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Mechanistic Probes of Zeolitic Imidazolate Framework for Photocatalytic Application

机译:光催化应用沸石Inaidazolate框架的机械探针

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In this work, we report a zeolitic imidazolate framework (ZIF-67) with remarkable activity in the hydrogen evolution reaction (HER): 40 500 mu mol H-2/g of metal organic framework (MOF). This is, to the best of our knowledge, the highest activity achieved by any MOF system. This result necessitated assessment of the atomic-scale mechanistic function of ZIF-67 in HER, using advanced spectroscopy techniques, including time-resolved optical (OTA) and in situ X-ray-absorption (XAS) spectroscopy. Through the correlation of the OTA results with the catalytic performance, we demonstrated that the electron transfer (ET) pathway, rather than the energy transfer (ENT) pathway, between the photosensitizer and ZIF-67 is the key factor that controls the efficiency of HER activity, because HER activity that undergoes the ET pathway is 3 orders of magnitude higher than that which undergoes the ENT process. Using in situ XAS, we unraveled the spectral features for key intermediate species, which are likely responsible for the rate-determining process under turnover conditions. This work represents an original approach to study porous ZIF materials at the molecular level using advanced spectroscopic techniques, providing unprecedented insights into the photoactive nature of ZIF frameworks.
机译:在这项工作中,我们在氢进化反应(她)中具有显着活性的沸石Imidazolate框架(ZIF-67):40500μmolH-2 / g金属有机骨架(MOF)。这是我们所知,任何MOF系统都实现的最高活动。该结果需要评估ZIF-67在她的原子尺度机械功能,使用高级光谱技术,包括时间分辨光学(OTA)和原位X射线吸收(XAS)光谱。通过对易催化性能的结果的相关性,我们证明了光敏剂和ZIF-67之间的电子转移(ET)途径,而不是能量转移(ENT)途径是控制她效率的关键因素活动,因为她经历ET途径的活动是3个数量级,其数量级高于经历ENT过程的数量级。使用原位XAS,我们解开了关键中间物种的光谱特征,这可能负责速度条件下的速率确定过程。这项工作代表了使用先进的光谱技术在分子水平上研究多孔ZIF材料的原始方法,从而进入ZIF框架的光活性性质的前所未有的见解。

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