Dagnaw Fentahun Wondu, Harrath Karim, Zheng Tao, Wu Xu-Dong, Liu Yu-Ze, Li Rui-Qi, Xie Luo-Han, Li Zhen, He Xuezhong, Tong Qing-Xiao, Jian Jing-Xin
Department of Chemistry, Key Laboratory for Preparation and Application of Ordered Structural Materials of Guangdong Province, and Guangdong Provincial Key Laboratory of Marine Disaster Prediction and Prevention, Shantou University, Guangdong, 515063, P. R. China.
Department of Chemistry, Southern University of Science and Technology, Shenzhen, 518055, P. R. China.
Adv Sci (Weinh). 2024 Nov;11(42):e2408152. doi: 10.1002/advs.202408152. Epub 2024 Sep 10.
Coupling carbon capture with electrocatalytic carbon dioxide reduction (COR) to yield high-value chemicals presents an appealing avenue for combating climate change, yet achieving highly selective electrocatalysts remains a significant challenge. Herein, two molecularly woven covalent organic frameworks (COFs) are designed, namely CuCOF and CuCOF, with copper(I)-bisphenanthroline complexes as building blocks. The metal-organic helical structure unit made the CuCOF and CuCOF present woven patterns, and their ordered pore structures and cationic properties enhanced their CO adsorption and good conductivity, which is confirmed by gas adsorption and electrochemical analysis. In the electrocatalytic COR measurements, CuCOF decorated with extra ethyl groups exhibit a main CO product with selectivity of 57.81%, outperforming the CuCOF with 42.92% CO at the same applied potential of 0.8 V. After loading Pd nanoparticles, CuCOF-Pd and CuCOF-Pd performed increased CO selectivity up to 84.97% and 95.45%, respectively. Combining the DFT theoretical calculations and experimental measurements, it is assumed that the molecularly woven cationic COF provides a catalytic microenvironment for COR and ensures efficient charge transfer from the electrode to the catalytic center, thereby achieving high electrocatalytic activity and selectivity. The present work significantly advances the practice of cationic COFs in real-time CO capture and highly selective conversion to value-added chemicals.
将碳捕获与电催化二氧化碳还原(COR)相结合以生产高价值化学品,是应对气候变化的一条有吸引力的途径,但要实现高选择性的电催化剂仍然是一项重大挑战。在此,设计了两种分子编织的共价有机框架(COF),即CuCOF和CuCOF,以铜(I)-双菲咯啉配合物为构建单元。金属有机螺旋结构单元使CuCOF和CuCOF呈现出编织图案,其有序的孔结构和阳离子性质增强了它们对CO的吸附和良好的导电性,这通过气体吸附和电化学分析得到证实。在电催化COR测量中,装饰有额外乙基的CuCOF在0.8 V的相同施加电位下表现出主要的CO产物,选择性为57.81%,优于CO选择性为42.92%的CuCOF。负载钯纳米颗粒后,CuCOF-Pd和CuCOF-Pd的CO选择性分别提高到84.97%和95.45%。结合DFT理论计算和实验测量,推测分子编织的阳离子COF为COR提供了催化微环境,并确保了从电极到催化中心的有效电荷转移,从而实现了高电催化活性和选择性。目前的工作显著推进了阳离子COF在实时CO捕获和高选择性转化为增值化学品方面的实践。