密度泛函理论
材料科学
光催化
电子结构
有机太阳能电池
吸收(声学)
光催化分解水
化学物理
系列(地层学)
有机半导体
分子
有机发光二极管
分解水
二极管
计算化学
可见光谱
还原(数学)
吸收光谱法
纳米技术
分子动力学
光电子学
物理化学
化学
分子模型
金属有机骨架
作者
James D. Green,Hao Wang,Andrew I. Cooper,Daniel Medranda,Jenny Nelson,Kim E. Jelfs
摘要
Organic crystalline materials are potential candidates for photocatalytic overall water splitting (OWS). Although organic crystals have been heavily investigated for application in organic electronics, such as organic light-emitting diodes (OLEDs) and solar cells, there have been comparatively fewer studies into OWS in these materials. A major challenge is the large number of electronic and structural criteria that must be met for a material to make a viable OWS photocatalyst. Optical absorption, reduction and oxidation potentials and charge-transport properties are among the key considerations, and these are influenced both by molecular structure and the solid-state packing arrangement, making computational modelling challenging. Here, we investigate a series of known organic electronic materials using periodic density functional theory (DFT) and compare their calculated electronic properties of optical absorption and reduction and oxidation potentials with literature experimental data. We also perform a series of gas-phase molecular calculations, which show a good agreement with both the literature data and periodic DFT calculations for the optoelectronic properties of the systems studied, showing that gas-phase molecular calculations can be used to screen organic crystals for OWS at a reduced computational cost.
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