Fang Xiaoyu, Choi Ji Yong, Lu Chenwei, Reichert Elizabeth, Pham Hoai T B, Park Jihye
Department of Chemistry, University of Colorado Boulder Boulder Colorado 80303 USA
Chemical and Biological Engineering, University of Colorado Boulder Boulder Colorado 80303 USA.
Chem Sci. 2025 Jan 16;16(7):3168-3172. doi: 10.1039/d4sc07025a. eCollection 2025 Feb 12.
Morphology control of electrically conductive metal-organic frameworks (EC-MOFs) can be a powerful means to tune their surface area and carrier transport pathways, particularly beneficial for energy conversion and storage. However, controlling EC-MOFs' morphology is underexplored due to the uncontrollable crystal nucleation and rapid growth kinetics. This work introduces a microwave-assisted strategy to readily synthesize Cu-HHTP (HHTP = 2,3,6,7,10,11-hexahydroxytriphenylene) with controlled morphologies. We controlled solvent compositions to facilitate particles' directional growth to 1D and 2D crystals. Meanwhile, we found that ultrasonication can manipulate crystal seeding, yielding 0D spherical Cu-HHTP crystals. Electronic conductivity measurements suggest that the isotropic nature of the 0D crystals allows a conductivity of 7.34 × 10 S cm, much higher than 1D and 2D counterparts. Additionally, the controlled 0D morphology enhanced the material's capacitance and effective surface area and significantly improved its photocurrent response. These findings underscore the pivotal impact of controlled morphology in optimizing EC-MOFs' physicochemical properties.
导电金属有机框架材料(EC-MOFs)的形态控制是调节其表面积和载流子传输路径的有力手段,这对能量转换和存储尤为有益。然而,由于晶体成核不可控和快速生长动力学,EC-MOFs的形态控制研究较少。这项工作引入了一种微波辅助策略,以轻松合成具有可控形态的Cu-HHTP(HHTP = 2,3,6,7,10,11-六羟基三亚苯)。我们控制溶剂组成以促进颗粒向一维和二维晶体的定向生长。同时,我们发现超声处理可以操纵晶种,产生零维球形Cu-HHTP晶体。电导率测量表明,零维晶体的各向同性使得其电导率为7.34×10 S cm,远高于一维和二维晶体。此外,可控的零维形态增强了材料的电容和有效表面积,并显著改善了其光电流响应。这些发现强调了可控形态对优化EC-MOFs物理化学性质的关键影响。