Diamond Brian G, Payne Lillian I, Hendon Christopher H
Department of Chemistry and Biochemistry, University of Oregon, Eugene, OR, 97403, USA.
Commun Chem. 2023 Apr 12;6(1):67. doi: 10.1038/s42004-023-00863-z.
Linker functionalization is a common route used to affect the electronic and catalytic properties of metal-organic frameworks. By either pre- or post-synthetically installing linkages with differing linker moieties the band gap, workfunction, and exciton lifetimes have been shown to be affected. One overlooked aspect of linker functionalization, however, has been the impact on the metal d-orbital energies to which they are bound. The ligand field differences should result in substantial changes in d-splitting. In this study we use density functional theory (DFT) to study the energetics of d-orbital energy tuning as a function of linker chemistry. We offer a general descriptor, linker pK, as a tool to predict resultant band energies in metal-organic frameworks (MOFs). Our calculations reveal that simple functionalizations can affect the band energies, of primarily metal d lineage, by up to 2 eV and illustrate the significance of this band modularity using four archetypal MOFs: UiO-66, MIL-125, ZIF-8, and MOF-5. Together, we show that linker functionalization dramatically affects d-energies in MOF clusters and highlight that linker functionalization is a useful route for fine-tuning band edges centered on the metals, rather than linkers themselves.
连接体功能化是一种用于影响金属有机框架的电子和催化性能的常见途径。通过在合成前或合成后安装具有不同连接体部分的连接键,已证明带隙、功函数和激子寿命会受到影响。然而,连接体功能化一个被忽视的方面是对与其结合的金属d轨道能量的影响。配体场差异应会导致d分裂的显著变化。在本研究中,我们使用密度泛函理论(DFT)来研究作为连接体化学函数的d轨道能量调谐的能量学。我们提供了一个通用描述符,连接体pK,作为预测金属有机框架(MOF)中所得能带能量的工具。我们的计算表明,简单的功能化可以使主要为金属d谱系的能带能量变化高达2 eV,并使用四种典型的MOF:UiO-66、MIL-125、ZIF-8和MOF-5来说明这种能带模块化的重要性。我们共同表明,连接体功能化会显著影响MOF簇中的d能量,并强调连接体功能化是微调以金属而非连接体本身为中心的能带边缘的有用途径。