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Highly strong and flexible composite hydrogel reinforced by aligned wood cellulose skeleton via alkali treatment for muscle-like sensors

机译:通过对准木质纤维素骨架通过对准的木质纤维素骨架对肌肉状传感器进行高强度和柔韧的复合水凝胶

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摘要

Strong and flexible hydrogels have attracted increasing scientific interest due to their "soft-and-wet"properties, which are similar to those of human soft tissues. In this study, a bioinspired, facile method to fabricate a composite hydrogel with a naturally high-strength skeleton structure that shows comparable mechanical performance to those of muscle, tendons and ligaments is reported. The method includes extracting an aligned cellulose skeleton directly from wood by delignification and then compositing with polyacrylamide (PAM) by in situ chemical polymerization. During these processes, the natural wood skeleton is well preserved and sufficiently high tensile stress is created along the longitudinal direction (L-direction) of wood cellulose fiber, which leads to a highly anisotropic structure in the prepared PAM/delignified wood (PDW) hydrogels. Although the aligned cellulose skeleton exhibits an efficient strengthening effect, the obtained PDM hydrogels lack the desired flexibility and are easily broken during the harsh deformations. To achieve flexiblility, a simple alkali treatment was applied to the delignified wood which provided the developed PAM/alkali-treated delignified wood (APDM) hydrogels with superflexiblility. As a result, the A-PDM hydrogels show excellent tensile properties with Young's modulus, tensile fracture strength and elongation of 145.52 +/- 2.32 MPa, 16.47 +/- 1.40 MPa and 15.99 +/- 1.81%, respectively. Such favorable mechanical performance is employed to assemble a muscle-like sensor by incorporating the A-PDM hydrogel with ionic Na2SO4 to detect diverse macro-scale human motions. This study provides a facile strategy for designing strong composite hydrogels with superflexibility, opening an effective route for the development of new wood nanotechnology and various functional wood-derived materials.
机译:由于其“软湿润”性能,强烈柔软的水凝胶吸引了增加的科学兴趣,这与人软组织类似。在该研究中,据报道,一种生物悬浮的,容易制造具有天然高强度骨架结构的复合水凝胶,其显示出与肌肉,肌腱和韧带的相当的机械性能。该方法包括通过脱氨酸直接从木材中萃取对准的纤维素骨架,然后通过原位化学聚合与聚丙烯酰胺(PAM)合成。在这些过程中,天然木骨架保持良好,并且沿木质纤维素纤维的纵向(L方向)产生足够高的拉伸应力,这导致制备的PAM /脱氧木材(PDW)水凝胶中的高度各向异性结构。尽管对齐的纤维素骨架表现出有效的强化效果,但是所获得的PDM水凝胶缺乏所需的柔韧性,并且在苛刻的变形期间容易破裂。为了实现Flexiblility,将简单的碱处理应用于脱烃木材,提供了发育的PAM /碱处理的去吡喹酮(APDM)水凝胶,其具有超折叠性。结果,A-PDM水凝胶具有优异的拉伸性能,具有杨氏模量,拉伸断裂强度和145.52 +/- 2.32MPa,16.47 +/- 1.40MPa和15.99 +/- 1.81%。使用这种有利的机械性能来通过将A-PDM水凝胶包含离子Na 2 SO 4来组装肌肉状传感器以检测不同的宏观级人的运动。本研究提供了设计具有超重性的强力复合水凝胶的容易策略,开启了新的木纳米技术开发和各种功能木材衍生材料的有效途径。

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