Acta Phys. -Chim. Sin. ›› 2022, Vol. 38 ›› Issue (9): 2204059.doi: 10.3866/PKU.WHXB202204059
Special Issue: Carbonene Fiber and Smart Textile
• ARTICLE • Previous Articles
Wenqian He1, Ya Di2, Nan Jiang2, Zunfeng Liu1,*(), Yongsheng Chen1,*(
)
Received:
2022-04-30
Accepted:
2022-06-15
Published:
2022-06-22
Contact:
Zunfeng Liu,Yongsheng Chen
E-mail:liuzunfeng@nankai.edu.cn;yschen99@nankai.edu.cn
About author:
yschen99@nankai.edu.cn (Y.C.)Supported by:
MSC2000:
Wenqian He, Ya Di, Nan Jiang, Zunfeng Liu, Yongsheng Chen. Graphene-Oxide Seeds Nucleate Strong and Tough Hydrogel-Based Artificial Spider Silk[J].Acta Phys. -Chim. Sin., 2022, 38(9): 2204059.
Fig 2
Rheology tests of the polyacrylic/vinyl-functionalised silica nanoparticles (PAA-SNV) hydrogel. (a) Strain oscillatory rheology and (c) step-strain (between 1% and 1000%) oscillatory rheology of the PAA-SNV hydrogel at an angular frequency of 10 rad·s?1. (b) Frequency-dependent rheology and (d) the shear viscosity of the PAA-SNV hydrogel with different SNV contents at 1% oscillatory strain."
Fig 3
The hierarchical structure and mechanical properties of the PAA/SNV gel fiber. (a) A photograph showing multiple gel fibers can be drawn-spun simultaneously. (b, c) The optical (b) and SEM (c) images of the gel fiber. (d) The diameter of the gel fiber a function of the depth of the iron rod dipping into the gel. (e, f) Stress?strain curves a function of the SNV contents (e) and AA contents (f) for the gel fiber."
Fig 4
Modulating the structure and mechanical properties of the gel fibers by adding graphene oxide (GO) seeds. (a) Schematic illustration of modulating nano-assembly structure by adding seeds. (b) The AFM image of the GO and (c) a sectional profile. (d) FTIR spectra of the gel fiber containing 0% and 0.01% GO. (e–g) The SEM images of fiber surface (e) and fractured cross-section (f), and polarized optical images (g) of the gel fibers for different seed contents."
Fig 5
Mechanical test for gel fibers containing GO seeds. (a) Breaking stress, breaking strain, and toughness of the gel fibers for different GO contents (a), drying time (b), stretch rate (c) and relative humidity (d). (e) Loading-unloading curves. (f) Stress–strain curves at relative humidity of 10% at 25 ℃ for the as-prepared hydrogel fibers and after super-contraction and for different time."
Fig 6
Impact reduction of the gel fibers. (a) Images showing a 300-ply of 10-μm-diameter gel yarn lifting a 3-kg weight. (b) A 12-μm-diameter, 12-cm-long gel fiber was placed at an angle of 30°. The 6.7-g-weight object was captured by gel fiber with impact reduction and not bounced back. The fiber was slowly elongated by 53%."
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