Aamer, H. S., Hamza, A. F., Khairy, M., & Ghonimi, I. (2020). Biomimicry as a sustainable design methodology for building behaviour. Engineering Research Journal, 46(1), 191–201.
Bader, F., Halabi Associate Professor, M., Mohsen Assistant Professor, H., and Youssef Associate Professor, M. (2021). USE OF BIOMIMICRY DESIGN APPROACH IN CONSTRUCTING SUSTAINABLE RESILIENT STRUCTURES (CASE STUDY: PORT OF BEIRUT). BAU Journal-Creative Sustain. Dev. 2 (2). doi:10.54729/2789-8334.1041
Badarnah, L. (2017). Form follows environment: Biomimetic approaches to building envelope design for environmental adaptation. Buildings, 10(4), 42.
Bar-Cohen, Y. (2012). Biomimetics: Nature-based innovation. CRC Press.
Barthlott, W., & Neinhuis, C. (1997). Purity of the sacred lotus, or escape from contamination in biological surfaces. Planta, 202(1), 1–8.
Benyus, J. M. (1997).Biomimicry: Innovation Inspired by Nature. Harper Perennial.
Chayaamor-Heil, N. (2023). From bioinspiration to biomimicry in architecture: opportunities and challenges. Encyclopedia 3 (1), 202–223. doi:10.3390/encyclopedia3010014
Dicks H, Bertrand-Krajewski J-L, Ménézo C, Rahbe Y, Pierron J and Harpet C 2021 Applying Biomimicry to Cities: The Forest as Model for Urban Planning and Design pp 271–88.
Dixit, S., and Stefańska, A. (2023). Bio-logic: a review of the biomimetic application in architectural and structural design. Ain Shams Eng. J. 14 (1), 101822. Ain Shams University, Feb. 01. doi:10.1016/j.asej.2022.101822
Ferwati, M. S., Alsuwaidi, M., Shafaghat, A., and Keyvanfar, A. (2019). Employing biomimicry in Urban metamorphosis seeking for sustainability: case studies. Archit. City Environ. 14 (40), 133–162. doi:10.5821/ace.14.40.6460
Fratzl, P., & Barth, F. G. (2009). Biomaterial systems for mechanosensing and actuation. Nature, 462(7272), 442–448.
Frontiers in Education. (2024). Augmented Reality for STEM Education: Benefits, Challenges, and Future Research Directions.
IUCN (2020b). Guidance for using the IUCN global standard for nature-based solutions. 1. Gland, Switzerland: IUCN. IUCN, International Union for Conservation of Nature. doi:10.2305/IUCN.CH.2020.09.en
Jamei, E., and Vrcelj, Z. (2021). Biomimicry and the built environment: learning from nature’s solutions. Appl. Sci. Switz. 11 (16), 7514. MDPI AG, Aug. 02. doi:10.3390/app11167514
Jain A, Cummings A, Lim G S, Shah I, Haan L, Teo L, Fadnavis M, Toh M M, Hays N, Dhuri R and Swaminathan S 2023 Biomimicry for tropical building skins, a design toolkit to manage thermal comfort using Nature’s genius (Singapore: bioSEA Pte. Ltd.)
Judith Oginga, M. (2022). Envisaging the future of cities. New York: United Nations Publication.
Ju, J., Bai, H., Zheng, Y., Zhao, T., Fang, R., & Jiang, L. (2012). A multi-structural and multi-functional integrated fog collection system in cactus. Nature Communications, 3, 1247.
Kennedy, E., Fecheyr-Lippens, D., Hsiung, B.-K., Niewiarowski, P. H., & Kolodziej, M. (2015). Biomimicry: A path to sustainable innovation.Design Issues, 31(3), 66–73.
Koch, K., Bhushan, B., & Barthlott, W. (2009). Multifunctional surface structures of plants: An inspiration for biomimetics. Progress in Materials Science, 54(2), 137–178.
Landrum, N. E., and Mead, T. (2022). Sustainability in the biom* Singapore. Springer, 1–15. doi:10.1007/978-981-19-1812-4_1/COVER
Matthews, J., Ocampo, E., and Cruz, D. (2022). Integrating nature-based solutions for climate change adaptation and disaster risk management: a practitioner’s guide.
Madmar. S, Zaly Saleh. M, Ak Mattusin. A.M.R, Ilhan. A.A. (2023). Applications of biomimicry to urban planning: interrogating the relevance of emerging approaches to design cities by drawing inspiring from nature. IOP Conf. Series: Earth and Environmental Science, doi:10.1088/1755-1315/1274/1/012015
Nørgaard, T., Dacke, M., & Warrant, E. J. (2012). Fog-basking behaviour and water collection efficiency in Namib Desert beetles. Frontiers in Zoology, 9, 9. https://doi.org/10.1186/1742-9994-9-9.
Oguntona, O. A., and Aigbavboa, C. O. (2023a). Nature inspiration, imitation, and emulation: biomimicry thinking path to sustainability in the construction industry. Front. Built Environ. 9, 1085979. doi:10.3389/fbuil.2023.1085979
Oguntona, O. A., and Aigbavboa, C. O. (2023b). Nature inspiration, imitation, and emulation: biomimicry thinking path to sustainability in the construction industry. Front. Built Environ. 9. doi:10.3389/fbuil.2023.1085979.
Othmani, N. I., Mohamed, S. A., Abdul Hamid, N. H., Ramlee, N., Yeo, L. B., and Mohd Yunos, M. Y. (2022). Reviewing biomimicry design case studies as a solution to sustainable design. Environ. Sci. Pollut. Res. 29 (46), 69327–69340. Springer Science and Business Media Deutschland GmbH. doi:10.1007/s11356-022-22342-z.
Sowińska-Świerkosz, B., and García, J. (2022). What are Nature-based solutions (NBS)? Setting core ideas for concept clarification. Nature-Based Solutions 2, 100009. doi:10.1016/j.nbsj.2022.100009
Turner, J. S., & Soar, R. C. (2008). Beyond biomimicry: What termites can tell us about realizing the living building. First International Conference on Industrialized, Intelligent Construction.
Urdinola-Serna, D., and diseño, B. y (2018). Primera Edición, 2018. Proyecto: repertorio de superficies y texturas bioinspiradas a través de experimentaciones morfológicas con tecnología de fabricación digital. Radicado 601B-05/16-35. Available at: https://www.upb.edu.co.
Vincent, J. F. V., Bogatyreva, O. A., Bogatyrev, N. R., Bowyer, A., & Pahl, A.-K. (2006). Biomimetics: its practice and theory.Journal of the Royal Society Interface, 3(9), 471–482.