McKenzie Jacob, Pennington Doran L, Ericson Thomas, Cope Elana, Kaufman Aaron J, Cozzolino Anthony F, Johnson David C, Kadota Kentaro, Hendon Christopher H, Brozek Carl K
Department of Chemistry and Biochemistry, Materials Science Institute, University of Oregon, Eugene, OR, 97403, USA.
Department of Chemistry and Biochemistry, Texas Tech University, Lubbock, TX, 79409, USA.
Adv Mater. 2024 Nov;36(46):e2409959. doi: 10.1002/adma.202409959. Epub 2024 Sep 24.
2D materials can be isolated as monolayer sheets when interlayer interactions involve weak van der Waals forces. These atomically thin structures enable novel topological physics and open chemical questions of how to tune the structure and properties of the sheets while maintaining them as isolated monolayers. Here, this work investigates 2D electroactive sheets that exfoliate in solution into colloidal nanosheets, but aggregate upon oxidation, giving rise to tunable interlayer charge transfer absorption and photoluminescence. This optical behavior resembles interlayer excitons, now intensely studied due to their long-lived emission, but which remain difficult to tune through synthetic chemistry. Instead, the interlayer excitons of these framework sheets can be modulated through control of solvent, electrolyte, oxidation state, and the composition of the framework building blocks. Compared to other 2D materials, these framework sheets display the largest known interlayer binding strengths, attributable to specific orbital interactions between the sheets, and among the longest interlayer exciton lifetimes. Taken together, this study provides a microscopic basis for manipulating long-range opto-electronic behavior in van der Waals materials through molecular synthetic chemistry.
当层间相互作用涉及弱范德华力时,二维材料可以被分离成单层薄片。这些原子级薄的结构开启了新颖的拓扑物理学,并引发了关于如何在将薄片保持为孤立单层的同时调节其结构和性质的化学问题。在此,这项工作研究了二维电活性薄片,其在溶液中剥离成胶体纳米片,但在氧化时会聚集,从而产生可调节的层间电荷转移吸收和光致发光。这种光学行为类似于层间激子,由于其长寿命发射,目前正受到深入研究,但通过合成化学来调节它们仍然很困难。相反,这些框架薄片的层间激子可以通过控制溶剂、电解质、氧化态以及框架结构单元的组成来进行调制。与其他二维材料相比,这些框架薄片显示出已知最大的层间结合强度,这归因于薄片之间特定的轨道相互作用,并且具有最长的层间激子寿命之一。综上所述,这项研究为通过分子合成化学操纵范德华材料中的长程光电行为提供了微观基础。