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References
Alharbi, N., Osman, R., & Wismeijer, D. (2016a). Effects of build direction on the mechanical
properties of 3D-printed complete coverage interim dental restorations. Journal of Prosthetic
Dentistry, 115(6), 760–767. https://doi.org/10.1016/j.prosdent.2015.12.002.
Alharbi, N., Osman, R., & Wismeijer, D. (2016b). Factors influencing the dimensional accuracy of 3D-printed full-coverage dental restorations using stereolithography technology. The
International Journal of Prosthodontics, 29(5), 503–510. https://doi.org/10.11607/ijp.4835.
Alhareb, A. O., Akil, H. M., & Ahmad, Z. A. (2017). Impact strength, fracture toughness and hardness improvement of PMMA denture base through addition of nitrile rubber/ceramic fillers.
Saudi Journal for Dental Research, 8(1–2), 26–34. https://doi.org/10.1016/j.sjdr.2016.04.004.
Allen, S. (1994). On the computation of part orientation using support structures in layered manufacturing. Solid Freeform Fabrication Proceedings, September, 1994, 259–269.
Anadioti, E., Kane, B., & Soulas, E. (2018). Current and emerging applications of 3D printing
in restorative dentistry. Current Oral Health Reports, 5(2), 133–139. https://doi.org/10.1007/
s40496-018-0181-3.
Anderson, J., Wealleans, J., & Ray, J. (2018). Endodontic applications of 3D printing. International
Endodontic Journal, 51(9), 1005–1018. https://doi.org/10.1111/iej.12917.
Barazanchi, A., Li, K. C., Al-Amleh, B., Lyons, K., & Waddell, J. N. (2017). Additive technology:
Update on current materials and applications in dentistry. Journal of Prosthodontics, 26(2),
156–163. https://doi.org/10.1111/jopr.12510.
Bartellas, M., Tibbo, J., Angel, D., Rideout, A., & Gillis, J. (2018). Three-dimensional printing:
A novel approach to the creation of obturator prostheses following palatal resection for malignant palate tumors. Journal of Craniofacial Surgery, 29(1), e12–e15. https://doi.org/10.1097/
scs.0000000000003987.
Bassi, M., Bedini, R., Pecci, R., Ioppolo, P., Laritano, D., & Carinci, F. (2016). Mechanical properties of abutments: Resin-bonded glass fiber-reinforced versus titanium. The International
Journal of Prosthodontics, 29(1), 77–79. https://doi.org/10.11607/ijp.4169.
Beuer, F., Steff, B., Naumann, M., & Sorensen, J. A. (2008). Load-bearing capacity of all-ceramic
three-unit fixed partial dentures with different computer-aided design (CAD)/computer-aided
manufacturing (CAM) fabricated framework materials. European Journal of Oral Sciences,
116(4), 381–386. https://doi.org/10.1111/j.1600-0722.2008.00551.x.
Bohner, M., Tadier, S., van Garderen, N., de Gasparo, A., Döbelin, N., & Baroud, G. (2013).
Synthesis of spherical calcium phosphate particles for dental and orthopedic applications.
Biomatter, 3(2), e25103. https://doi.org/10.4161/biom.25103.
Braian, M., Bruyn, H., Fransson, H., Christersson, C., & Wennerberg, A. (2014). Tolerance measurements on internal- and external-hexagon implants. The International Journal of Oral &
Maxillofacial Implants, 29(4), 846–852. https://doi.org/10.11607/jomi.3242.
Braian, M., Jimbo, R., & Wennerberg, A. (2016). Production tolerance of additive manufactured
polymeric objects for clinical applications. Dental Materials, 32(7), 853–861. https://doi.
org/10.1016/j.dental.2016.03.020.
Campbell, T. A., Tibbits, B. G. S., & Garrett, B. (2014). The next wave: 4D printing programming
the material world. Washington, DC: Atlantic Council, Technical Report.
Carve, M., & Wlodkowic, D. (2018). 3D-printed chips: Compatibility of additive manufacturing
photopolymeric substrata with biological applications. Micromachines, 9(2), 91. https://doi.
org/10.3390/mi9020091.
Cavalli, V., Giannini, M., & Carvalho, R. M. (2004). Effect of carbamide peroxide bleaching
agents on tensile strength of human enamel. Dental Materials, 20(8), 733–739. https://doi.
org/10.1016/j.dental.2003.10.007.
Chen, Q., Mangadlao, J. D., Wallat, J., De Leon, A., Pokorski, J. K., & Advincula, R. C. (2017).
3D printing biocompatible polyurethane/poly(lactic acid)/graphene oxide nanocomposites:
Anisotropic properties. ACS Applied Materials and Interfaces, 9(4), 4015–4023. https://doi.
org/10.1021/acsami.6b11793.
