Afrin Sajia, Yang Xiaozhou, Morris Amanda J, Grumstrup Erik M
Department of Chemistry and Biochemistry, Montana State University, Bozeman, Montana 59717, United States.
Montana Materials Science Program, Montana State University, Bozeman, Montana 59717, United States.
J Am Chem Soc. 2024 Feb 21;146(7):4309-4313. doi: 10.1021/jacs.3c12275. Epub 2024 Feb 8.
To date, spectroscopic characterization of porphyrin-based metal organic frameworks (MOFs) has relied almost exclusively on ensemble techniques, which provide only structurally averaged insight into the functional properties of these promising photochemical platforms. This work employs time-resolved pump-probe microscopy to probe ultrafast dynamics in PCN-222 MOF single crystals. The simultaneous high spatial and temporal resolution of the technique enables the correlation of spectroscopic observables to both inter- and intracrystal structural heterogeneity. The pump-probe measurements show that significant differences in the excited state lifetime exist between individual PCN-222 crystals of an ensemble. On a single PCN-222 crystal, differences in excited state lifetime and photoluminescence quantum yield are found to correlate to microscale structural defects introduced at crystallization. Pump probe microscopy also enables the direct measurement of excited state transport. Imaging of exciton transport on individual MOF crystals reveals rapid, but subdiffusive exciton transport which slows on the 10s of ps time scale. Time-averaged exciton diffusion coefficients over the first 200 ps span a range of 0.27 to 1.0 cm/s, indicating that excited states are rapidly transported through the porphyrin network of PCN-222 before being trapped. Together, these single-particle-resolved measurements provide important new insight into the role played by structural defects on the photochemical functionality of porphyrin-based MOFs.
迄今为止,基于卟啉的金属有机框架材料(MOFs)的光谱表征几乎完全依赖于系综技术,而这些技术仅能提供关于这些有前景的光化学平台功能特性的结构平均见解。这项工作采用时间分辨泵浦 - 探测显微镜来探测PCN - 222 MOF单晶中的超快动力学。该技术同时具备的高空间和时间分辨率能够将光谱观测结果与晶内和晶间结构异质性相关联。泵浦 - 探测测量结果表明,一组PCN - 222晶体中各个晶体之间的激发态寿命存在显著差异。在单个PCN - 222晶体上,发现激发态寿命和光致发光量子产率的差异与结晶过程中引入的微观结构缺陷相关。泵浦 - 探测显微镜还能够直接测量激发态传输。对单个MOF晶体上的激子传输进行成像显示,激子传输迅速,但属于亚扩散传输,在数十皮秒的时间尺度上会减慢。在最初的200皮秒内,时间平均激子扩散系数范围为0.27至1.0厘米/秒,这表明激发态在被捕获之前通过PCN - 222的卟啉网络快速传输。这些单粒子分辨测量共同为结构缺陷在基于卟啉的MOFs光化学功能中所起的作用提供了重要的新见解。