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用于高效氢气吸附和二氧化碳捕集的稳定亚磷酸锌中的真实孔隙

Genuine Pores in a Stable Zinc Phosphite for High H Adsorption and CO Capture.

作者信息

Chen Ju-Ying, Chen Sheng-Yu, Chen Wei-Ting, Yin Mu-Chien, Wang Chih-Min

机构信息

Department of Bioscience and Biotechnology, National Taiwan Ocean University, Keelung, Taiwan, 202, R.O.C.

Institute of Chemistry, Academia Sinica, Taipei, 11529, Taiwan R.O.C.

出版信息

Chemistry. 2022 Jun 7;28(32):e202200732. doi: 10.1002/chem.202200732. Epub 2022 May 4.

Abstract

An uncommon example of stable mixed-ligand zinc phosphite with genuine pores has been synthesized by using zinc metal, inorganic phosphite acid, thio-functionalized O-donor (2,5-thiophenedicarboxylate, TPDC), and tetradentate N-donor [1,2,4,5-tetrakis(imidazol-1-ylmethyl)benzene, TIMB] units assembled into one crystalline structure according to a hydro(solvo)thermal method. This is a very rare case of a metal phosphite incorporating both N- and O-donor ligands. The tetradentate TIMB linker bound to zinc atoms of the isolated zincophosphite hexamers to form a 3D open-framework structure by crosslinking structural components of 1D chains and 2D layers. Here, the TPDC ligand acts as a monodentate binding model to functionalize its porous structure with the uncoordinated S atom and COO group. Interestingly, this compound demonstrates the highest H storage capacity among organic-inorganic hybrid metal phosphates (and phosphites), and a good CO capture at 298 K compared with the majority of crystalline materials. The possible adsorption sites and selectivity for CO over H , N , and CO at 298 K were calculated by using density functional theory (DFT), the ideal adsorption solution theory (IAST), and fitting experimental pure-component adsorption data.

摘要

通过水(溶剂)热法,利用锌金属、无机亚磷酸、硫代官能化的氧供体(2,5-噻吩二甲酸酯,TPDC)和四齿氮供体[1,2,4,5-四(咪唑-1-基甲基)苯,TIMB]单元组装成一种具有真实孔道的稳定混合配体亚磷酸锌的罕见实例。这是金属亚磷酸盐同时包含氮供体和氧供体配体的非常罕见的情况。四齿TIMB连接体与分离出的亚磷酸锌六聚体的锌原子结合,通过交联一维链和二维层的结构组分形成三维开放框架结构。在这里,TPDC配体作为单齿结合模型,用未配位的S原子和COO基团对其多孔结构进行功能化。有趣的是,该化合物在有机-无机杂化金属磷酸盐(和亚磷酸盐)中表现出最高的储氢容量,并且与大多数晶体材料相比,在298 K时对CO有良好的捕获能力。利用密度泛函理论(DFT)、理想吸附溶液理论(IAST)并拟合实验纯组分吸附数据,计算了298 K时CO相对于H₂、N₂和CO₂的可能吸附位点和选择性。

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