Li Tongtao, Xia Xiuyang, Wu Guanhong, Cai Qingfu, Lyu Xuanyu, Ning Jing, Wang Jing, Kuang Min, Yang Yuchi, Pica Ciamarra Massimo, Ni Ran, Yang Dong, Dong Angang
Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Department of Chemistry, Fudan University, Shanghai 200433, China.
State Key Laboratory of Molecular Engineering of Polymers and Department of Macromolecular Science, Fudan University, Shanghai 200438, China.
Sci Adv. 2022 Jul;8(26):eabq0969. doi: 10.1126/sciadv.abq0969. Epub 2022 Jul 1.
The ordered coassembly of mixed-dimensional species-such as zero-dimensional (0D) nanocrystals and 2D microscale nanosheets-is commonly deemed impracticable, as phase separation almost invariably occurs. Here, by manipulating the ligand grafting density, we achieve ordered coassembly of 0D nanocrystals and 2D nanosheets under standard solvent evaporation conditions, resulting in macroscopic, freestanding hybrid-dimensional superlattices with both out-of-plane and in-plane order. The key to suppressing the notorious phase separation lies in hydrophobizing nanosheets with molecular ligands identical to those of nanocrystals but having substantially lower grafting density. The mismatched ligand density endows the two mixed-dimensional components with a molecular recognition-like capability, driving the spontaneous organization of densely capped nanocrystals at the interlayers of sparsely grafted nanosheets. Theoretical calculations reveal that the intercalation of nanocrystals can substantially reduce the short-range repulsions of ligand-grafted nanosheets and is therefore energetically favorable, while subsequent ligand-ligand van der Waals attractions induce the in-plane order and kinetically stabilize the laminate superlattice structure.
混合维度物种(如零维(0D)纳米晶体和二维微米级纳米片)的有序共组装通常被认为是不可行的,因为几乎总会发生相分离。在此,通过控制配体接枝密度,我们在标准溶剂蒸发条件下实现了0D纳米晶体和二维纳米片的有序共组装,得到了具有面外和面内有序性的宏观、独立的混合维度超晶格。抑制臭名昭著的相分离的关键在于用与纳米晶体相同但接枝密度低得多的分子配体使纳米片疏水化。不匹配的配体密度赋予这两种混合维度组分一种类似分子识别的能力,促使密集封端的纳米晶体在稀疏接枝纳米片的层间自发组织。理论计算表明,纳米晶体的插层可大幅降低配体接枝纳米片的短程排斥力,因此在能量上是有利的,而随后的配体 - 配体范德华引力诱导面内有序性并在动力学上稳定层状超晶格结构。