Page 37 - Read Online
P. 37
Page 34 of 39 Yang et al. Soft Sci. 2025, 5, 46 https://dx.doi.org/10.20517/ss.2025.44
79. Nizamoglu, S.; Gather, M. C.; Humar, M.; et al. Bioabsorbable polymer optical waveguides for deep-tissue photomedicine. Nat.
Commun. 2016, 7, 10374. DOI PubMed PMC
80. Kim, M.; An, J.; Kim, K. S.; et al. Optical lens-microneedle array for percutaneous light delivery. Biomed. Opt. Express. 2016, 7,
4220-7. DOI PubMed PMC
81. Bergström, J. S.; Hayman, D. An overview of mechanical properties and material modeling of polylactide (PLA) for medical
applications. Ann. Biomed. Eng. 2016, 44, 330-40. DOI PubMed
82. Zhao, H.; O’Brien, K.; Li, S.; Shepherd, R. F. Optoelectronically innervated soft prosthetic hand via stretchable optical waveguides.
Sci. Robot. 2016, 1, eaai7529. DOI PubMed
83. Hu, L.; Chee, P. L.; Sugiarto, S.; et al. Hydrogel-based flexible electronics. Adv. Mater. 2023, 35, e2205326. DOI PubMed
84. Sadeque, M. S. B.; Chowdhury, H. K.; Rafique, M.; et al. Hydrogel-integrated optical fiber sensors and their applications: a
comprehensive review. J. Mater. Chem. C. 2023, 11, 9383-424. DOI
85. Shabahang, S.; Kim, S.; Yun, S. H. Light-guiding biomaterials for biomedical applications. Adv. Funct. Mater. 2018, 28, 1706635.
DOI PubMed PMC
86. Nurlidar, F.; Rahayu, D. P.; Lasmawati, D.; Yunus, A. L.; Heryani, R.; Suryani, N. A simple method for the simultaneous
encapsulation of ciprofloxacin into PEGDA/alginate hydrogels using gamma irradiation. Arab. J. Chem. 2023, 16, 104793. DOI
87. Tiwari, G.; Tiwari, R.; Sriwastawa, B.; et al. Drug delivery systems: an updated review. Int. J. Pharm. Investig. 2012, 2, 2-11. DOI
PubMed PMC
88. Tibbitt, M. W.; Dahlman, J. E.; Langer, R. Emerging frontiers in drug delivery. J. Am. Chem. Soc. 2016, 138, 704-17. DOI PubMed
89. Zhu, J. Bioactive modification of poly(ethylene glycol) hydrogels for tissue engineering. Biomaterials 2010, 31, 4639-56. DOI
PubMed PMC
90. Sun, S.; Cui, Y.; Yuan, B.; et al. Drug delivery systems based on polyethylene glycol hydrogels for enhanced bone regeneration.
Front. Bioeng. Biotechnol. 2023, 11, 1117647. DOI PubMed PMC
91. Paneer Selvam, S.; Ayyappan, S.; I Jamir, S.; Sellappan, L. K.; Manoharan, S. Recent advancements of hydroxyapatite and
polyethylene glycol (PEG) composites for tissue engineering applications - a comprehensive review. Eur. Polym. J. 2024, 215,
113226. DOI
92. Zhang, Y.; Zhang, J. Surface modification of monodisperse magnetite nanoparticles for improved intracellular uptake to breast cancer
cells. J. Colloid. Interface. Sci. 2005, 283, 352-7. DOI PubMed
93. Xin, H.; Li, Y.; Liu, X.; Li, B. Escherichia coli-based biophotonic waveguides. Nano. Lett. 2013, 13, 3408-13. DOI PubMed
94. Choi, M.; Humar, M.; Kim, S.; Yun, S. H. Step-index optical fiber made of biocompatible hydrogels. Adv. Mater. 2015, 27, 4081-6.
DOI PubMed PMC
95. Li, W.; Lin, M.; Wang, C.; et al. In vitro enzymatic degradation of the PTMC/cross-linked PEGDA blends. Front. Bioeng.
Biotechnol. 2023, 11, 1253221. DOI PubMed PMC
96. Jin, H.; Yoon, S. S.; Kim, S. C. Synthesis and characterization of interpenetrating polymer networks from polyurethane and
poly(ethylene glycol) diacrylate. J. Appl. Polym. Sci. 2008, 109, 805-12. DOI
97. Li, J.; Hao, Y.; Zhong, M.; Tang, L.; Nie, J.; Zhu, X. Synthesis of furan derivative as LED light photoinitiator: one-pot, low usage,
photobleaching for light color 3D printing. Dyes. Pigments. 2019, 165, 467-73. DOI
98. Kaastrup, K.; Aguirre-Soto, A.; Wang, C.; Bowman, C. N.; Stansbury, J.; Sikes, H. D. UV-Vis/FT-NIR in situ monitoring of visible-
light induced polymerization of PEGDA hydrogels initiated by eosin/triethanolamine/O . Polym. Chem. 2016, 7, 592-602. DOI
2
PubMed PMC
99. Fairbanks, B. D.; Schwartz, M. P.; Bowman, C. N.; Anseth, K. S. Photoinitiated polymerization of PEG-diacrylate with lithium
phenyl-2,4,6-trimethylbenzoylphosphinate: polymerization rate and cytocompatibility. Biomaterials 2009, 30, 6702-7. DOI PubMed
PMC
100. Sun, G.; Pan, X.; Zhong, Y.; Chen, E.; Huang, Y.; Shao, J. Blue light induced polymerization kinetics of polyethylene glycol
diacrylate hydrogel. Polym. Mater. Sci. Eng. 2022. DOI
101. LeValley, P. J.; Noren, B.; Kharkar, P. M.; Kloxin, A. M.; Gatlin, J. C.; Oakey, J. S. Fabrication of functional biomaterial
microstructures by in situ photopolymerization and photodegradation. ACS. Biomater. Sci. Eng. 2018, 4, 3078-87. DOI PubMed
PMC
102. Bae, J.; Park, J.; Kim, S.; et al. Tailored hydrogels for biosensor applications. J. Ind. Eng. Chem. 2020, 89, 1-12. DOI
103. Liu, R.; Fan, X.; Fu, X.; et al. Synthesis and properties of thermo-sensitive PEG hydrogel. Fine. Chem. 2018, 35, 429-36. http://en.
cnki.com.cn/Article_en/CJFDTotal-JXHG201803011.htm. (accessed 8 Sep 2025)
104. Li, Z.; Mi, W.; Wang, H.; Su, Y.; He, C. Nano-hydroxyapatite/polyacrylamide composite hydrogels with high mechanical strengths
and cell adhesion properties. Colloids. Surf. B. Biointerfaces. 2014, 123, 959-64. DOI PubMed
105. Wang, L.; Zhong, C.; Ke, D.; et al. Ultrasoft and highly stretchable hydrogel optical fibers for in vivo optogenetic modulations. Adv.
Opt. Mater. 2018, 6, 1800427. DOI
106. Shanks, R. A.; Kong, I. General purpose elastomers: structure, chemistry, physics and performance. In Advances in Elastomers I:
Blends and Interpenetrating Networks; Visakh, P. M., Thomas, S., Chandra, A. K., Mathew, Aji. P., Eds.; vol 11; Springer: Berlin,
Heidelberg, 2013; pp. 11-45. DOI
107. Miranda, I.; Souza, A.; Sousa, P.; et al. Properties and applications of PDMS for biomedical engineering: a review. J. Funct.
Biomater. 2021, 13, 2. DOI PubMed PMC

