Будь ласка, використовуйте цей ідентифікатор, щоб цитувати або посилатися на цей матеріал: http://ds.knu.edu.ua/jspui/handle/123456789/9314
Назва: Quantum literacy for sustainable futures: An evidence-based competency framework for equitable secondary education
Автори: Semerikov, Serhiy O.
Shokaliuk, Svitlana V.
Kanevska, Olga B.
Hamaniuk, Vita A.
Kolgatin, Oleksandr H.
Ключові слова: Sustainable development goals
Quantum literacy
Educational equity
Technology divide
SDG 4 quality education
Climate technology education
Innovation capacity building
Global south
STEM
Quantum technologies
Дата публікації: 12-чер-2026
Видавництво: Elsevier
Бібліографічний опис: Quantum literacy for sustainable futures: An evidence-based competency framework for equitable secondary education / Serhiy O. Semerikov, Svitlana V. Shokaliuk, Olga B. Kanevska, Vita A. Hamaniuk, Oleksandr H. Kolgatin // Sustainable Futures. – 2026. – Volume 12. – Article 101965. – DOI : https://doi.org/10.1016/j.sftr.2026.101965
Короткий огляд (реферат): Quantum technologies are rapidly transitioning from laboratory research into transformational tools for addressing sustainability challenges, yet 85% of secondary students in developing nations lack access to foundational quantum education, risking a new “quantum divide” that threatens equitable development. This study develops an evidence-based competency framework for integrating quantum literacy into secondary education as infrastructure for achieving the UN Sustainable Development Goals (SDGs). Through a systematic Scopus AI-powered synthesis of quantum education literature spanning 15 countries and 75 targeted queries across 12 thematic categories, we constructed an eight-domain competency framework mapping quantum principles to quantified sustainability impacts. The framework proposes three adaptable implementation pathways – infusion, modular, and integrated – supported by teacher professional development models requiring 40–120 training hours. Case studies from the Philippines, South Africa, and Brazil demonstrate the feasibility of each pathway across diverse resource contexts, with documented outcomes including 73% improvement in conceptual understanding and 89% programme completion rates. Empirical evidence from quantum informatics instruction in Ukrainian secondary schools further validates the framework’s pedagogical foundations. The study contributes to educational theory by reconceptualising quantum literacy as sustainable development infrastructure, and to policy by providing an equity-focused roadmap that prioritises South-South cooperation and open-source resources. These findings have implications for curriculum reform, teacher education policy, and international development strategies targeting SDG 4 (Quality Education) and SDG 9 (Innovation and Infrastructure).
Опис: [9] M.K. Saggi, A.S. Bhatia, S. Kais, Federated quantum machine learning for drug discovery and healthcare, Annu. Rep. Comput. Chem. 20 (2024) 269–322, http://dx.doi.org/10.1016/bs.arcc.2024.10.007. [10] S. Yadav, Transformative learning with advanced technologies: Harnessing VR and AR for immersive educational experiences, in: J.A. Ruiz-Vanoye, O.D. az Parra (Eds.), Revolutionizing Pedagogy Through Smart Education, IGI Global Scientific Publishing, Hershey, PA, 2025, pp. 