Müller Luca A E, Zingg Anita, Arcifa Andrea, Zimmermann Tanja, Nyström Gustav, Burgert Ingo, Siqueira Gilberto
Cellulose and Wood Materials Laboratory, Empa, Swiss Federal Laboratories for Materials Science and Technology, 8600 Dübendorf, Switzerland.
Wood Materials Science, Institute for Building Materials, ETH-Zürich, 8093 Zürich, Switzerland.
ACS Nano. 2022 Nov 22;16(11):18210-18222. doi: 10.1021/acsnano.2c05628. Epub 2022 Oct 18.
Conventional manufacturing techniques allow the production of photoresponsive cellulose nanocrystals (CNC)-based composites that can reversibly modify their optical, mechanical, or chemical properties upon light irradiation. However, such materials are often limited to 2D films or simple shapes and do not benefit from spatial tailoring of mechanical properties resulting from CNC alignment. Herein, we propose the direct ink writing (DIW) of 3D complex structures that combine CNC reinforcement effects with photoinduced responses. After grafting azobenzene photochromes onto the CNC surfaces, up to 15 wt % of modified nanoparticles can be introduced into a polyurethane acrylate matrix. The influence of CNC on rheological properties allows DIW of self-standing 3D structures presenting local shear-induced alignment of the active reinforcements. The printed composites, with longitudinal elastic modulus of 30 MPa, react to visible-light irradiation with 30-50% reversible softening and present a shape memory behavior. The phototunable energy absorption of 3D complex structures is demonstrated by harnessing both geometrical and photoresponsive effects, enabling dynamic mechanical responses to environmental stimuli. Functionalized CNC in 3D printable inks have the potential to allow the rapid prototyping of several devices with tailored mechanical properties, suitable for applications requiring dynamic responses to environmental changes.
传统制造技术能够生产基于光响应性纤维素纳米晶体(CNC)的复合材料,这类材料在光照下可可逆地改变其光学、机械或化学性质。然而,此类材料通常仅限于二维薄膜或简单形状,无法受益于因CNC排列而实现的机械性能空间定制。在此,我们提出对三维复杂结构进行直接墨水书写(DIW),将CNC增强效应与光诱导响应相结合。在将偶氮苯光致变色染料接枝到CNC表面后,可将高达15 wt%的改性纳米颗粒引入聚氨酯丙烯酸酯基体中。CNC对流变性能的影响使得能够对自立式三维结构进行直接墨水书写,这些结构呈现出活性增强材料的局部剪切诱导排列。打印出的复合材料纵向弹性模量为30 MPa,对可见光照射有30 - 50%的可逆软化反应,并呈现出形状记忆行为。通过利用几何效应和光响应效应,证明了三维复杂结构的光可调能量吸收,从而实现对环境刺激的动态机械响应。三维可打印墨水中的功能化CNC有潜力实现多种具有定制机械性能的器件的快速原型制作,适用于需要对环境变化做出动态响应的应用。