Center for Nanospace-confined Chemical Reactions (NCCR), Pohang University of Science and Technology (POSTECH), Pohang, 37673, South Korea.
Department of Chemistry, Pohang University of Science and Technology (POSTECH), Pohang, 37673, South Korea.
Angew Chem Int Ed Engl. 2023 Jul 10;62(28):e202303890. doi: 10.1002/anie.202303890. Epub 2023 May 5.
Herein, by choosing few-nm-thin two-dimensional (2D) nanocrystals of MOF-5 containing in-planner square lattices as a modular platform, a crystal lattice-guided wet-chemical etching has been rationally accomplished. As a result, two attractive pore patterns carrying Euclidean curvatures; precisely, plus(+)-shaped and fractal-patterned pores via ⟨100⟩ and ⟨110⟩ directional etching, respectively, are regulated in contrast to habitually formed spherical-shaped random etches on MOF surface. In agreement with the theoretical calculations, a diffusion-limited etching process has been optimized to devise high-yield of size-tunable fractal-pores on the MOF surface that tenders for a compatibly high payload of catalytic Re -complexes using the existing large edge area once modified into a free amine-group-exposed inner pore surface. Finally, on benefiting from the long-range fractal opening in 2D MOF support structure, while loaded on an electrode surface, a facilitated cross-interface charge-transportation and well-exposure of immobilized Re -catalysts are anticipated, thus realizing enhanced activity and stability of the supported catalyst in photoelectrochemical CO -to-CO reduction.
在此,通过选择具有平面正方形晶格的几纳米厚的二维(2D)MOF-5 纳米晶作为模块平台,合理地完成了晶格导向的湿化学刻蚀。结果,通过沿 ⟨100⟩和 ⟨110⟩方向定向刻蚀,分别调控了具有欧几里得曲率的两种有吸引力的孔图案;确切地说,分别为“+”形和分形图案的孔,而不是 MOF 表面上通常形成的球形随机刻蚀。与理论计算一致,优化了扩散限制的刻蚀过程,以设计 MOF 表面上具有可调节尺寸的分形孔,这有利于使用修饰后的大量边缘区域,一旦将其转化为具有自由胺基团暴露的内部孔表面,就可以负载高负载量的催化 Re 配合物。最后,得益于 2D MOF 支撑结构中的长程分形开口,在负载到电极表面时,预计会促进界面间的电荷转移和固定化 Re 催化剂的良好暴露,从而实现负载催化剂在光电化学 CO 到 CO 还原中的增强的活性和稳定性。