International Journal of Extreme Manufacturing, Volume. 7, Issue 3, 35003(2025)
Digital light processing three-dimensional printing with acrylic–titanium composite powders for multiscale porous scaffolds
[1] [1] Hariharan A, Goldberg P, Schell F, Hempel U, Striggow F, Hantusch M, Medina-Snchez M, Lasagni A F and Gebert A 2024 Single- and multiscale laser patterning of 3D printed biomedical titanium alloy: toward an enhanced adhesion and early differentiation of human bone marrow stromal cellsAdv. Funct. Mater.342310607
[2] [2] Bandyopadhyay A, Mitra L, Avila J D, Upadhyayula M and Bose S 2023 Porous metal implants: processing, properties, and challengesInt. J. Extrem. Manuf.5032014
[3] [3] Wang Q G, Zhou P, Liu S F, Attarilar S, Ma R L W, Zhong Y S and Wang L Q 2020 Multi-scale surface treatments of titanium implants for rapid osseointegration: a reviewNanomaterials101244
[4] [4] Gao Y Net al2024 Design principles and mechanistic understandings of non-noble-metal bifunctional electrocatalysts for zinc-air batteriesNano-Micro. Lett.16162
[5] [5] Gopi S, Kathiresan M and Yun K 2023 Metal-organic and porous organic framework in electrocatalytic water splittingJ. Ind. Eng. Chem.126127–36
[6] [6] Agnolin S, Apostolo F, Di Felice L, Melendez Rey J, Pacheko Tanaka A, Llosa Tanco M and Gallucci F 2023 Development of selective Pd-Ag membranes on porous metal filtersInt. J. Hydrog. Energy4825398–409
[7] [7] Zhou S R, Wang L Y, Gao S Y, Chen X Y, Zhang C L, Yu D, Fan X Q, Yu X H and Zhao Z 2024 Research progress on preparation of metal oxide catalysts with porous structure and their catalytic purification of diesel engine exhausts gasesACS Catal.146062–127
[8] [8] Mane P V, Rego R M, Yap P L, Losic D and Kurkuri M D 2024 Unveiling cutting-edge advances in high surface area porous materials for the efficient removal of toxic metal ions from waterProg. Mater. Sci.146101314
[9] [9] Xue X Zet al2024 Interpenetrated structures for enhancing ion diffusion kinetics in electrochemical energy storage devicesNano-Micro Lett.16255
[10] [10] Liu D R, Li C L, Wang W J, Gong H Y, Xu G C and Li D W 2023 Dealloying-derived TiC hierarchical porous frameworks as stable host for advanced Li metal electrodeElectrochim. Acta471143380
[11] [11] Li Y Z, Wang S X, Zhao Y L and Lu C 2017 Experimental study on the influence of porous foam metal filled in the core flow region on the performance of thermoelectric generatorsAppl. Energy207634–42
[12] [12] Li Y Z, de Len F, Zhao Y L, Yue L K, Hu Z H and Wang R Z 2024 Influence and comprehensive evaluation of porous metal foam filled fins on the performance of power cable surface waste heat recovery thermoelectric power generation deviceTherm. Sci. Eng. Prog.47102278
[13] [13] Li J, Yuan H, Chandrakar A, Moroni L and Habibovic P 2021 3D porous Ti6Al4V-beta-tricalcium phosphate scaffolds directly fabricated by additive manufacturingActa Biomater.126496–510
[14] [14] Attar H, Ehtemam-Haghighi S, Soro N, Kent D and Dargusch M S 2020 Additive manufacturing of low-cost porous titanium-based composites for biomedical applications: advantages, challenges and opinion for future developmentJ. Alloys Compd.827154263
[15] [15] Martin J H, Yahata B D, Hundley J M, Mayer J A, Schaedler T A and Pollock T M 2017 3D printing of high-strength aluminium alloysNature549365–9
[16] [16] Bai L, Zhang J F, Xiong Y, Chen X H, Sun Y X, Gong C, Pu H Y, Wu X Y and Luo J 2020 Influence of unit cell pose on the mechanical properties of Ti6Al4V lattice structures manufactured by selective laser meltingAddit. Manuf.34101222
[17] [17] Montufar E Bet al2020 Benchmarking of additive manufacturing technologies for commercially-pure-titanium bone-tissue-engineering scaffolds: processing-microstructure-property relationshipAddit. Manuf.36101516
[18] [18] Sokollu B, Gulcan O and Konukseven E I 2022 Mechanical properties comparison of strut-based and triply periodic minimal surface lattice structures produced by electron beam meltingAddit. Manuf.60103199
[19] [19] Liu Y J, Wang H L, Li S J, Wang S G, Wang W J, Hou W T, Hao Y L, Yang R and Zhang L C 2017 Compressive and fatigue behavior of beta-type titanium porous structures fabricated by electron beam meltingActa Mater.12658–66