139–155, http://dx.doi.org/10.4018/979-8-3693-7793-2.ch008. [11] K. Deeba, S. Ramya, B. Geetha, K.S. Kumari, Quantum computing AI for climate modeling, in: P. Raj, B. Sundaravadivazhagan, M. Ouaissa, V. Kavitha, K.S. Kumari (Eds.), Quantum Computing and Artificial Intelligence: The Industry Use Cases, Scrivener Publishing LLC, 2025, pp. 247–260, http://dx.doi.org/10.1002/9781394242399.ch9. [12] K. Suresh, R. Vidhya, S. Poonkodi, S. Hemavathi, V. Kavitha, A. Anoop, Quantum computing in healthcare: exploring applications for drug discovery and precision medicine, in: A. Kumar, A.K. Dubey, V. Piuri, J.J.P.C. Rodrigues (Eds.), Exploring Intelligent Healthcare with Quantum Computing, Institution of Engineering and Technology, 2024, pp. 181–198, http://dx.doi.org/10.1049/PBHE060E_ch10. [13] P.V. Zahorodko, S.O. Semerikov, V.N. Soloviev, A.M. Striuk, M.I. Striuk, H.M. Shalatska, Comparisons of performance between quantum-enhanced and classical machine learning algorithms on the IBM quantum experience, J. Phys.: Conf. Ser. 1840 (1) (2021) 012021, http://dx.doi.org/10.1088/1742-6596/1840/1/012021. [14] A. Nayak, A. Tiwari, Biodegradable optical sensors with quantum-assisted signal processing for sustainable and high-precision sensing, in: M.S.V. Kumar, K.S. Raju, K. Rajakumar, S. Saravanakumar (Eds.), A Study on Next-Generation Materials and Devices, CRC Press, London, 2025, pp. 171–176, http://dx.doi.org/10.1201/9781003675259-34. [15] S. Rosales, O.E. Medina, N. Garzon, K. Zapata, E.A. Taborda, J.C. Ordóñez, F.B. Cortés, C.A. Franco, Systematic review of carbon quantum dots (CQD): Definition, synthesis, applications and perspectives, Renew. Sustain. Energy Rev. 219 (2025) 115854, http://dx.doi.org/10.1016/j.rser.2025.115854. [16] M. Jammal, L. Sanz-Martín, J. Parra-Domínguez, Quantum innovations: Driving sustainability through AI and quantum technologies, in: P. Novais, P. B. D., I. Satoh, V.J. Inglada, S.R. González, E. Jove Pérez, J. Parra Domínguez, P. Chamoso, R.S. Alonso (Eds.), Ambient Intelligence – Software and Applications – 15th International Symposium on Ambient Intelligence, in: Lecture Notes in Networks and Systems, vol. 1279, Springer Nature Switzerland, Cham, 2025, pp. 351–359, http://dx.doi.org/10.1007/978-3-031-83117-1_33. [1] M. Coccia, S. Roshani, M. Mosleh, Evolution of quantum computing: Theoretical and innovation management implications for emerging quantum industry, IEEE Trans. Eng. Manage. 71 (2024) 2270–2280, http://dx.doi.org/10.1109/TEM.2022.3175633. [2] M. Coccia, Disruptive innovations in quantum technologies for social change, J. Econ. Bibliogr. 9 (1) (2022) 21–39, URL: https://journals.econsciences.com/index.php/JEB/article/view/2287. [3] M. Coccia, Technological trajectories in quantum computing to design a quantum ecosystem for industrial change, Technol. Anal. Strat. Manag. 36 (8) (2024) 1733–1748, http://dx.doi.org/10.1080/09537325.2022.2110056. [4] M. Coccia, S. Roshani, Evolutionary phases in emerging technologies: Theoretical and managerial implications from quantum technologies, IEEE Trans. Eng. Manage. 