4.8 Article

Effects of ionic liquids and dual curing on vat photopolymerization process and properties of 3d-printed ionogels

期刊

ADDITIVE MANUFACTURING
卷 56, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.addma.2022.102895

关键词

Photo-crosslinkable resin; Stereolithography; Photopolymerization; Additive manufacturing; UV-thermal dual; curing

资金

  1. RFBR [20-53-76021]
  2. Swiss National Science Foundation [IZRPZ0_194986]
  3. VIAA, project UPRINTAROBOT [ES RTD/2021/8]
  4. ERA.Net RUS plus program MOBERA26
  5. Estonian Research Council [PRG1498, PRG1084]
  6. Swiss National Science Foundation (SNF) [IZRPZ0_194986] Funding Source: Swiss National Science Foundation (SNF)

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This study investigates the effect of adding ionic liquids (ILs) on the vat photopolymerization (VP) process for the fabrication of ionogels (IGs). The results show that ILs can accelerate the polymerization reaction and increase the critical exposure energy for gelation. The study also demonstrates the changing penetration depth with different IL types and the impact of dual curing on the mechanical properties and ionic conductivity of the ionogels.
Ionic liquids (ILs) can facilitate photopolymerization reactions involved in the fabrication of ionogels (IGs). In this study, ILs were immobilized by 3D printing through polymerization of vinyl-monomers in their medium. The effect of ILs on the vat photopolymerization (VP) process was studied. Multiple IL-compatible photopolymer formulations were developed by using EmimBF4, BmimBF4, OmimBF4, and EmimTFSI ionic liquids and photocurable N-vinylpyrrolidone (NVP) and triethylene glycol dimethacrylate (TEGDMA) monomers. The photoinduced radical copolymerization of NVP with TEGDMA was studied using a combination of photo-DSC, Jacobs working curves and FTIR methods. The analysis revealed a dichotomy of IL-based VP as the addition of ILs led to a significant acceleration of polymerization and an increase in the critical exposure energy due to a higher conversion degree necessary for the gelation. Moreover, the Jacobs working curves showed that penetration depth dramatically changed with IL type. Based on these results, overcuring time was calculated and applied in the VP process to ensure that enough monomers were converted in each 3d-printed layer to prevent interlayer cracking. Furthermore, the dual curing approach was applied to achieve the highest possible conversion by adding a thermal initiator (AIBN). Dual curing increased the mechanical properties of ionogels but led to a reduced ionic conductivity due to an inhibition of IL's mobility. In addition, this study found IL compositions for ionogels demonstrating no shrinkage after photopolymerization and post-curing. We suggest that the outcomes of the present study created a platform for fabricating high-resolution 3d-printed nonvolatile and nonflammable ionogels.

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