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金属取代的沸石咪唑酯骨架材料ZIF-108:气体吸附与膜分离性能

Metal-substituted zeolitic imidazolate framework ZIF-108: gas-sorption and membrane-separation properties.

作者信息

Ban Yujie, Li Yanshuo, Peng Yuan, Jin Hua, Jiao Wenmei, Liu Xinlei, Yang Weishen

机构信息

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023 (P. R. China), Fax: (+86) 411-846-94447; University of Chinese Academy of Sciences, 19A Yuquan Road, Beijing 100049 (P. R. China).

出版信息

Chemistry. 2014 Sep 1;20(36):11402-9. doi: 10.1002/chem.201402287. Epub 2014 Jul 23.

Abstract

A series of dual-metal zeolitic imidazolate framework (ZIF) crystals with SOD and RHO topologies was synthesised by metal substitution from ZIF-108 (Zn(2-nitroimidazolate)2 , SOD topology) as the parent material. This was based on the concept that metal substitution of ZIF-108 requires a much lower activation energy than homogenous nucleation owing to the metastability of ZIF-108. In-depth investigations of the formation processes of the daughter ZIFs indicated that the transformation of ZIF-108 is a dissolution/heterogeneous nucleation process. Typical isostructural Co(2+) substitution mainly occurs at the outer surface of ZIF-108 and results in a core-shell structure. On the contrary, the Cu(2+) -substituted ZIF has a RHO topology with a homogeneous distribution of Cu(2+) ions in the structure. Substitution with Ni(2+) resulted in a remarkable enhancement in adsorption selectivity toward CO(2) over N(2) by a factor of up to 227. With Co(2+) -substituted nanoparticles as inorganic filler, a mixed matrix membrane based on polysulfone displayed greatly improved performance in the separation of H(2)/CH(4), CO(2)/N(2) and CO(2)/CH(4).

摘要

以ZIF-108(Zn(2-硝基咪唑)₂,SOD拓扑结构)为母体材料,通过金属取代合成了一系列具有SOD和RHO拓扑结构的双金属沸石咪唑酯骨架(ZIF)晶体。这是基于这样一个概念,即由于ZIF-108的亚稳性,ZIF-108的金属取代所需的活化能比均匀成核低得多。对衍生ZIF形成过程的深入研究表明,ZIF-108的转变是一个溶解/异质成核过程。典型的同构Co(2+)取代主要发生在ZIF-108的外表面,并导致核壳结构。相反,Cu(2+)取代的ZIF具有RHO拓扑结构,结构中Cu(2+)离子分布均匀。用Ni(2+)取代导致对CO₂相对于N₂的吸附选择性显著提高,提高因子高达227。以Co(2+)取代的纳米颗粒为无机填料,基于聚砜的混合基质膜在H₂/CH₄、CO₂/N₂和CO₂/CH₄分离中表现出大大改善的性能。

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