青岛科技大学  English 
史新妍
赞  

教授 博士生导师  
硕士生导师  

教师拼音名称:shixinyan

电子邮箱:

所在单位:橡塑材料与工程省部共建教育部重点实验室

职务:橡塑材料与工程省部共建教育部重点实验室常务副主任

学历:博士研究生

办公地点:青岛市舞阳路51-1号青岛科技大学橡塑楼406房间

性别:女

联系方式:0532-84022468

学位:博士

职称:教授

毕业院校:青岛科技大学

移动电话:

邮箱:

通讯/办公地址:

办公室电话:

手机版

访问量:

最后更新时间:..

3D printing functional materials with extreme regulation of mechanical performances from hydrogel to engineering plastic

关键字:TOUGH HYDROGELS

摘要:Poly(vinyl alcohol) (PVA) is an important component of functional materials exhibiting excellent mechanical properties due to its remarkable hydrogen bonding interactions and high crystallinity. Despite the successful development of PVA materials with enhanced mechanical properties through various methods, challenges remain in achieving an extreme regulation from hydrogel to engineering plastic, as well as in incorporating diverse functionalities such as shape memory, adhesion, and 3D printability with freeform design. In this study, inspired by the unique brittle-to-tough transition of the Discinisca tenuis shell, we developed a facile strategy to dramatically and reversibly modulate the mechanical properties of 3D printable PVA/Acrylamide (AAm) materials. By simply controlling hydration and dehydration, we achieved in situ continuous tuning of mechanical properties across several orders of magnitude. Specifically, the tensile strength varied from 0.02 f 0.002 MPa to 104.58 f 4.4 MPa, the modulus ranged from 0.002 f 0.0004 MPa to 592 f 7.8 MPa, and the toughness increased from 14 f 1 kJ/m3 to 24,671 f 469 kJ/m3. To the best of our knowledge, these results represent the broadest range of tunable mechanical properties reported to date, marking the first successful transition from hydrogels to elastomers and even to engineering plastics. Furthermore, by integrating digital light processing 3D printing, the prepared material in its hydrogel state can be constructed into various architectures with the amazing double reversible shape memory behaviors, alongside excellent adhesion and conductivity, making it suitable for flexible sensors. Taking advantage of the transformation from hydrogel to engineering plastic, we have successfully integrated flexible sensors and rigid dislocated joint fixation, both fabricated from a single PVA/AAm material, into one smart system via continuous hydration and dehydration, thereby addressing the contradiction of using rigid materials for high-sensitivity flexible sensors. In summary, this study presents an efficient strategy for fabricating functional material with large-order regulation of mechanical performances and provides a solution for integrating flexible sensors with high-strength hydrogels into a cohesive platform.

卷号:512

期号:

是否译文:

崂山校区 - 山东省青岛市松岭路99号   
四方校区 - 山东省青岛市郑州路53号   
中德国际合作区(中德校区) - 山东省青岛市西海岸新区团结路3698号
高密校区 - 山东省高密市杏坛西街1号   
济南校区 - 山东省济南市文化东路80号©2015 青岛科技大学    
管理员邮箱:master@qust.edu.cn