Page 36 - Read Online
P. 36
Yang et al. Soft Sci. 2025, 5, 46 https://dx.doi.org/10.20517/ss.2025.44 Page 33 of 39
Mater. Interfaces. 2024, 16, 32662-78. DOI PubMed
50. Bae, S. H.; Kim, D.; Chang, S. Y.; et al. Hybrid integrated photomedical devices for wearable vital sign tracking. ACS. Sens. 2020, 5,
1582-8. DOI PubMed
51. Mishra, P.; Sahu, P. K.; Kumar, H.; Jha, R. Human pulse and respiration monitoring: reconfigurable and scalable balloon-shaped
fiber wearables. Adv. Mater. Technol. 2023, 8, 2300429. DOI
52. Li, T.; Su, Y.; Chen, F.; et al. Bioinspired stretchable fiber-based sensor toward intelligent human-machine interactions. ACS. Appl.
Mater. Interfaces. 2022, 14, 22666-77. DOI PubMed
53. Pan, J.; Wang, Q.; Gao, S.; et al. Knot-inspired optical sensors for slip detection and friction measurement in dexterous robotic
manipulation. Opto. Electronic. Adv. 2023, 6, 230076. DOI
54. Guo, J.; Shang, C.; Gao, S.; Zhang, Y.; Fu, B.; Xu, L. Flexible plasmonic optical tactile sensor for health monitoring and artificial
haptic perception. Adv. Mater. Technol. 2023, 8, 2201506. DOI
55. Gong, Z.; Xiang, Z.; OuYang, X.; et al. Wearable fiber optic technology based on smart textile: a review. Materials 2019, 12, 3311.
DOI PubMed PMC
56. Gan, J.; Yang, A.; Guo, Q.; Yang, Z. Flexible optical fiber sensing: materials, methodologies, and applications. Adv. Devices.
Instrum. 2024, 5, 0046. DOI
57. Rein, M.; Favrod, V. D.; Hou, C.; et al. Diode fibres for fabric-based optical communications. Nature 2018, 560, 214-8. DOI
PubMed
58. Koeppel, M.; Sharma, A.; Podschus, J.; et al. Doppler optical frequency domain reflectometry for remote fiber sensing: erratum. Opt.
Express. 2021, 29, 24193. DOI PubMed
59. Stellinga, D.; Phillips, D. B.; Mekhail, S. P.; et al. Time-of-flight 3D imaging through multimode optical fibers. Science 2021, 374,
1395-9. DOI PubMed
60. Guo, J.; Yang, C.; Dai, Q.; Kong, L. Soft and stretchable polymeric optical waveguide-based sensors for wearable and biomedical
applications. Sensors 2019, 19, 3771. DOI PubMed PMC
61. Choi, M.; Choi, J. W.; Kim, S.; Nizamoglu, S.; Hahn, S. K.; Yun, S. H. Light-guiding hydrogels for cell-based sensing and
optogenetic synthesis in vivo. Nat. Photonics. 2013, 7, 987-94. DOI PubMed PMC
62. Okumura, Y.; Ito, K. The polyrotaxane gel: a topological gel by figure-of-eight cross-links. Adv. Mater. 2001, 13, 485-7. DOI
63. Browning, M. B.; Wilems, T.; Hahn, M.; Cosgriff-Hernandez, E. Compositional control of poly(ethylene glycol) hydrogel modulus
independent of mesh size. J. Biomed. Mater. Res. A. 2011, 98, 268-73. DOI PubMed
64. Gaharwar, A. K.; Rivera, C. P.; Wu, C. J.; Schmidt, G. Transparent, elastomeric and tough hydrogels from poly(ethylene glycol) and
silicate nanoparticles. Acta. Biomater. 2011, 7, 4139-48. DOI PubMed
65. Musumeci, G.; Loreto, C.; Castorina, S.; Imbesi, R.; Leonardi, R.; Castrogiovanni, P. New perspectives in the treatment of cartilage
damage. Poly(ethylene glycol) diacrylate (PEGDA) scaffold. A review. Ital. J. Anat. Embryol. 2013, 118, 204-10. PubMed
66. Zhang, Z. F.; Ma, X.; Wang, H.; Ye, F. Influence of polymerization conditions on the refractive index of poly(ethylene glycol)
diacrylate (PEGDA) hydrogels. Appl. Phys. A. 2018, 124, 1713. DOI
67. Hakim Khalili, M.; Zhang, R.; Wilson, S.; Goel, S.; Impey, S. A.; Aria, A. I. Additive manufacturing and physicomechanical
characteristics of PEGDA hydrogels: recent advances and perspective for tissue engineering. Polymers 2023, 15, 2341. DOI
PubMed PMC
68. Yetisen, A. K.; Jiang, N.; Fallahi, A.; et al. Glucose-sensitive hydrogel optical fibers functionalized with phenylboronic acid. Adv.
Mater. 2017, 29, 1606380. DOI PubMed PMC
69. Kwok, S. J. J.; Kim, M.; Lin, H. H.; et al. Flexible optical waveguides for uniform periscleral cross-linking. Invest. Ophthalmol. Vis.
Sci. 2017, 58, 2596-602. DOI PubMed PMC
70. Martincek, I.; Pudis, D.; Chalupova, M. Technology for the preparation of PDMS optical fibers and some fiber structures. IEEE.
Photon. Technol. Lett. 2014, 26, 1446-9. DOI
71. Lu, C.; Park, S.; Richner, T. J.; et al. Flexible and stretchable nanowire-coated fibers for optoelectronic probing of spinal cord
circuits. Sci. Adv. 2017, 3, e1600955. DOI PubMed PMC
72. Martincek, I.; Pudis, D.; Gaso, P. Fabrication and optical characterization of strain variable PDMS biconical optical fiber taper. IEEE.
Photon. Technol. Lett. 2013, 25, 2066-9. DOI
73. Wang, Z.; Volinsky, A. A.; Gallant, N. D. Crosslinking effect on polydimethylsiloxane elastic modulus measured by custom-built
compression instrument. J. Appl. Polym. Sci. 2014, 131, app.41050. DOI
74. Johnston, I. D.; Mccluskey, D. K.; Tan, C. K. L.; Tracey, M. C. Mechanical characterization of bulk Sylgard 184 for microfluidics
and microengineering. J. Micromech. Microeng. 2014, 24, 035017. DOI
75. Darby, D. R.; Cai, Z.; Mason, C. R.; Pham, J. T. Modulus and adhesion of Sylgard 184, Solaris, and Ecoflex 00-30 silicone
elastomers with varied mixing ratios. J. Appl. Polym. Sci. 2022, 139, e52412. DOI
76. Li, Y.; Hu, J.; Cao, D.; Wang, S.; Dasgupta, P.; Liu, H. Optical-waveguide based tactile sensing for surgical instruments of minimally
invasive surgery. Front. Robot. AI. 2021, 8, 773166. DOI PubMed PMC
77. Vaicekauskaite, J.; Mazurek, P.; Vudayagiri, S.; Skov, A. L. Mapping the mechanical and electrical properties of commercial silicone
elastomer formulations for stretchable transducers. J. Mater. Chem. C. 2020, 8, 1273-9. DOI
78. Cheng, X.; Miao, L.; Su, Z.; et al. Controlled fabrication of nanoscale wrinkle structure by fluorocarbon plasma for highly transparent
triboelectric nanogenerator. Microsyst. Nanoeng. 2017, 3, 16074. DOI PubMed PMC

