Page 24 - MSAM-4-3
P. 24

Materials Science in Additive Manufacturing                               Ceramic vat photopolymerization



               induced two-photon polymerization of inorganic-organic   polydimethylsilane under high pressure. J Appl Polym Sci.
               hybrid materials for applications in photonics.  Opt Lett.   2006;99(3):1188-1194.
               2003;28(5):301-303.
                                                                  doi: 10.1002/app.22465
               doi: 10.1364/ol.28.000301
                                                               32.  Lodhe M, Babu N, Selvam A, Balasubramanian M. Synthesis
            21.  Zipfel WR, Williams RM, Webb WW. Nonlinear  magic:   and characterization of high ceramic yield polycarbosilane
               Multiphoton microscopy in the biosciences. Nat Biotechnol.   precursor for SiC. J Adv Ceram. 2015;4:307-311.
               2003;21(11):1369-1377.
                                                                  doi: 10.1007/s40145-015-0169-8
               doi: 10.1038/nbt899
                                                               33.  He L, Zhang Z, Yang X, Jiao L, Li Y, Xu C. Liquid
            22.  Tumbleston John R, Shirvanyants D, Ermoshkin N,  et al.   polycarbosilanes: synthesis and evaluation as precursors for
               Continuous liquid interface production of 3D objects.   SiC ceramic. Polym Int. 2015;64(8):979-985.
               Science. 2015;347(6228):1349-1352.
                                                                  doi: 10.1002/pi.4904
               doi: 10.1126/science.aaa2397
                                                               34.  Hörz M, Zern A, Berger F,  et al. Novel polysilazanes as
            23.  González-Méijome  JM,  Compañ-Moreno  V,  Riande  E.   precursors for silicon nitride/silicon carbide composites
               Determination of oxygen permeability in soft contact   without “free” carbon. J Eur Ceram Soc. 2005;25(2-3):99-110.
               lenses using a polarographic method: estimation of
               relevant physiological parameters.  Ind Eng Chem Res.      doi: 10.1016/j.jeurceramsoc.2004.05.003
               2008;47(10):3619-3629.                          35.  Blum  YD,  Schwartz  KB,  Laine  RM.  Preceramic  polymer
            24.  Wang G, Song Y. Enhancing the yield of polycarbosilane   pyrolysis: Part  1 Pyrolytic properties of polysilazanes.
               synthesis via recycling of liquid by-product at atmospheric   J Mater Sci. 1989;24:1707-1718.
               pressure. Ceram Int. 2018;44(6):6474-6478.         doi: 10.1007/BF01138991
               doi: 10.1016/j.ceramint.2018.01.101             36.  Kroke E, Li YL, Konetschny C, Lecomte E, Fasel C, Riedel R.
            25.  Colombo P, Mera G, Riedel R, Sorarù GD. Polymer-derived   Silazane derived ceramics and related materials. Mater Sci
               ceramics: 40 years of research and innovation in advanced   Eng R Rep. 2000;26(4-6):97-199.
               ceramics. J Am Ceram Soc. 2010;93(7):1805-1837.     doi: 10.1016/S0927-796X(00)00013-0
               doi: 10.1111/j.1551-2916.2010.03876.x           37.  Soraru GD. Silicon oxycarbide glasses from gels: Code: H1.
            26.  Martínez-Crespiera  S,  Ionescu  E,  Schlosser  M,  et  al.   J Sol Gel Sci Technol. 1994;2:843-848.
               Fabrication of silicon oxycarbide-based microcomponents      doi: 10.1007/BF00489675
               via photolithographic and soft lithography approaches. Sens
               Actuat A Phys. 2011;169(1):242-249.             38.  Schmitt M. Analysis of silanes and of siloxanes formation by
                                                                  Raman spectroscopy. RSC Adv. 2014;4(4):1907-1917.
               doi: 10.1016/j.sna.2011.04.041
                                                                  doi: 10.1039/C3RA45816A
            27.  Kashimura S, Tane Y, Ishifune M, et al. Practical method for
               the synthesis of polysilanes using Mg and Lewis acid system.   39.  Mera G, Riedel R, Poli F, Müller K. Carbon-rich SiCN ceramics
               Tetrahedron Lett. 2008;49(2):269-271.              derived from phenyl-containing poly (silylcarbodiimides).
                                                                  J Eur Ceram Soc. 2009;29(13):2873-2883.
               doi: 10.1016/j.tetlet.2007.11.083
                                                                  doi: 10.1016/j.jeurceramsoc.2009.03.020
            28.  Jones RG, Holder SJ. High-yield controlled syntheses of
               polysilanes by the Wurtz-type reductive coupling reaction.   40.  Widgeon S, Mera G, Gao Y,  et al. Nanostructure and
               Polym Int. 2006;55(7):711-718.                     energetics of carbon-rich SiCN ceramics derived from
                                                                  polysilylcarbodiimides: Role of the nanodomain interfaces.
               doi: 10.1002/pi.1945                               Chem Mater. 2012;24(6):1181-1191.
            29.  Krempner  C.  Polysilane  dendrimers.  Polymers.      doi: 10.1021/cm3000259
               2012;4(1):408-447.
                                                               41.  Gao Y, Mera G, Nguyen H, Morita K, Kleebe HJ, Riedel R.
               doi: 10.3390/polym4010408                          Processing route dramatically influencing the nanostructure
            30.  Chen J, He G, Liao Z, et al. Control of structure formation   of carbon-rich SiCN and SiBCN polymer-derived ceramics.
               of polycarbosilane synthesized from polydimethylsilane   Part  I: Low temperature thermal transformation.  J  Eur
               by  Kumada  rearrangement.  J  Appl Polym Sci.     Ceram Soc. 2012;32(9):1857-1866.
               2008;108(5):3114-3121.                             doi: 10.1016/j.jeurceramsoc.2012.01.022
               doi: 10.1002/app.27847
                                                               42.  Zhang Z, Zeng F, Han J, Luo Y, Xu C. Synthesis and
            31.  Cheng X, Xie Z, Song Y, Xiao J, Wang Y. Structure   characterization of a new liquid polymer precursor for Si-B-
               and properties of polycarbosilane synthesized from   C-N ceramics. J Mater Sci. 2011;46:5940-5947.


            Volume 4 Issue 3 (2025)                         18                        doi: 10.36922/MSAM025200031
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