[20] [20] Murr L E 2020 Metallurgy principles applied to powder bed fusion 3D printing/additive manufacturing of personalized and optimized metal and alloy biomedical implants: an overviewJ. Mater. Res. Technol.91087–103
[21] [21] Kozjek D, Porter C, Carter F M III, Mogonye J E and Cao J 2024 Data-driven prediction of inter-layer process condition variations in laser powder bed fusionAddit. Manuf.88104230
[22] [22] Mostafaei Aet al2022 Defects and anomalies in powder bed fusion metal additive manufacturingCurr. Opin. Solid State Mater. Sci.26100974
[23] [23] Leung C L A, Marussi S, Atwood R C, Towrie M, Withers P J and Lee P D 2018In situx-ray imaging of defect and molten pool dynamics in laser additive manufacturingNat. Commun.91355
[24] [24] Liu H, Yu H Y, Guo C, Chen X L, Zhong S Y, Zhou L, Osman A and Lu J 2024 Review on fatigue of additive manufactured metallic alloys: microstructure, performance, enhancement, and assessment methodsAdv. Mater.362306570
[25] [25] Khademitab M, De Vecchis P R, Staszel P, Vaicik M K, Chmielus M and Mostafaei A 2024 Structure-property relationships of differently heat-treated binder jet printed Co-Cr-Mo biomaterialMater. Today Commun.38107716
[26] [26] Vangapally S, Agarwal K, Sheldon A and Cai S B 2017 Effect of lattice design and process parameters on dimensional and mechanical properties of binder jet additively manufactured stainless steel 316 for bone scaffoldsProc. Manuf.10750–9
[27] [27] Slmeka K, Kashimbetova A, Pokluda J, Zikmund T, Kaiser J, Montufar E B and elko L 2023 Fatigue behaviour of titanium scaffolds with hierarchical porosity produced by material extrusion additive manufacturingMater. Des.225111453
[28] [28] Xu C, Qi J M, Zhang L, Liu Q P and Ren L Q 2023 Material extrusion additive manufacturing of Ti6Al4V bio-inspired bone implants with tunable Young's modulusAddit. Manuf.78103884
[29] [29] Zhao G B, Shao X X, Zhang Q X, Wu Y L, Wang Y N, Chen X, Tian H, Liu Y X, Liu Y P and Lu B H 2023 Porous bio-high entropy alloy scaffolds fabricated by direct ink writingJ. Mater. Sci. Technol.15721–29
[30] [30] Cheng J X, Yu S Y, Wang R and Ge Q 2024 Digital light processing based multimaterial 3D printing: challenges, solutions and perspectivesInt. J. Extrem. Manuf.6042006
[31] [31] Nguyen M T H, Kim J H, Jang W T, Jung Y J, Park E J, Ha T H, Ahn S J and Kim Y H 2024 Role of GO and photoinitiator concentration on curing behavior of PEG-based polymer for DLP 3D printingACS Omega93287–94
[32] [32] Chen Z Q, Yang M, Ji M K, Kuang X, Qi H J and Wang T J 2021 Recyclable thermosetting polymers for digital light processing 3D printingMater. Des.197109189
[33] [33] Chen X T, Sun J X, Guo B B, Wang Y, Yu S X, Wang W and Bai J M 2022 Effect of the particle size on the performance of BaTiO3 piezoelectric ceramics produced by additive manufacturingCeram. Int.481285–92
[34] [34] Huang X L, Dai H L, Hu Y F, Zhuang P Z, Shi Z L and Ma Y L 2021 Development of a high solid loading -TCP suspension with a low refractive index contrast for DLP-based ceramic stereolithographyJ. Eur. Ceram. Soc.413743–54
[35] [35] Sun L J, Dong P, Zeng Y and Chen J M 2021 Fabrication of hollow lattice alumina ceramic with good mechanical properties by digital light processing 3D printing technologyCeram. Int.4726519–27
[36] [36] Li Y Met al2022 Incorporating metal precursors towards a library of high-resolution metal parts by stereolithographyAppl. Mater. Today29101553
[37] [37] Saccone M A, Gallivan R A, Narita K, Yee D W and Greer J R 2022 Additive manufacturing of micro-architected metals via hydrogel infusionNature612685–90
[38] [38] Zhang Y B, Li S, Zhao Y T, Duan W Y, Liu B S, Wang T C and Wang G 2021 Digital light processing 3D printing of AlSi10Mg powder modified by surface coatingAddit. Manuf.39101897
[39] [39] Shah D S, Moravkar K K, Jha D K, Lonkar V, Amin P D and Chalikwar S S 2023 A concise summary of powder processing methodologies for flow enhancementHeliyon9e16498
[40] [40] Sorensen C M, Heinson Y W, Heinson W R, Maughan J B and Chakrabarti A 2017 Q-space analysis of the light scattering phase function of particles with any shapeAtmosphere868
