화학공학소재연구정보센터
Korean Journal of Chemical Engineering, Vol.39, No.2, 451-459, February, 2022
Digital light processing 3D printing of multi-materials with improved adhesion using resins containing low functional acrylates
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Digital light processing (DLP) 3D printing has received increasing attention due to high-resolution printing capability, mass productivity, and cheap equipment cost. Most of all, the layer resolution less than 50 μm overwhelms 200-300 μm layer resolution of its competitive technology, filament deposition modeling (FDM) 3D printing. Despite the advantage of the high resolution, weak mechanical properties of DLP 3D printouts have limited their industrial use. One of the easiest ways to improve mechanical property is the use of multi-materials that complement each other…s weak property. However, DLP 3D printing of multi-material printouts with reliable adhesion has been largely unexplored. In this study, we compared the mechanical properties of four pairs of multi-materials consisting of two different materials of the same thickness. A composition with highest modulus and ultimate strength was fixed as the first half layer, and the acrylate of the composition for the other half layer was modulated with a monomer having a functionality between 1 and 3. If the acrylate monomer…s functionality for the other half layer was less than three, the multi-material printout showed nearly averaged mechanical property of each material. We speculate that low functional acrylate with lower viscosity allows sufficient polymerization at the interface, enabling reliable adhesion. This approach that enables successful multi-material printing with improved adhesion and complementary mechanical properties will extend the use of DLP 3D printing in a broad range of industrial application that requires both sophisticated shape and mechanical strength.
  1. Wang X, Jiang M, Zhou Z, Guo J, Hui D, Compos. B. Eng., 110, 442 (2017)
  2. Ngo TD, Kashani A, Imbalzano G, Nguyen KTQ, Hui D, Compos. B. Eng., 143, 172 (2018)
  3. Ligon SC, Liska R, Stampfl J, Gurr M, Mulhaupt R, Chem. Rev., 117(15), 10212 (2017)
  4. Vaezi M, Chianrabutra S, Mellor B, Yang S, Virtual Phys. Prptotyp., 8, 19 (2013)
  5. Bandyopadhyay A, Heer B, Mater. Sci. Eng. R-Rep., 129, 1 (2018)
  6. Derakhshanfar S, Mbeleck R, Xu K, Zhang X, Zhong W, Xing M, Bioact. Mater., 3, 144 (2018)
  7. Liu W, Zhang YS, Heinrich MA, et al., Adv. Mater., 29, 160463 (2017)
  8. Rafiee M, Farahani RD, Therriault D, Adv. Sci., 7, 190230 (2020)
  9. Jeon SJ, Hauser AW, Hayward RC, Accounts Chem. Res., 50, 161 (2017)
  10. Keating SJ, Gariboldi MI, Patrick WG, Sharma S, Kong DS, Oxman N, PLoS One, 11, e01606 (2016)
  11. Cazon-Martin A, et al., Proc. Inst. Mech. Eng. Part P J. Sport. Eng. Technol., 233, 160 (2019).
  12. Moore JP, Williams CB, Rapid Prototyp. J., 21, 675 (2015)
  13. Lumpe TS, Mueller J, Shea K, Mater. Des., 162, 1 (2019)
  14. Jiang Z, Diggle B, Tan ML, Viktorova J, Bennett CW, Connal LA, Adv. Sci., 7, 200137 (2020)
  15. Popescu D, Zapciu A, Amza C, Baciu F, Marinescu R, Polym. Test, 69, 157 (2018)
  16. Lopes LR, Silva AF, Carneiro OS, Addit. Manuf., 23, 45 (2018)
  17. Bellehumeur C, Li L, Sun Q, Gu P, J. Manuf. Process, 6, 170 (2004)
  18. Espalin D, Ramirez JA, Medina F, Wicker R, Rapid Prototyp. J., 20, 236 (2014)
  19. Li L, Lin Q, Tang M, Duncan AJE, Ke C, Chem. Eur. J., 19, 10768 (2019)
  20. Jiang P, Ji Z, Zhang X, Liu Z, Wang X, Prog. Addit. Manuf., 3, 65 (2018)
  21. Rocha VG, Saiz E, Tirichenko LS, Garcia-Tunon E, J. Mater. Chem. A, 8, 15646 (2020)
  22. Tian K, Suo Z, Vlassak JJ, ACS Appl. Mater. Interfaces, 12, 31002 (2020)
  23. Bagheri A, Jin J, ACS Appl. Polym. Mater., 1, 593 (2019)
  24. Zhang J, Xiao P, Polym. Chem., 9, 1530 (2018)
  25. Quan H, Zhang T, Xu H, Luo S, Nie J, Zhu X, Bioact. Mater., 5, 110 (2020)
  26. Ge Q, Li Z, Wang Z, Kowsari K, Zhang W, He X, Zhou J, Fang NX, Int. J. Extrem. Manuf., 2, 022004 (2020)
  27. Borrello J, Nasser P, Iatridi JC, Costa KD, Addit. Manuf., 23, 374 (2018)
  28. Ge Q, Sakhaei AH, Lee H, Dunn CK, Fang NX, Dunn ML, Sci. Rep., 6, 31110 (2016)
  29. Han D, Yang C, Fang NX, Lee H, Addit. Manuf., 27, 606 (2019)
  30. Khatri B, Frey M, Raouf-Fahmy A, Scharla MV, Hanemann T, Micromachines, 11, 532 (2020)
  31. Maruyama T, Hirata H, Furukawa T, Maruo S, Opt. Mater. Express, 10, 2522 (2020)
  32. Zhang B, Li S, Hingorani H, et al., J. Mater. Chem. B, 6, 3246 (2018)
  33. Creton C, MRS Bull., 28, 434 (2003)
  34. Taormina G, Sciancalepore C, Messori M, Bondioli F, J. Appl. Biomater. Funct. Mater., 16, 151 (2018)
  35. Becker WT, Shipley RJ, Failure analysis and prevention, ASM International, Materials Park (2002).
  36. Ebnesajjad S, Handbook of adhesives and surface preparation: Technology, applications and manufacturing, William Andrew, Amsterdam (2011).
  37. Kelly BE, Bhattacharya I, Heidari H, Shusteff M, Spadaccini CM, Taylor HK, Science, 363(6431), 1075 (2019)