Zhou Shuai, Bai Jing, Li Tiantian, Gao Xiaxin, Xu Ruoyu, Shi Zixing
School of Chemistry & Chemical Engineering, Frontiers Science Center for Transformative Molecules, State Key Laboratory for Metal Matrix Composite Materials, Shanghai Jiao Tong University, Shanghai 200240, P. R. China.
ACS Appl Mater Interfaces. 2022 Jan 12;14(1):2082-2091. doi: 10.1021/acsami.1c21867. Epub 2022 Jan 3.
Shape memory polymers can change their initial shape under the stimulation of the external environment, but most of the stimulations require not only an external force but also a high temperature, which limits their application to a certain extent. Inspired by the unmatched elongation of cells on both sides of the mimosa petiole in nature, which leads to leaf closure, we designed a new type of shape transformation polymer, which can transform between 2D and 3D by simple stretching and releasing steps at room temperature. Surface patterning on one side of the sample film was realized via a coordination network of Fe-COOH to achieve different coordination gradients along its thickness. By this way, different movements of polymer chains along the thickness would lead to 2D-3D transformation upon releasing the stretched sample. Using this method, we obtained a series of transformations from customized 2D materials to complex 3D shapes and explored their potential application in information encryption transmission.
形状记忆聚合物可以在外部环境的刺激下改变其初始形状,但大多数刺激不仅需要外力,还需要高温,这在一定程度上限制了它们的应用。受自然界中含羞草叶柄两侧细胞无与伦比的伸长导致叶片闭合的启发,我们设计了一种新型的形状转变聚合物,它可以在室温下通过简单的拉伸和释放步骤在二维和三维之间转变。通过Fe-COOH的配位网络在样品薄膜的一侧实现表面图案化,以沿其厚度实现不同的配位梯度。通过这种方式,聚合物链沿厚度的不同运动会导致在释放拉伸后的样品时发生二维到三维的转变。使用这种方法,我们获得了一系列从定制的二维材料到复杂三维形状的转变,并探索了它们在信息加密传输中的潜在应用。