4.5 Review

Advances in digital light processing of hydrogels

期刊

BIOMEDICAL MATERIALS
卷 17, 期 4, 页码 -

出版社

IOP Publishing Ltd
DOI: 10.1088/1748-605X/ac6b04

关键词

hydrogel; DLP (digital light processing); vat photopolymerization-based 3D printing

资金

  1. National Key Research and Development Program of China [2018YFA0703004]
  2. National Natural Science Foundation of China (NSFC) [31771108]
  3. Tsinghua University [53330200321]

向作者/读者索取更多资源

This review summarizes the recent advances and applications of hydrogels in digital light processing (DLP) 3D printing. Hydrogels, with soft elasticity and good biocompatibility, are difficult to process into solid forms due to their high water content and soft nature. DLP technology provides opportunities for hydrogel manufacturing with its high printing speed and resolution. The challenges and future trends in hydrogel DLP are also discussed.
Hydrogels, three-dimensional (3D) networks of hydrophilic polymers formed in water, are a significant type of soft matter used in fundamental and applied sciences. Hydrogels are of particular interest for biomedical applications, owing to their soft elasticity and good biocompatibility. However, the high water content and soft nature of hydrogels often make it difficult to process them into desirable solid forms. The development of 3D printing (3DP) technologies has provided opportunities for the manufacturing of hydrogels, by adopting a freeform fabrication method. Owing to its high printing speed and resolution, vat photopolymerization 3DP has recently attracted considerable interest for hydrogel fabrication, with digital light processing (DLP) becoming a widespread representative technique. Whilst acknowledging that other types of vat photopolymerization 3DP have also been applied for this purpose, we here only focus on DLP and its derivatives. In this review, we first comprehensively outline the most recent advances in both materials and fabrication, including the adaptation of novel hydrogel systems and advances in processing (e.g. volumetric printing and multimaterial integration). Secondly, we summarize the applications of hydrogel DLP, including regenerative medicine, functional microdevices, and soft robotics. To the best of our knowledge, this is the first time that either of these specific review focuses has been adopted in the literature. More importantly, we discuss the major challenges associated with hydrogel DLP and provide our perspectives on future trends. To summarize, this review aims to aid and inspire other researchers investigatng DLP, photocurable hydrogels, and the research fields related to them.

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