C. M. Cristache and E. E. Totu
References
Alharbi, N., Osman, R., & Wismeijer, D. (2016a). Effects of build direction on the mechanical
properties of 3D-printed complete coverage interim dental restorations. Journal of Prosthetic
Dentistry, 115(6), 760–767. https://doi.org/10.1016/j.prosdent.2015.12.002.
Alharbi, N., Osman, R., & Wismeijer, D. (2016b). Factors influencing the dimensional accuracy of 3D-printed full-coverage dental restorations using stereolithography technology. The
International Journal of Prosthodontics, 29(5), 503–510. https://doi.org/10.11607/ijp.4835.
Alhareb, A. O., Akil, H. M., & Ahmad, Z. A. (2017). Impact strength, fracture toughness and hardness improvement of PMMA denture base through addition of nitrile rubber/ceramic fillers.
Saudi Journal for Dental Research, 8(1–2), 26–34. https://doi.org/10.1016/j.sjdr.2016.04.004.
Allen, S. (1994). On the computation of part orientation using support structures in layered manufacturing. Solid Freeform Fabrication Proceedings, September, 1994, 259–269.
Anadioti, E., Kane, B., & Soulas, E. (2018). Current and emerging applications of 3D printing
in restorative dentistry. Current Oral Health Reports, 5(2), 133–139. https://doi.org/10.1007/
s40496-018-0181-3.
Anderson, J., Wealleans, J., & Ray, J. (2018). Endodontic applications of 3D printing. International
Endodontic Journal, 51(9), 1005–1018. https://doi.org/10.1111/iej.12917.
Barazanchi, A., Li, K. C., Al-Amleh, B., Lyons, K., & Waddell, J. N. (2017). Additive technology:
Update on current materials and applications in dentistry. Journal of Prosthodontics, 26(2),
156–163. https://doi.org/10.1111/jopr.12510.
Bartellas, M., Tibbo, J., Angel, D., Rideout, A., & Gillis, J. (2018). Three-dimensional printing:
A novel approach to the creation of obturator prostheses following palatal resection for malignant palate tumors. Journal of Craniofacial Surgery, 29(1), e12–e15. https://doi.org/10.1097/
scs.0000000000003987.
Bassi, M., Bedini, R., Pecci, R., Ioppolo, P., Laritano, D., & Carinci, F. (2016). Mechanical properties of abutments: Resin-bonded glass fiber-reinforced versus titanium. The International
Journal of Prosthodontics, 29(1), 77–79. https://doi.org/10.11607/ijp.4169.
Beuer, F., Steff, B., Naumann, M., & Sorensen, J. A. (2008). Load-bearing capacity of all-ceramic
three-unit fixed partial dentures with different computer-aided design (CAD)/computer-aided
manufacturing (CAM) fabricated framework materials. European Journal of Oral Sciences,
116(4), 381–386. https://doi.org/10.1111/j.1600-0722.2008.00551.x.
Bohner, M., Tadier, S., van Garderen, N., de Gasparo, A., Döbelin, N., & Baroud, G. (2013).
Synthesis of spherical calcium phosphate particles for dental and orthopedic applications.
Biomatter, 3(2), e25103. https://doi.org/10.4161/biom.25103.
Braian, M., Bruyn, H., Fransson, H., Christersson, C., & Wennerberg, A. (2014). Tolerance measurements on internal- and external-hexagon implants. The International Journal of Oral &
Maxillofacial Implants, 29(4), 846–852. https://doi.org/10.11607/jomi.3242.
Braian, M., Jimbo, R., & Wennerberg, A. (2016). Production tolerance of additive manufactured
polymeric objects for clinical applications. Dental Materials, 32(7), 853–861. https://doi.
org/10.1016/j.dental.2016.03.020.
Campbell, T. A., Tibbits, B. G. S., & Garrett, B. (2014). The next wave: 4D printing programming
the material world. Washington, DC: Atlantic Council, Technical Report.
Carve, M., & Wlodkowic, D. (2018). 3D-printed chips: Compatibility of additive manufacturing
photopolymeric substrata with biological applications. Micromachines, 9(2), 91. https://doi.
org/10.3390/mi9020091.
Cavalli, V., Giannini, M., & Carvalho, R. M. (2004). Effect of carbamide peroxide bleaching
agents on tensile strength of human enamel. Dental Materials, 20(8), 733–739. https://doi.
org/10.1016/j.dental.2003.10.007.
Chen, Q., Mangadlao, J. D., Wallat, J., De Leon, A., Pokorski, J. K., & Advincula, R. C. (2017).
3D printing biocompatible polyurethane/poly(lactic acid)/graphene oxide nanocomposites:
Anisotropic properties. ACS Applied Materials and Interfaces, 9(4), 4015–4023. https://doi.
org/10.1021/acsami.6b11793.
C. M. Cristache and E. E. Totu