71 (2024) 8323–8338, http://dx.doi.org/10.1109/TEM.2024.3385116. [5] G. Munawar, K. Surendro, Utilizing quantum algorithms to achieve carbon neutrality in urban areas: A systematic review, Alex. Eng. J. 108 (2024) 911–936, http://dx.doi.org/10.1016/j.aej.2024.09.043. [6] B. Szczesny, W. Gryncewicz, Quantum advantage applied - research on probability of success, in: Proceedings - International Conference on Advanced Computer Information Technologies, ACIT, 2023, pp. 468–472, http://dx.doi.org/10.1109/ACIT58437.2023.10275418. [7] S.K. Sheoran, V. Yadav, R.K. Sheoran, Quantum computing for sustainable energy: Optimising SDG-7 through smart energy management and financial planning, in: Proceedings of International Conference on Modern Sustainable Systems, CMSS 2025, Institute of Electrical and Electronics Engineers Inc, 2025, pp. 1012–1020, http://dx.doi.org/10.1109/CMSS66566.2025.11182548. [8] P.K. Sinha, M. R, Comparative study of quantum and classical algorithms for renewable energy sources, Results Eng. 27 (2025) 107062, http://dx.doi.org/10.1016/j.rineng.2025.107062. Priyanka, P. Dhuliya, D. Singh Rana, S. Goyal, S. Kukreti, S. Pundir, Quantum computing for sustainable development: A framework for environmental and social impact, in: T. Joshi, S. Semwal (Eds.), 3rd International Conference on Advances in Computing, Communication and Materials, ICACCM 2024, Institute of Electrical and Electronics Engineers Inc, 2024, http://dx.doi.org/10.1109/ICACCM61117.2024.11059008. R. Dvorak, F. Bahadori, Leveraging open source tools to teach quantum computing foundations: Bridging the future workforce gap in the quantum era, in: 2024 ASEE Annual Conference & Exposition, ASEE Conferences, Portland, Oregon, 2024, http://dx.doi.org/10.18260/1-2–47743. S.D. Bennett, Accelerated technology transfer: The UK quantum initiative, in: K.L. Lewis, R.C. Hollins (Eds.), Proceedings of SPIE - the International Society for Optical Engineering, Vol. 9992, SPIE, 2016, http://dx.doi.org/10.1117/12.2243371. L. Li, C.-W. Huang, C. Morgan, K. Luttgen, E. Chow, S. Yang, Empowering rural students through computational thinking and real-world STEM applications: insights from an innovative high school curriculum, Front. Educ. 9 (2024) http://dx.doi.org/10.3389/feduc.2024.1452470. E. Oh, M.D. Gregoire, A.T. Black, K.J. Hughes, P.D. Kunz, M. Larsen, J. Lautier-Gaud, J. Lee, P.D.D. Schwindt, S.L. Mouradian, F.A. Narducci, C.A. Sackett, Perspective on quantum sensors from basic research to commercial applications, AIAA J. 62 (11) (2024) 4029–4053, http://dx.doi.org/10.2514/1.J062707. A. Baitulmal, N. Adem, Why should and how can quantum technologies be leveraged at national levels? IET Quantum Commun. 4 (2) (2023) 96–101, http://dx.doi.org/10.1049/qtc2.12057. F. Greinert, R. Müller, European Competence Framework for Quantum Technologies (CFQT) – Reference Framework for Planning, Mapping and Comparing QT-Related Educational Activities, Personal Qualification and Job Requirements, Publications office of the European Union, Luxembourg, 2024, http://dx.doi.org/10.2759/389764. A. Purohit, M. Kaur, Z.C. Seskir, M.T. Posner, A. Venegas-Gomez, Building a quantum-ready ecosystem, IET Quantum Commun. 