Bradshaw Nathan P, Hirani Zoheb, Kuo Lidia, Li Siyang, Williams Nicholas X, Sangwan Vinod K, Chaney Lindsay E, Evans Austin M, Dichtel William R, Hersam Mark C
Department of Materials Science and Engineering, 2220 Campus Drive, Evanston, IL, 60208, USA.
Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, IL, 60208, USA.
Adv Mater. 2023 Sep;35(38):e2303673. doi: 10.1002/adma.202303673. Epub 2023 Jul 24.
With molecularly well-defined and tailorable 2D structures, covalent organic frameworks (COFs) have emerged as leading material candidates for chemical sensing, storage, separation, and catalysis. In these contexts, the ability to directly and deterministically print COFs into arbitrary geometries will enable rapid optimization and deployment. However, previous attempts to print COFs have been restricted by low spatial resolution and/or post-deposition polymerization that limits the range of compatible COFs. Here, these limitations are overcome with a pre-synthesized, solution-processable colloidal ink that enables aerosol jet printing of COFs with micron-scale resolution. The ink formulation utilizes the low-volatility solvent benzonitrile, which is critical to obtaining homogeneous printed COF film morphologies. This ink formulation is also compatible with other colloidal nanomaterials, thus facilitating the integration of COFs into printable nanocomposite films. As a proof-of-concept, boronate-ester COFs are integrated with carbon nanotubes (CNTs) to form printable COF-CNT nanocomposite films, in which the CNTs enhance charge transport and temperature sensing performance, ultimately resulting in high-sensitivity temperature sensors that show electrical conductivity variation by 4 orders of magnitude between room temperature and 300 °C. Overall, this work establishes a flexible platform for COF additive manufacturing that will accelerate the incorporation of COFs into technologically significant applications.
共价有机框架(COF)具有分子结构明确且可定制的二维结构,已成为化学传感、存储、分离和催化领域的主要材料候选者。在这些应用场景中,将COF直接且确定性地打印成任意几何形状的能力将有助于快速优化和应用。然而,此前打印COF的尝试受到低空间分辨率和/或沉积后聚合的限制,这限制了兼容COF的范围。在此,通过一种预合成的、可溶液加工的胶体墨水克服了这些限制,该墨水能够以微米级分辨率进行COF的气溶胶喷射打印。墨水配方使用了低挥发性溶剂苯甲腈,这对于获得均匀的印刷COF薄膜形态至关重要。这种墨水配方还与其他胶体纳米材料兼容,从而便于将COF集成到可打印的纳米复合薄膜中。作为概念验证,硼酸酯COF与碳纳米管(CNT)集成,形成可打印的COF-CNT纳米复合薄膜,其中CNT增强了电荷传输和温度传感性能,最终得到高灵敏度温度传感器,其在室温至300°C之间的电导率变化达4个数量级。总体而言,这项工作为COF增材制造建立了一个灵活的平台,将加速COF在具有重要技术意义的应用中的应用。