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基于[SnSe4](4-)阴离子的介孔结构半导体中多样的孔结构

Varied pore organization in mesostructured semiconductors based on the [SnSe4](4-) anion.

作者信息

Trikalitis P N, Rangan K K, Bakas T, Kanatzidis M G

机构信息

Department of Chemistry, Michigan State University, East Lansing, Michigan 48824, USA.

出版信息

Nature. 2001 Apr 5;410(6829):671-5. doi: 10.1038/35070533.

Abstract

Open framework metal chalcogenide solids, with pore sizes in the nano- and mesoscale, are of potentially broad technological and fundamental interest in research areas ranging from optoelectronics to the physics of quantum confinement. Although there have been significant advances in the design and synthesis of mesostructured silicas, the construction of their non-oxidic analogues still remains a challenge. Here we describe a synthetic strategy that allows the preparation of a large class of mesoporous materials based on supramolecular assembly of tetrahedral Zintl anions [SnSe4]4- with transition metals in the presence of cetylpyridinium (CP) surfactant molecules. These mesostructured semiconducting selenide materials are of the general formulae (CP)4-2xMxSnSe4 (where 1.0 < x < 1.3; M=Mn, Fe, Co, Zn, Cd, Hg). The resulting materials are open framework chalcogenides and form mesophases with uniform pore size (with spacings between 35 and 40 A). The pore arrangement depends on the synthetic conditions and metal used, and include disordered wormhole, hexagonal and even cubic phases. All compounds are medium bandgap semiconductors (varying between 1.4 and 2.5 eV). We expect that such semiconducting porous networks could be used for optoelectronic, photosynthetic and photocatalytic applications.

摘要

孔径在纳米和介观尺度的开放框架金属硫族化物固体,在从光电子学到量子限制物理等研究领域具有潜在的广泛技术和基础研究价值。尽管介孔二氧化硅的设计与合成已取得显著进展,但其非氧化物类似物的构建仍然是一项挑战。在此,我们描述了一种合成策略,该策略能够在十六烷基吡啶鎓(CP)表面活性剂分子存在的情况下,通过四面体锌酸盐阴离子[SnSe4]4-与过渡金属的超分子组装来制备一大类介孔材料。这些介观结构的半导体硒化物材料的通式为(CP)4-2xMxSnSe4(其中1.0 < x < 1.3;M = Mn、Fe、Co、Zn、Cd、Hg)。所得材料为开放框架硫族化物,并形成孔径均匀(间距在35至40埃之间)的介相。孔的排列取决于合成条件和所用金属,包括无序的虫孔相、六方相甚至立方相。所有化合物均为中带隙半导体(在1.4至2.5电子伏特之间变化)。我们预计,这种半导体多孔网络可用于光电子、光合和光催化应用。

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