Department of Chemistry, Northwestern University, Evanston, Illinois 60208, USA.
J Am Chem Soc. 2013 Jan 16;135(2):862-9. doi: 10.1021/ja310596a. Epub 2013 Jan 2.
Given that energy (exciton) migration in natural photosynthesis primarily occurs in highly ordered porphyrin-like pigments (chlorophylls), equally highly ordered porphyrin-based metal-organic frameworks (MOFs) might be expected to exhibit similar behavior, thereby facilitating antenna-like light-harvesting and positioning such materials for use in solar energy conversion schemes. Herein, we report the first example of directional, long-distance energy migration within a MOF. Two MOFs, namely F-MOF and DA-MOF that are composed of two Zn(II) porphyrin struts [5,15-dipyridyl-10,20-bis(pentafluorophenyl)porphinato]zinc(II) and [5,15-bis[4-(pyridyl)ethynyl]-10,20-diphenylporphinato]zinc(II), respectively, were investigated. From fluorescence quenching experiments and theoretical calculations, we find that the photogenerated exciton migrates over a net distance of up to ~45 porphyrin struts within its lifetime in DA-MOF (but only ~3 in F-MOF), with a high anisotropy along a specific direction. The remarkably efficient exciton migration in DA-MOF is attributed to enhanced π-conjugation through the addition of two acetylene moieties in the porphyrin molecule, which leads to greater Q-band absorption intensity and much faster exciton-hopping (energy transfer between adjacent porphyrin struts). The long distance and directional energy migration in DA-MOF suggests promising applications of this compound or related compounds in solar energy conversion schemes as an efficient light-harvesting and energy-transport component.
鉴于天然光合作用中的能量(激子)迁移主要发生在高度有序的卟啉样色素(叶绿素)中,同样高度有序的基于卟啉的金属有机骨架(MOF)可能表现出类似的行为,从而促进类似天线的光捕获,并将这些材料定位用于太阳能转换方案。在此,我们报告了 MOF 内定向长程能量迁移的第一个例子。两种 MOF,即由两个 Zn(II)卟啉支柱[5,15-二吡啶-10,20-双(五氟苯基)卟啉锌(II)和[5,15-双[4-(吡啶基)乙炔基]-10,20-二苯基卟啉锌(II)组成的 F-MOF 和 DA-MOF 进行了研究。通过荧光猝灭实验和理论计算,我们发现光生激子在 DA-MOF 中在其寿命内迁移超过 45 个卟啉支柱的净距离(但在 F-MOF 中仅 3 个),在特定方向上具有高各向异性。DA-MOF 中激子的高效迁移归因于卟啉分子中添加两个乙炔基部分增强了π共轭,这导致 Q 带吸收强度增加,激子跳跃(相邻卟啉支柱之间的能量转移)更快。DA-MOF 中长距离和定向能量迁移表明该化合物或相关化合物在太阳能转换方案中作为高效光捕获和能量传输组件具有有前途的应用。