bondell, H. D., Mertig, A. G., & Moore, S. E. (2013). Environmental, institutional, and demographic predictors of environmental literacy among middle school children. PLoS One, 8(3), e59519–11. doi:10.1371/journal.pone.0059519
  • Stevenson, K. T., Peterson, M. N., Carrier, S. J., Strnad, R. L., Bondell, H. D., Kirby-Hathaway, T., & Moore, S. E. (2014). Role of significant life experiences in building environmental knowledge and behavior among middle school students. The Journal of Environmental Education, 45(3), 163–177. doi:10.1080/00958964.2014.901935
  • Stokes, P. J., Levine, R., & Flessa, K. W. (2015). Choosing the geoscience major: Important factors, race/ethnicity, and gender. Journal of Geoscience Education, 63(3), 250–263. doi:10.5408/14-038.1
  • Strasser, S. E., Ozgur, C., & Schroeder, D. L. (2002). Selecting a business college major: An analysis of criteria and choice using the analytical hierarchy process. American Journal of Business, 17(2), 47–56. doi:10.1108/19355181200200010
  • Streule, M., & Craig, L. (2016). Social learning theories—An important design consideration for geoscience fieldwork. Journal of Geoscience Education, 64(2), 101–107. doi:10.5408/15-119.1
  • Student. (1908). The probable error of a mean. Biometrika, 6(1), 1–25.
  • Subotnik, R. F., Tai, R. H., Rickoff, R., & Almarode, J. (2009). Specialized public high schools of science, mathematics, and technology and the STEM pipeline: What do we know now and what will we know in 5 years?. Roeper Review, 32(1), 7–16. doi:10.1080/02783190903386553
  • Tai, R. H., Liu, C. Q., Maltese, A. V., & Fan, X. (2006). Career choice. Planning early for careers in science. Science (New York, N.Y.), 312(5777), 1143–1144. doi:10.1126/science.1128690
  • Thomas, J. (2000). First year findings: NCSSSMST longitudinal study. NCSSSMST Journal, 5(2), 4–5.
  • United States Bureau of Labor Statistics. (2019a). Life, Physical and Social Science Occupations. Retrieved June 18, 2019 from https://www.bls.gov/ooh/life-physical-and-social-science/home.htm.
  • United States Bureau of Labor Statistics. (2019b). Geoscientists, except hydrologists and geographers. Retrieved June 18, 2019 from https://www.bls.gov/oes/current/oes192042.htm#. (9)
  • Verma, A. K., Dickerson, D., & McKinney, S. (2011). Engaging students in STEM careers with project-based learning—MarineTech project. Technology and Engineering Teacher, 71(1), 25–31.
  • Wang, X. (2013). Why students choose STEM majors: Motivation, high school learning, and postsecondary context of support. American Educational Research Journal, 50(5), 1081–1121. doi:10.3102/0002831213488622
  • Wilcoxon, F. (1945). Individual comparisons by ranking methods. Biometrics Bulletin, 1(6), 80–83. doi:10.2307/3001968
  • Wilson, C. (2018). Status of recent geoscience graduates 2017. Retrieved from American Geosciences Institute website: https://www.americangeosciences.org/sites/default/files/ExitSurvey_2017_Online_041018.pdf.
  • Winkleby, M. A., Ned, J., Ahn, D., Koehler, A., & Kennedy, J. D. (2009). Increasing diversity in science and health professions: A 21-year longitudinal study documenting college and career success. Journal of Science Education and Technology, 18(6), 535–545. doi:10.1007/s10956-009-9168-0

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