5 (1) (2024) 1–18, http://dx.doi.org/10.1049/qtc2.12072. S. Wills, Staffing the quantum revolution, Opt. Photonics News 34 (3) (2023) 26–30, http://dx.doi.org/10.1364/opn.34.3.000026. M. Coccia, S. Roshani, Path-breaking directions in quantum computing technology: A patent analysis with multiple techniques, J. knowl. Econ. 16 (1) (2025) 4991–5024, http://dx.doi.org/10.1007/s13132-024-01977-y. M. Coccia, Converging artificial intelligence and quantum technologies: Accelerated growth effects in technological evolution, Technologies 12 (5) (2024) 66, http://dx.doi.org/10.3390/technologies12050066. B. Kargi, M. Coccia, Quantum technology research field variability to explain scientific and technical development in society, Int. J. Technol. Learn. Innov. Dev. 16 (4) (2025) 384–405, http://dx.doi.org/10.1504/IJTLID.2025.149366. S.M. Jamali, N. Ale Ebrahim, F. Jamali, The role of STEM education in improving the quality of education: a bibliometric study, Int. J. Technol. Des. Educ. 33 (3) (2023) 819–840, http://dx.doi.org/10.1007/s10798-022-09762-1. N. Chongtham, O. Santosh, M. Bhardwaj, Significance of strengthening STI ecosystems for achieving sustainable development goals, in: K. Singh, N. Chongtham, R. Trikha, M. Bhardwaj, S. Kaur (Eds.), Science, Technology and Innovation Ecosystem: An Indian and Global Perspective, Springer Nature Singapore, Singapore, 2024, pp. 415–435, http://dx.doi.org/10.1007/978-981-97-2815-2_18. O.V. Barna, O.H. Kuzminska, S.O. Semerikov, Enhancing digital competence through STEM-integrated universal design for learning: a pedagogical framework for computer science education in Ukrainian secondary schools, Discov. Educ. 4 (1) (2025) 357, http://dx.doi.org/10.1007/s44217-025-00821-y. S.O. Semerikov, P.P. Nechypurenko, T.A. Vakaliuk, I.S. Mintii, Resilience through crisis: an integrated framework for entrepreneurial STEM education in conflict-affected contexts, Discov. Educ. 5 (1) (2026) 24, http://dx.doi.org/10.1007/s44217-025-01041-0. J.C. Meyer, G. Passante, B. Wilcox, Disparities in access to U.S. quantum information education, Phys. Rev. Phys. Educ. Res. 20 (1) (2024) 010131, http://dx.doi.org/10.1103/PhysRevPhysEducRes.20.010131. D. Kettani, B. Moulin, L.S. Barbosa, Digital divide (2.0): the shadow of AI technology, Perspect. Glob. Dev. Technol. 24 (3–4) (2025) 484–513, http://dx.doi.org/10.1163/15691497-12341720. H.K.E. Stadermann, E. Van Den Berg, M.J. Goedhart, Analysis of secondary school quantum physics curricula of 15 different countries: Different perspectives on a challenging topic, Phys. Rev. Phys. Educ. Res. 15 (1) (2019) 010130, http://dx.doi.org/10.1103/PhysRevPhysEducRes.15.010130. A. Merzel, P. Bitzenbauer, K. Krijtenburg-Lewerissa, K. Stadermann, E. Andreotti, D. Anttila, M. Bondani, M.L. Chiofalo, S. Faletič, R. Frans, S. Goorney, F. Greinert, L. Jurčić, Z. Koupilová, M. Malgieri, R. Müller, P. Onorato, G. Pospiech, M. Ubben, A. Woitzik, H. Pol, The core of secondary level quantum education: a multi-stakeholder perspective, EPJ Quantum Technol. 11 (1) (2024) 27, http://dx.doi.org/10.1140/epjqt/s40507-024-00237-x. [37] U. Bhimavarapu, Data colonialism: The silent force behind global inequality, in: K. Wongmahesak, T. Sriyakul, U. Ghosh, I. Wekke (Eds.), Technology, Geopolitics, and the Transformation of International Political Economy, IGI Global Scientific Publishing, Hershey, PA, 2025, pp. 277–301, http://dx.doi.org/10.4018/979-8-3373-1727-4.ch012. [38] J.S.d.S. Cristóvam, T.P. de Sousa, Technological sovereignty vs. digital coloniality: Smart state and public policies for an AI bethânia [soberania tecnológica vs. colonialidade digital: Estado inteligente e políticas públicas para uma IA Bethânia], Sequencia 45 (98) (2024) 1–33, http://dx.doi.org/10.5007/2177-7055.2024.e103426. [39] N. Ahmad, M. Toro-Troconis, M. Ibahrine, R. Armour, V. Tait, K. Reedy, R. Malevicius, V. Dale, N. Tasler, Y. Inzolia, Codesigns education for sustainable development: A framework for embedding education for sustainable development in curriculum design, Sustainability 15 (23) (2023) 16460, http://dx.doi.org/10.3390/su152316460. [40] I.