1. Alaboodi, A. S., Sivasankaran, S. (2018). Experimental design and investigation on the mechanical behavior of novel 3D printed biocompatibility polycarbonate scaffolds for medical applications. Journal of Materials Processing Technology, 35, 479–491. 2. Ballistic Resistance of Personal Body Armor (2008). NIJ Standard – 0101.04. Washington D.C.: National Institute of Justice. 3. Cao, K., Wang, Y., Wang, Y. (2014). Experimental investigation and modeling of the tension behavior of polycarbonate with temperature effects from low to high strain rates. International Journal of Solids and Structures, 51(13), 2539–2548. 4. Cui, S., Borgemenke, J., Liu, Z., Li, Y. (2019). Recent advances of ‘soft’bio-polycarbonate plastics from carbon dioxide and renewable bio-feedstocks via straightforward and innovative routes. Journal of Cleaner Production, 34, 40–52. 5. Dorogoy, A., Rittel, D., Brill, A. (2011). Experimentation and modeling of inclined ballistic impact in thick polycarbonate plates. International Journal of Impact Engineering, 38(10), 804–814. 6. Ganguly, A., Channe, P., Jha, R., Mitra, S., Saha, S. (2021). Review on transesterification in polycarbonate-poly(butylene terephthalate) blend. Journal of Polymer Engineering, 61(3), 650–661. 7. Hasanov, S., Gupta, A., Nasirov, A., Fidan, I. (2020). Mechanical characterization of functionally graded materials produced by the fused filament fabrication process. Journal of Materials Processing Technology, 58, 923–935. 8. Jadhav, V. D., Patil, A. J., Kandasubramanian, B. (2022). Polycarbonate nanocomposites for high impact applications. (In) S. Mallakpow, C. M. Hussain, Handbook of consumer nanoproducts (pp. 257–281). Springer. 9. Jang, K.-S. (2018). Mechanics and rheology of basalt fiber-reinforced polycarbonate composites. Journal of Polymers, 147, 133–141. 10. Kausar, A. (2018). A review of filled and pristine polycarbonate blends and their applications. Journal of Polymer Films and Sheeting, 34(1), 60–97. 11. Khan, S., Joshi, K., Deshmukh, S. (2022). A comprehensive review on effect of printing parameters on mechanical properties of FDM printed parts. Materials Today Proceedings, 50, 2119–2127. 12. Landi, L., Logozzo, S., Morettini, G., Valigi, M. C. (2022). Withstanding capacity of machine guards: evaluation and validation by 3D scanners. Applied Sciences, 12(4), 2098. 13. Li, K., Goldsmith, W. J. (1997). Perforation of steel and polycarbonate plates by tumbling projectiles. International Journal of Solids and Structures, 34(35–36), 4581–4596. 14. Moisa, S., Landsberg, G., Rittel, D., Halary, J. L. (2005). Hysteretic thermal behavior of amorphous semi-aromatic polyamides. Journal of Polymer Science. Part B: Polymer Physics, 46(25), 11870–11875. 15. Moradi, M., Moghadam, M. K., Shamsborhan, M., Beiranvand, Z. M., Rasouli, A., Vahdati, M., Bakhtiari, A., Bodaghi, M. (2021). Simulation, statistical modeling, and optimization of CO2 laser cutting process of polycarbonate sheets. Optik, 225, 164932. 16. Nomai, J., Schlarb, A. K. (2019). Effects of nanoparticle size and concentration on optical, toughness, and thermal properties of polycarbonate. Journal of Applied Polymer Science, 136(23), 47634. https://doi.org/10.1002/app.47634 17. Park, S. J., Lee, J. E., Lee, H. B., Park, J., Lee, N.-K., Son, Y., Park, S.-H. (2020). 3D printing of bio-based polycarbonate and its potential applications in ecofriendly indoor manufacturing. Additive Manufacturing, 31, 100974. https://doi.org/10.1016/j.addma.2019.100974 18. Prajapati, A., Rohatgi, R., Kumar, S. (2022). Forensic significance of perforation pattern in polycarbonate sheet against 9 ×19 mm projectile. Journal of Forensic Sciences, 67(1), 328–336. https://doi.org/10.1111/1556-4029.15037 19. Raj, P., Kumar, R. (2021). A brief review: study on mechanical properties of polycarbonate with different nanofiller materials. (In) T. Rajmokaw, K. Palanikumar, J. P. Davim (Eds.), Advances in Materials and Manufacturing Engineering (pp. 285–291). Springer. https://doi.org/10.1007/978-981-15-9362-7_37 20. Ravi-Chandar, K. (1995). On the failure mode transitions in polycarbonate under dynamic mixed-mode loading. International Journal of Solids and Structures, 32(6–7), 925–938. https://doi.org/10.1016/0020-7683(94)00128-6 21. Rittel, D. (2000). Experimental investigation of transient thermoplastic effects in dynamic fracture. International Journal of Solids and Structures, 37(21), 2901–2913. https://doi.org/10.1016/S0020-7683(99)00257-9 22. Rittel, D., Levin, R. (1998). Mode-mixity and dynamic failure mode transitions in polycarbonate. Mechanics of Materials, 30(3), 197–216. https://doi.org/10.1016/S0167-6636(98)00006-7 23. Shah, Q. H. (2009). Impact resistance of a rectangular polycarbonate armor plate subjected to single and multiple impacts. International Journal of Impact Engineering, 36(9), 1128–1135. https://doi.org/10.1016/j.ijimpeng.2009.02.001 24. Shah, Q. H., Abakr, Y. A. (2008). Effect of distance from the support on the penetration mechanism of clamped circular polycarbonate armor plates. International Journal of Impact Engineering, 35(11), 1244–1250. https://doi.org/10.1016/j.ijimpeng.2007.10.008 25. Wright, S., Fleck, N., Stronge, W. (1993). Ballistic impact of polycarbonate –an experimental investigation. International Journal of Impact Engineering, 13(1), 1–20. https://doi.org/10.1016/0734-743X(93)90058-F 26. Wright, S., Huang, Y., Fleck, N. (1992). Deep penetration of polycarbonate by a cylindrical punch. Mechanics of Materials, 13(4), 277–284. https://doi.org/10.1016/0167-6636(92)90041-R 27. Zhang, J., Koubaa, A., Xing, D., Liu, W., Wang, H., Wang, X., Wang, Q. (2020). High-performance lignocellulose/polycarbonate biocomposites fabricated by in situ reaction: Structure and properties. Composites. Part A: Applied Science and Manufacturing, 138, 106068. https://doi.org/10.1016/j.compositesa.2020.106068 28. Zhou, J., Zhang, X., Zhang, X., Zhang, W., Li, J., Chen, Y ., Liu, H., Yan, Y. (2022). Mechanical properties of tensile cracking in indium tin oxide films on polycarbonate substrates. Coatings, 12(4), 538. https://doi.org/10.3390/coatings12040538 29. Zhu, H., Xie, Y., Yang, B., Zhang, B., Liu, X., Lu, L. (2021). Impact and flexural properties studies on carbon fiber reinforced epoxy/polycarbonate hybrid laminates with different stacking sequence. Advanced Engineering Materials, 23(3), 2000934. https://doi.org/10.1002/adem.202000934