163
Rokaya, D., Srimaneepong, V., Sapkota, J., Qin, J., Siraleartmukul, K., & Siriwongrungson,
V. (2018). Polymeric materials and films in dentistry: An overview. Journal of Advanced
Research, 14, 25–34. https://doi.org/10.1016/j.jare.2018.05.001.
Ronca, A., Maiullari, F., Milan, M., Pace, V., Gloria, A., Rizzi, R., & Ambrosio, L. (2017). Surface
functionalization of acrylic based photocrosslinkable resin for 3D printing applications.
Bioactive Materials, 2(3), 131–137. https://doi.org/10.1016/j.bioactmat.2017.04.002.
Roseti, L., Parisi, V., Petretta, M., Cavallo, C., Desando, G., Bartolotti, I., & Grigolo, B. (2017).
Scaffolds for bone tissue engineering: State of the art and new perspectives. Materials Science
and Engineering C, 78, 1246–1262. https://doi.org/10.1016/j.msec.2017.05.017.
Sandler, J., Werner, P., Shaffer, M. S. P., Demchuk, V., Altstädt, V., & Windle, A. H. (2002). Carbonnanofibre- reinforced poly(ether ether ketone) composites. Composites Part A: Applied Science
and Manufacturing, 33(8), 1033–1039. https://doi.org/10.1016/s1359-835x(02)00084-2.
Schmidlin, P. R., Stawarczyk, B., Wieland, M., Attin, T., Hämmerle, C. H. F., & Fischer, J. (2010).
Effect of different surface pre-treatments and luting materials on shear bond strength to
PEEK. Dental Materials, 26(6), 553–559. https://doi.org/10.1016/j.dental.2010.02.003.
Seol, Y. J., Kang, H. W., Lee, S. J., Atala, A., & Yoo, J. J. (2014). Bioprinting technology and
its applications. European Journal of Cardio-Thoracic Surgery, 46(3), 342–348. https://doi.
org/10.1093/ejcts/ezu148.
Skinner, H. B. (2006). Composite technology for total hip arthroplasty. Clinical Orthopaedics
and Related Research, (235), 224–236. https://doi.org/10.1097/00003086-198810000-00022.
Stansbury, J. W., & Idacavage, M. J. (2016). 3D printing with polymers: Challenges among
expanding options and opportunities. Dental Materials, 32(1), 54–64. https://doi.org/10.1016/j.
dental.2015.09.018.
Stawarczyk, B., Ender, A., Trottmann, A., Özcan, M., Fischer, J., & Hämmerle, C. H. F. (2012).
Load-bearing capacity of CAD/CAM milled polymeric three-unit fixed dental prostheses: Effect of aging regimens. Clinical Oral Investigations, 16(6), 1669–1677. https://doi.
org/10.1007/s00784-011-0670-4.
Stawarczyk, B., Beuer, F., Wimmer, T., Jahn, D., Sener, B., Roos, M., & Schmidlin, P. R. (2013).
Polyetheretherketone – A suitable material for fixed dental prostheses? Journal of Biomedical
Materials Research – Part B Applied Biomaterials, 101(7), 1209–1216. https://doi.org/10.1002/
jbm.b.32932.
Stawarczyk, B., Eichberger, M., Uhrenbacher, J., Wimmer, T., Edelhoff, D., & Schmidlin,
P. R. (2015). Three-unit reinforced polyetheretherketone composite FDPs: Influence of fabrication method on load-bearing capacity and failure types. Dental Materials Journal, 34(1),
7–12. https://doi.org/10.4012/dmj.2013-345.
Tahmaseb, A., Wismeijer, D., Coucke, W., & Derksen, W. (2014). Computer technology applications in surgical implant dentistry: A systematic review. The International Journal of Oral &
Maxillofacial Implants, 29(Suppl), 25–42. https://doi.org/10.11607/jomi.2014suppl.g1.2.
Tan, K. H., Chua, C. K., Leong, K. F., Naing, M. W., & Cheah, C. M. (2005). Fabrication and
characterization of three-dimensional poly(ether-ether-ketone)/-hydroxyapatite biocomposite scaffolds using laser sintering. Proceedings of the Institution of Mechanical Engineers,
Part H: Journal of Engineering in Medicine, 219(3), 183–194. https://doi.org/10.124
3/095441105x9345.
Timofeeva, L., & Kleshcheva, N. (2011). Antimicrobial polymers: Mechanism of action, factors
of activity, and applications. Applied Microbiology and Biotechnology, 89(3), 475–492. https://
doi.org/10.1007/s00253-010-2920-9.
Torsello, F., Di Torresanto, V. M., Ercoli, C., & Cordaro, L. (2008). Evaluation of the marginal precision of one-piece complete arch titanium frameworks fabricated using five different methods
for implant-supported restorations. Clinical Oral Implants Research, 19(8), 772–779. https://
doi.org/10.1111/j.1600-0501.2008.01555.x.
Totu, E. E., Cristache, C. M., Voicila, E., Oprea, O., Agir, I., Tavukcuoglu, O., & Didilescu,
A. C. (2017a). On physical and chemical characteristics of poly(methylmethacrylate) nanocomposites for dental applications. I. Materiale Plastice, 54(4), 666–672.