-M. Eichentopf, H.D. Kasperidus, Integrating technology assessment, systems thinking, and system dynamics in sustainability education: The need for an interdisciplinary framework, Int. J. Educ. Res. Open 9 (2025) 100535, http://dx.doi.org/10.1016/j.ijedro.2025.100535. [41] G. Herrera-Franco, C. Mora-Frank, P. Carrión-Mero, Sustainable development in Latin American higher education institutions, in: W. Leal Filho, F. Frankenberger, U. Tortato (Eds.), Sustainability in Practice: Addressing Challenges and Creating Opportunities in Latin America, in: World Sustainability Series, Springer Nature Switzerland, Cham, 2023, pp. 93–110, http://dx.doi.org/10.1007/978-3-031-34436-7_7. [42] C. Barclay, E.W. Duggan, Rethinking the digital divide: Towards a path of digital effectiveness, in: Proceedings of the Annual Hawaii International Conference on System Sciences, 2008, http://dx.doi.org/10.1109/HICSS.2008.376. [43] S. Brooks, P. Donovan, C. Rumble, Developing nations, the digital divide and research databases, Ser. Rev. 31 (4) (2005) 270–278, http://dx.doi.org/10.1016/j.serrev.2005.09.002. [44] Z.C. Seskir, S. Umbrello, C. Coenen, P.E. Vermaas, Democratization of quantum technologies, Quantum Sci. Technol. 8 (2) (2023) 024005, http://dx.doi.org/10.1088/2058-9565/acb6ae. [45] D.J.D. Lopez, E. Peramo, J.M. Ayson, A.N.S. Masongsong, L.D.C. Raquel, B.O. Corpus, Quantum computing society of the Philippines: An NGO perspective on promoting quantum information, science, and technology in the Philippines, in: M. Osinski, B. La Cour, L. Yeh (Eds.), Proceedings - IEEE Quantum Week 2024, QCE 2024, Vol. 3, Institute of Electrical and Electronics Engineers Inc, 2024, pp. 89–95, http://dx.doi.org/10.1109/QCE60285.2024.20463. [46] R. Mudaly, T. Chirikure, STEM education in the global north and global south: competition, conformity, and convenient collaborations, Front. Educ. 8 (2023) http://dx.doi.org/10.3389/feduc.2023.1144399. [47] P.D.R. Bambi, J.B.B. Pea-Assounga, Unraveling the interplay of research investment, educational attainment, human capital development, and economic advancement in technological innovation: A panel VAR approach, Educ. Inf. Technol. 30 (3) (2025) 3309–3341, http://dx.doi.org/10.1007/s10639-024-12938-y. [48] S. Devendrababu, S. Ganguly, K. Hemachandran, Mapping quantum industry demands to education: a critical analysis of skills, qualifications, and modalities, EPJ Quantum Technol. 12 (1) (2025) 105, http://dx.doi.org/10.1140/epjqt/s40507-025-00406-6. [49] E.T. McChesney, Y.-H. Weng, C.E. Winkler, B. Selznick, M.J. Mayhew, The effect of interdisciplinary training on cultivating graduate student innovation capacities, Innov. High. Educ. (2025) http://dx.doi.org/10.1007/s10755-025-09848-3. [50] U. Genenz, N. Anne, Z. Kiliç, D. Mathews, O. Ok, A. Schmidt, Z.C. Seskir, Why teach quantum on your own time: The values of grassroots organisations involved in quantum technologies education and outreach, in: M. Osinski, B. La Cour, L. Yeh (Eds.), Proceedings - IEEE Quantum Week 2024, QCE 2024, Vol. 3, Institute