Department of Physics and Center for Nanophysics and Advanced Materials, University of Maryland , College Park, Maryland 20742, United States.
Department of Electrical and Computer Engineering, University of Maryland , College Park, Maryland 20742, United States.
J Am Chem Soc. 2017 May 3;139(17):6070-6073. doi: 10.1021/jacs.7b02523. Epub 2017 Apr 20.
Chiral organizations ubiquitously exist in biomaterials via hierarchical assembly of chiral molecules, but assembly of chiral inorganic nanocrystals (NCs) has been lacking. Recent development of cinnabar HgS NCs that can possess precisely engineered chirality originating from both atomic lattice and morphology offers an emerging class of inorganic building blocks to explore their hierarchical assembly. Two different forms of suprastructures, collinear chains and propellers, have been achieved with various chiral HgS NC building blocks via distinct assembly mechanisms. The chiroptical responses of suprastructures are further evaluated both experimentally and theoretically, and are found to uniquely depend on intrinsic chirality of building blocks and their coupling. Our study therefore opens up a gateway to new assembled inorganic suprastructures with desired chiroptical response for wide-ranging functionalities and applications by bottom-up modular approach.
手性组织普遍存在于生物材料中,通过手性分子的分级组装,但手性无机纳米晶体(NCs)的组装一直缺乏。最近开发的辰砂 HgS NCs 具有精确设计的手性,源于原子晶格和形态,为探索其分级组装提供了一类新兴的无机构建块。通过不同的组装机制,利用各种手性 HgS NC 构建块实现了两种不同形式的超结构,即共线链和螺旋桨。超结构的手性响应进一步通过实验和理论进行了评估,发现其独特地依赖于构建块的固有手性及其耦合。因此,我们的研究通过自下而上的模块化方法,为具有所需手性响应的广泛功能和应用开辟了通向新的组装无机超结构的途径。