7 3D Printing-Processed Polymers for Dental Applications
Rokaya, D., Srimaneepong, V., Sapkota, J., Qin, J., Siraleartmukul, K., & Siriwongrungson,
V. (2018). Polymeric materials and films in dentistry: An overview. Journal of Advanced
Research, 14, 25–34. https://doi.org/10.1016/j.jare.2018.05.001.
Ronca, A., Maiullari, F., Milan, M., Pace, V., Gloria, A., Rizzi, R., & Ambrosio, L. (2017). Surface
functionalization of acrylic based photocrosslinkable resin for 3D printing applications.
Bioactive Materials, 2(3), 131–137. https://doi.org/10.1016/j.bioactmat.2017.04.002.
Roseti, L., Parisi, V., Petretta, M., Cavallo, C., Desando, G., Bartolotti, I., & Grigolo, B. (2017).
Scaffolds for bone tissue engineering: State of the art and new perspectives. Materials Science
and Engineering C, 78, 1246–1262. https://doi.org/10.1016/j.msec.2017.05.017.
Sandler, J., Werner, P., Shaffer, M. S. P., Demchuk, V., Altstädt, V., & Windle, A. H. (2002). Carbonnanofibre- reinforced poly(ether ether ketone) composites. Composites Part A: Applied Science
and Manufacturing, 33(8), 1033–1039. https://doi.org/10.1016/s1359-835x(02)00084-2.
Schmidlin, P. R., Stawarczyk, B., Wieland, M., Attin, T., Hämmerle, C. H. F., & Fischer, J. (2010).
Effect of different surface pre-treatments and luting materials on shear bond strength to
PEEK. Dental Materials, 26(6), 553–559. https://doi.org/10.1016/j.dental.2010.02.003.
Seol, Y. J., Kang, H. W., Lee, S. J., Atala, A., & Yoo, J. J. (2014). Bioprinting technology and
its applications. European Journal of Cardio-Thoracic Surgery, 46(3), 342–348. https://doi.
org/10.1093/ejcts/ezu148.
Skinner, H. B. (2006). Composite technology for total hip arthroplasty. Clinical Orthopaedics
and Related Research, (235), 224–236. https://doi.org/10.1097/00003086-198810000-00022.
Stansbury, J. W., & Idacavage, M. J. (2016). 3D printing with polymers: Challenges among
expanding options and opportunities. Dental Materials, 32(1), 54–64. https://doi.org/10.1016/j.
dental.2015.09.018.
Stawarczyk, B., Ender, A., Trottmann, A., Özcan, M., Fischer, J., & Hämmerle, C. H. F. (2012).
Load-bearing capacity of CAD/CAM milled polymeric three-unit fixed dental prostheses: Effect of aging regimens. Clinical Oral Investigations, 16(6), 1669–1677. https://doi.
org/10.1007/s00784-011-0670-4.
Stawarczyk, B., Beuer, F., Wimmer, T., Jahn, D., Sener, B., Roos, M., & Schmidlin, P. R. (2013).
Polyetheretherketone – A suitable material for fixed dental prostheses? Journal of Biomedical
Materials Research – Part B Applied Biomaterials, 101(7), 1209–1216. https://doi.org/10.1002/
jbm.b.32932.
Stawarczyk, B., Eichberger, M., Uhrenbacher, J., Wimmer, T., Edelhoff, D., & Schmidlin,
P. R. (2015). Three-unit reinforced polyetheretherketone composite FDPs: Influence of fabrication method on load-bearing capacity and failure types. Dental Materials Journal, 34(1),
7–12. https://doi.org/10.4012/dmj.2013-345.
Tahmaseb, A., Wismeijer, D., Coucke, W., & Derksen, W. (2014). Computer technology applications in surgical implant dentistry: A systematic review. The International Journal of Oral &
Maxillofacial Implants, 29(Suppl), 25–42. https://doi.org/10.11607/jomi.2014suppl.g1.2.
Tan, K. H., Chua, C. K., Leong, K. F., Naing, M. W., & Cheah, C. M. (2005). Fabrication and
characterization of three-dimensional poly(ether-ether-ketone)/-hydroxyapatite biocomposite scaffolds using laser sintering. Proceedings of the Institution of Mechanical Engineers,
Part H: Journal of Engineering in Medicine, 219(3), 183–194. https://doi.org/10.124
3/095441105x9345.
Timofeeva, L., & Kleshcheva, N. (2011). Antimicrobial polymers: Mechanism of action, factors
of activity, and applications. Applied Microbiology and Biotechnology, 89(3), 475–492. https://
doi.org/10.1007/s00253-010-2920-9.
Torsello, F., Di Torresanto, V. M., Ercoli, C., & Cordaro, L. (2008). Evaluation of the marginal precision of one-piece complete arch titanium frameworks fabricated using five different methods
for implant-supported restorations. Clinical Oral Implants Research, 19(8), 772–779. https://
doi.org/10.1111/j.1600-0501.2008.01555.x.
Totu, E. E., Cristache, C. M., Voicila, E., Oprea, O., Agir, I., Tavukcuoglu, O., & Didilescu,
A. C. (2017a). On physical and chemical characteristics of poly(methylmethacrylate) nanocomposites for dental applications. I. Materiale Plastice, 54(4), 666–672.
7 3D Printing-Processed Polymers for Dental Applications
