Choi Ji Yong, Flood John, Stodolka Michael, Pham Hoai T B, Park Jihye
Department of Chemistry, University of Colorado Boulder, Boulder, Colorado 80309, United States.
ACS Nano. 2022 Feb 22;16(2):3145-3151. doi: 10.1021/acsnano.1c10838. Epub 2022 Feb 4.
The emergence of 2D electrically conductive metal-organic frameworks (MOFs) has significantly expanded the scope of metal-organic framework applications from electrochemical energy storage to electronic devices. However, their potentials are not fully exploited due to limited accessibility to internal pores in stacked 2D structures. Herein we transform a 2D conjugated MOF into a 3D framework postsynthetic pillar-ligand insertion. Cu-THQ was chosen due to its ability to adopt additional ligands at the axial positions at the copper nodes. Cu-THQ demonstrates that structural augmentation increases ion accessibility into internal pores, resulting in an increased gravimetric capacitance up to double that of the pristine counterpart. Beyond this, we believe that our findings can further be used to functionalize the existing 2D conductive MOFs to offer more opportunities in sensing, electronic, and energy-related applications by utilizing additional functions and increased accessibility from the pillars.
二维导电金属有机框架(MOF)的出现显著扩展了金属有机框架的应用范围,从电化学能量存储到电子设备。然而,由于堆叠二维结构中内部孔隙的可及性有限,它们的潜力尚未得到充分利用。在此,我们通过后合成柱配体插入将二维共轭MOF转化为三维框架。选择Cu-THQ是因为它能够在铜节点的轴向位置采用额外的配体。Cu-THQ表明结构增强增加了离子进入内部孔隙的可及性,导致重量电容增加,最高可达原始对应物的两倍。除此之外,我们相信我们的发现可进一步用于使现有的二维导电MOF功能化,通过利用额外的功能以及柱体提供的更高可及性,在传感、电子和能量相关应用中提供更多机会。