of Electrical and Electronics Engineers Inc, 2024, pp. 82–88, http://dx.doi.org/10.1109/QCE60285.2024.20462. [51] A.S. Petrenko, S.S. Petrenko, K.A. Makoveichuk, A.V. Olifirov, H. Krachunov, Security threat model based on analysis of foreign national quantum programs, CEUR Work. Proc. 3057 (2021) 11–25, URL: https://ceur-ws.org/Vol-3057/paper2.pdf. [52] M. Sabiteka, X. Yu, C. Sun, Toward sustainable education: A contextualized model for educational technology adoption for developing countries, Sustainability 17 (8) (2025) 3592, http://dx.doi.org/10.3390/su17083592. [53] D.K. Evans, A. Popova, Education in Africa: What Are We Learning? Working Paper 542, Centre for Global Development, 2020, URL: https://www.cgdev.org/sites/default/files/education-africa-what-are-we-learning.pdf. [54] L. Nita, L. Mazzoli Smith, N. Chancellor, H. Cramman, The challenge and opportunities of quantum literacy for future education and transdisciplinary problem-solving, Res. Sci. Technol. Educ. 41 (2) (2023) 564–580, http://dx.doi.org/10.1080/02635143.2021.1920905. [55] P. Bitzenbauer, M.S. Ubben, D. Anttila, M. Bondani, M.L. Chiofalo, S. Faletic, S. Goorney, F. Greinert, R. Müller, Z. Koupilová, M. Malgieri, A. Merzel, H.J. Pol, G. Pospiech, H.K.E. Stadermann, E.Y. Weissman, K. Krijtenburg-Lewerissa, Expert perspectives on the future of quantum physics education at the secondary level, Phys. Rev. Phys. Educ. Res. 21 (2025) 020157, http://dx.doi.org/10.1103/d1yx-kfsz. M. Gragera Garcés, L. Gómez Orzechowski, J.F. Rodríguez Hernández, Introducing quantum computing to high-school curricula: A global perspective, 2025, arXiv:2505.14809. V.V. Nautiyal, E.E.P. Salvador, X.R.O. Braña, R. Shastri, V. Singh, A. Tyagi, B. Vidhani, V. Prasad, Enhancing high school students’ understanding and attitude towards quantum mechanics through discipline-culture framework and cognitive apprenticeship, EPJ Quantum Technol. 12 (1) (2025) 104, http://dx.doi.org/10.1140/epjqt/s40507-025-00407-5. S. Khodaeifaal, Curriculum, Pedagogy, and the Practical: From Waves to Quantum Physics (Ph.D. thesis), Simon Fraser University, 2022, URL: https://summit.sfu.ca/item/34969. S. Khodaeifaal, Updated and adapted curriculum and pedagogy of physics with the fourth industrial revolution and quantum revolution: From waves principles to quantum mechanics fundamentals, in: 2022 IEEE International Conference on Quantum Computing and Engineering , QCE, 2022, pp. 653–668, http://dx.doi.org/10.1109/QCE53715.2022.00088. D.L. Tucker, Leveraging dual enrollment programs to expand secondary education in quantum computation, in: 2023 IEEE International Conference on Quantum Computing and Engineering, QCE, Vol. 03, 2023, pp. 10–14, http://dx.doi.org/10.1109/QCE57702.2023.20319. M.I. Mihailescu, S.L. Nita, V. Marascu, M. Rogobete, Integrating quantum computing into new learning technologies, in: EDULEARN24 Proceedings, in: 16th International Conference on Education and New Learning Technologies, IATED, 2024, pp. 0022–0031, http://dx.doi.org/10.21125/edulearn.2024.0022. L.V. Lehka, Methods of Teaching the Basics of Quantum Informatics to Lyceum Students (PhD dissertation), Kryvyi Rih State Pedagogical University, Kryvyi Rih, Ukraine, 2021, http://dx.doi.org/10.31812/123456789/7042, Speciality 13.00.02 — Theory and Methods of Teaching (Informatics). L.V. Lehka, S.V. Shokaliuk, Hardware and software tools for teaching the basics of quantum informatics to lyceum students, Educ. Dimens. 