[41] [41] Gentry S P and Halloran J W 2013 Absorption effects in photopolymerized ceramic suspensionsJ. Eur. Ceram. Soc.331989–94
[42] [42] Gentry S P and Halloran J W 2013 Depth and width of cured lines in photopolymerizable ceramic suspensionsJ. Eur. Ceram. Soc.331981–8
[43] [43] Gentry S P and Halloran J W 2015 Light scattering in absorbing ceramic suspensions: effect on the width and depth of photopolymerized featuresJ. Eur. Ceram. Soc.351895–904
[44] [44] Yanhui L, Yong C, Minglang W, Li L, Haidong W H D, Fupo H and Shanghua S H 2019 The cure performance of modified ZrO2 coated by paraffin via projection based stereolithographyCeram. Int.454084–8
[45] [45] Cao J W, Idrees M, Tian G Q, Liu J, Xiong S F, Yuan J K, Wang P, Liu Z Y, Liu C Y and Chen Z W 2021 Complex SiC-based structures with high specific strength fabricated by vat photopolymerization and one-step pyrolysisAddit. Manuf.48102430
[46] [46] Chen R F, Duan W Y, Wang G, Liu B S, Zhao Y T and Li S 2021 Preparation of broadband transparent Si3N4-SiO2 ceramics by digital light processing (DLP) 3D printing technologyJ. Eur. Ceram. Soc.415495–504
[47] [47] Zhang K Q, Meng Q Y, Qu Z L and He R J 2024 A review of defects in vat photopolymerization additive-manufactured ceramics: characterization, control, and challengesJ. Eur. Ceram. Soc.441361–84
[48] [48] Liu Y, Zhan L N, He Y, Zhang J, Hu J J, Cheng L J, Wu Q M and Liu S J 2020 Stereolithographical fabrication of dense Si3N4 ceramics by slurry optimization and pressure sinteringCeram. Int.462063–71
[49] [49] Lffler F B, Bucharsky E C, Schell K G, Heiler S and Hoffmann M J 2020 Development of silica based organic slurries for stereolithographic printing processJ. Eur. Ceram. Soc.404556–61
[50] [50] Balzsi K, Lukcs I E, Gurbn S, Menyhrd M, Backov L, Vandrovcov M and Balzsi C 2013 Structural, mechanical and biological comparison of TiC and TiCN nanocomposites filmsJ. Eur. Ceram. Soc.332217–21
[51] [51] Ataee A, Li Y C, Brandt M and Wen C E 2018 Ultrahigh-strength titanium gyroid scaffolds manufactured by selective laser melting (SLM) for bone implant applicationsActa Mater.158354–68
[52] [52] Depboylu F N, Yasa E, Poyraz , Minguella-Canela J, Korkusuz F and De Los Santos Lpez M A 2022 Titanium based bone implants production using laser powder bed fusion technologyJ. Mater. Res. Technol.171408–26
[53] [53] Wei M, Yu H L, Song Z Y, Yin Y L, Zhou X Y, Wang H M, Ji X C, Li X Y, Shi P J and Zhang W 2021 Microstructural evolution, mechanical properties and wear behavior ofin-situTiC-reinforced Ti matrix composite coating by induction claddingSurf. Coat. Technol.412127048
[54] [54] Deng F Y, Liu L L, Li Z and Liu J C 2021 3D printed Ti6Al4V bone scaffolds with different pore structure effects on bone ingrowthJ. Biol. Eng.154
[55] [55] Zhang L-C and Chen L-Y 2019 A review on biomedical titanium alloys: recent progress and prospectAdv. Eng. Mater.211801215
[56] [56] Yan X C, Chang C, Dong D D, Gao S H, Ma W Y, Liu M, Liao H L and Yin S 2020 Microstructure and mechanical properties of pure copper manufactured by selective laser meltingMater. Sci. Eng.A789139615
[57] [57] Zhou X, Liu X H, Zhang D D, Shen Z J and Liu W 2015 Balling phenomena in selective laser melted tungstenJ. Mater. Process. Technol.22233–42
[58] [58] Wang C Z, Lan C X, Lin X and Hu Y L 2024 Effect of laser power on microstructure and mechanical properties of pure Zn fabricated via laser powder bed fusionJ. Mater. Res. Technol.282523–34
[59] [59] Wang J B, Zhou X L and Li J H 2021 Evolution of microstructures and properties of SLM-manufactured Cu-15Ni-8Sn alloy during heat treatmentAddit. Manuf.37101599
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Zhao Guangbin, Wu Yanlong, Li Bochen, Tian Hang, Li Bo, Li Xiao, Chen Xu, Zhou Tao, Wang Yaning, Gong Yichao, Hou Dingchang, Liu Yaxiong, Zong Xuewen, Lu Bingheng. Digital light processing three-dimensional printing with acrylic–titanium composite powders for multiscale porous scaffolds[J]. International Journal of Extreme Manufacturing, 2025, 7(3): 35003
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Received: Aug. 30, 2024
Accepted: Sep. 29, 2025
Published Online: Sep. 29, 2025
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