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硫桥联金属手性簇组装体中的三级层次复杂性。

Tertiary Hierarchical Complexity in Assemblies of Sulfur-Bridged Metal Chiral Clusters.

机构信息

Department of Materials Science and Engineering, Cornell University, Ithaca, New York 14853, United States.

Department of Chemistry, University at Albany, State University of New York, Albany, New York 12222, United States.

出版信息

J Am Chem Soc. 2020 Aug 26;142(34):14495-14503. doi: 10.1021/jacs.0c04764. Epub 2020 Aug 13.

Abstract

Self-assembly of three-dimensional structures with order across multiple length scales-hierarchical assembly-is of great importance for biomolecules for the functions of life. Creation of similar complex architectures from inorganic building blocks has been pursued toward artificial biomaterials and advanced functional materials. Current research, however, primarily employs only large, nonreactive building blocks such as Au colloids. By contrast, sulfur-bridged transition metal clusters (<2 nm) are able to offer more functionality in catalytic and biochemical reactions. Hierarchical assembly of these systems has not been well researched because of the difficulty in obtaining single-phase clusters and the lack of suitable ligands to direct structure construction. To overcome these challenges, we employ a rigid planar ligand with an aromatic ring and bifunctional bond sites. We demonstrate the synthesis and assembly of 1.2 nm sulfur-bridged copper (SB-Cu) clusters with tertiary hierarchical complexity. The primary structure is clockwise/counterclockwise chiral cap and core molecules. They combine to form clusters, and due to the cap-core interaction (C-H···π), only two enantiomeric isomers are formed (secondary structure). A tertiary hierarchical architecture is achieved through the self-assembly of alternating enantiomers with hydrogen bonds as the intermolecular driving force. The SB-Cu clusters are air stable and have a distribution of oxidation states ranging from Cu(0) to Cu(I), making them interesting for redox and catalytic activities. This study shows that structural complexity at different length scales, mimicking biomolecules, can occur in active-metal clusters and provides a new platform for investigation of those systems and for the design of advanced functional materials.

摘要

具有跨多个长度尺度有序的三维结构自组装 - 层次组装 - 对生物分子的生命功能非常重要。从无机建筑块创建类似的复杂结构已被用于人工生物材料和先进功能材料。然而,当前的研究主要仅使用大的、无反应性的建筑块,如 Au 胶体。相比之下,硫桥接过渡金属簇(<2nm)能够在催化和生化反应中提供更多的功能。由于难以获得单相簇和缺乏合适的配体来指导结构构建,这些系统的层次组装尚未得到很好的研究。为了克服这些挑战,我们采用具有芳环和双官能团键位点的刚性平面配体。我们展示了 1.2nm 硫桥接铜(SB-Cu)簇的合成和组装,具有三级层次复杂性。初级结构是顺时针/逆时针手性帽和核心分子。它们结合形成簇,并且由于帽-核相互作用(C-H···π),仅形成两种对映异构体(二级结构)。通过交替对映异构体的自组装,氢键作为分子间驱动力,实现了三级层次结构。SB-Cu 簇在空气中稳定,并且具有从 Cu(0) 到 Cu(I) 的氧化态分布,这使得它们对氧化还原和催化活性很感兴趣。这项研究表明,模仿生物分子的不同长度尺度的结构复杂性可以在活性金属簇中发生,并为这些系统的研究和先进功能材料的设计提供了新的平台。

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