Construction of Photoinitiator Functionalized Spherical Nanoparticles Enabling Favorable Photoinitiating Activity and Migration Resistance for 3D Printing

Author:

Chen LijuanORCID,Chen Fan,Zhu Weixin,Chen Luoyi,Liang Yingyu,Guo Xiaohui

Abstract

A straight-forward method was exploited to construct a multifunctional hybrid photoinitiator by supporting 2-hydroxy-2-methylpropiophenone (HMPP) onto a nano-silica surface through a chemical reaction between silica and HMPP by using (3-isocyanatopropyl)-triethoxysilane (IPTS) as a bridge, and this was noted as silica-s-HMPP. The novel hybrid-photoinitiator can not only initiate the photopolymerization but also prominently improve the dispersion of nanoparticles in the polyurethane acrylate matrix and enhance the filler-elastomer interfacial interaction, which results in excellent mechanical properties of UV-cured nanocomposites. Furthermore, the amount of extractable residual photoinitiators in the UV-cured system of silica-s-HPMM shows a significant decrease compared with the original HPMM system. Since endowing the silica nanoparticle with photo-initiated performance and fairly lower mobility, it may lead to a reduction in environmental contamination compared to traditional photoinitators. In addition, the hybrid-photoinitiator gives rise to an accurate resolution object with a complex construction and favorable surface morphology, indicating that multifunctional nanosilica particles can be applied in stereolithographic 3D printing.

Funder

Guangdong Basic and Applied Basic Research Foundation, China

Scientific and Technological Planning Project of Guangzhou City, China

Open Fund for Key Lab of Guangdong High Property and Functional Macromolecular Materials, China

Science and Technology Planning Project of Liangshan, China

Project of Innovation and Entrepreneurship Training Program for College Students

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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