4 (2021) 102–121, http://dx.doi.org/10.31812/educdim.v56i4.4440. F.S. Malik, O. Terzidis, A hybrid framework for creating artificial intelligence-augmented systematic literature reviews, Manag. Rev. Q. (2025) http://dx.doi.org/10.1007/s11301-025-00522-8. J. Logan, J. Webb, N.K. Singh, N. Tanner, K. Barrett, M. Wall, B. Walsh, A.P. Ayala, Scoping review search practices in the social sciences: A scoping review, Res. Synth. Methods 15 (6) (2024) 950–963, http://dx.doi.org/10.1002/jrsm.1742. L.V. Lehka, S.V. Shokaliuk, Y.Y. Bohunenko, Propaedeutics of quantum informatics in institutions of general secondary education, Phys. Math. Educ. 28 (2) (2021) 51–56, http://dx.doi.org/10.31110/2413-1571-2021-028-2-009. F.M. Mateko, Digital technologies and economic development in Zimbabwe, Dev. (Basingstoke) 67 (1) (2024) 85–90, http://dx.doi.org/10.1057/s41301-024-00400-y. H. Amber, B.B. Chichaibelu, Narrowing the gender digital divide in Pakistan: Mobile phone ownership and female labor force participation, Rev. Dev. Econ. 27 (3) (2023) 1354–1382, http://dx.doi.org/10.1111/rode.12994. A. Forbes, F. Petruccione, F.S. Roux, Toward a quantum future for South Africa, AVS Quantum Sci. 3 (4) (2021) 040501, http://dx.doi.org/10.1116/5.0060426. Department of Science and Technology, Cabinet approves National Quantum Mission to Accelerate Quantum Technology-Led Economic Growth, Press Information Bureau, Government of India, 2023, URL: https://pib.gov.in/PressReleaseIframePage.aspx?PRID=1917861. C. Chakraborty, M. Bhattacharya, S. Pal, G. Agoramoorthy, India’s quantum move: From budget allocation, action and future challenges, Mol. Biotechnol. 66 (12) (2024) 3449–3461, http://dx.doi.org/10.1007/s12033-023-00975-w. J. Kirchherr, F. Urban, Technology transfer and cooperation for low carbon energy technology: Analysing 30 years of scholarship and proposing a research agenda, Energy Policy 119 (2018) 600–609, http://dx.doi.org/10.1016/j.enpol.2018.05.001. [73] D.R. Čubrilo, Z.L. Crvenković, D. Obadović, M. Segedinac, The application of multimedia and its effects on teaching physics in secondary school, Zb. Inst. Pedagos. Istraz. 46 (2) (2014) 339–363, http://dx.doi.org/10.2298/ZIPI1402339R. [74] E. Marshman, C. Singh, QuILTs: Validated teaching–learning sequences for helping students learn quantum mechanics, in: J. Borg Marks, P. Galea, S. Gatt, D. Sands (Eds.), Physics Teacher Education: What Matters? Springer International Publishing, Cham, 2022, pp. 15–35, http://dx.doi.org/10.1007/978-3-031-06193-6_2. [75] A. Merzel, E.Y. Weissman, N. Katz, I. Galili, Toward teacher training for teaching quantum physics in high school, in: J. Borg Marks, P. Galea, S. Gatt, D. Sands (Eds.), Physics Teacher Education: What Matters? Springer International Publishing, Cham, 2022, pp. 161–172, http://dx.doi.org/10.1007/978-3-031-06193-6_12. [76] K. Tóth, Integrating Dirac approach to quantum mechanics into physics teacher education, AIP Conf. Proc. 2843 (1) (2023) 050011, http://dx.doi.org/10.1063/5.0150429. [77] F. Hennig, K. Tóth, J. Veith, P. Bitzenbauer, Introducing quantum physics concepts and Dirac notation at the secondary school level: Insights into student reasoning from an acceptance survey, Phys. Rev. Phys. Educ. Res. 20 (2) (2024) 020147, http://dx.doi.org/10.1103/PhysRevPhysEducRes.20.020147. [78] S. Montagnani, A. Stefanel, M.L.M. Chiofalo, L. Santi, M. Michelini, An experiential program on the foundations of quantum mechanics for final-year high-school students, Phys. Educ. 58 (3) (2023) 035003, http://dx.doi.org/10.1088/1361-6552/acb5da. [79] K.L. Bates, C. Hung, J. Jordan Steel, Biotechnology immersion program: professional development where the participants do the preparation, teaching, and outreach to maximize learning gains, FEMS Microbiol. Lett. 369 (1) (2022) fnac111, http://dx.doi.org/10.1093/femsle/fnac111. [80] S. Krainara, S. Chatmaneerungcharoen, Building a professional learning community with team endeavors while creating elementary-focused STEM-integrated lesson plans, J. Phys.: Conf. Ser. 1340 (1) (2019) 012015, http://dx.doi.org/10.1088/1742-6596/1340/1/012015. [81] B.J.S. Barron, D.L. Schwartz, N.J. Vye, A. Moore, A. Petrosino, L. Zech, J.D. Bransford, Doing with understanding: Lessons from research on problem- and project-based learning, J. Learn. Sci. 7 (3–4) (1998) 271–311, http://dx.doi.org/10.1080/10508406.1998.9672056. [82] G.A. Brown, J. Bull, M. Pendlebury, Assessing Student Learning in Higher Education, Routledge, London, 1997, http://dx.doi.org/10.4324/9781315004914. [83] C. Makalima, Y. Gwala, L. Makasi, A. Baza, A.M. Lwanga, Co-designing an integrated digital education portal for the eastern cape rural learners, in: Extended Abstracts of the 2023 CHI Conference on Human Factors in Computing Systems, in: CHI EA ’23, Association for Computing Machinery, New York, NY, USA, 2023, p. 579, http://dx.doi.org/10.1145/3544549.3583839. [84] C. Heymans, M. Schur, National and provincial PPPs: Issues of supervision and accountability, Dev. South. Afr. 16 (4) (1999) 607–622, http://dx.doi.org/10.1080/03768359908440104. [85] C.M. Stracke, I.-A. Chounta, W. Holmes, A. Tlili, A. Bozkurt, A standardised PRISMA-based protocol for systematic reviews of the scientific literature on artificial intelligence and education (AI&ED), J. Appl. Learn. Teach. 6 (2) (2023) 64–70, http://dx.doi.org/10.37074/jalt.2023.6.2.38. [86] G. Song, X. Wang, R. Ghannam, Immersive quantum: A systematic literature review of XR in quantum technology education, Comput. Educ.: X Real. 5 (2024) 100087, http://dx.doi.org/10.1016/j.cexr.2024.100087. [87] S. Im, M. Kwon, High school students’ preference for physics and interest in learning quantum physics, New Phys.: Sae Mulli 72 (10) (2022) 769–781, http://dx.doi.org/10.3938/NPSM.72.769. [88] N.V. Rashevska, S.O. Semerikov, From philosophical immersion to digital reality: A unified theoretical framework for understanding and classifying immersive technologies in education, Comput. Educ.: X Real. 8 (2026) 100147, http://dx.doi.org/10.1016/j.cexr.2026.100147. [89] V. Borish, H. Lewandowski, Affordances and challenges of incorporating a remote, cloud-accessible quantum experiment into undergraduate courses, Phys. Rev. Phys. Educ. Res. 21 (1) (2025) 010133, http://dx.doi.org/10.1103/PhysRevPhysEducRes.21.010133.
URI (Уніфікований ідентифікатор ресурсу): https://doi.org/10.1016/j.sftr.2026.101965
http://ds.knu.edu.ua/jspui/handle/123456789/9314
ISSN: 2666-1888
Розташовується у зібраннях:Кафедра професійної та соціально-гуманітарної освіти

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