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首页> 外文期刊>Turkish journal of chemistry >Density functional study of the structure and water adsorption activity of an Al$_{30}$O$_{30}$ star-shaped alumina nanocage
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Density functional study of the structure and water adsorption activity of an Al$_{30}$O$_{30}$ star-shaped alumina nanocage

机译:Al $ _ {30} $ O $ _ {30} $星形氧化铝纳米笼的结构和吸水活性的密度泛函研究

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Molecular and electronic structures of a novel Al$_{30}$O$_{30}$ star-shaped alumina nanocage (SANC) were studied using the recently developed CAM-B3LYP density functional method. Comparison of the stretching vibrational modes of this compound with the corresponding modes related to an Al$_{20}$O$_{30}$ perfect cage and Al$_{50}$O$_{75}$ tubular alumina nanomaterials showed a shift to lower frequencies, while the bending modes moved to higher frequencies. The highest occupied molecular orbital (HOMO) of the SANC had 65% nonbonding character, whereas the lowest unoccupied molecular orbital (LUMO) was 72% antibonding. The HOMO and LUMO of the SANC arose mostly from Al 3s and 2p atomic orbitals. The theoretically estimated energy gap for this compound was 4.4 eV, which is lower than those for the alumina nanocage (ANC) and nanotube (ANT). The SANC with internal and external diameters of 5.7 and 6.2 Å had potential to interact with water molecule from sites Al(I) in the openings of the cage, Al(II) in the internal pore, and Al(III) in the external arms. The relative water adsorption activity of these sites was Al(I) $>$ Al(III) $>$ Al(II). The SANC can be introduced as a novel alumina nanostructure with lower stability and higher activity than well-known alumina materials.
机译:使用最近开发的CAM-B3LYP密度泛函方法研究了新型Al $ _ {30} $ O $ _ {30} $星形氧化铝纳米笼(SANC)的分子和电子结构。该化合物的拉伸振动模式与与Al $ _ {20} $ O $ _ {30} $理想笼和Al $ _ {50} $ O $ _ {75} $管状氧化铝纳米材料相关的模式的比较显示出向较低频率的偏移,而弯曲模式移至较高的频率。 SANC的最高占据分子轨道(HOMO)具有65%的非键合特性,而最低未占据分子轨道(LUMO)为72%的抗键合。 SANC的HOMO和LUMO主要来自Al 3s和2p原子轨道。该化合物的理论估计能隙为4.4 eV,低于氧化铝纳米笼(ANC)和纳米管(ANT)的能隙。内径和外径分别为5.7和6.2Å的SANC可能与笼子开口处Al(I),内部孔中Al(II)和外部臂中Al(III)的水分子发生相互作用。这些位点的相对水吸附活性为Al(I)≥Al(III)≥ Al(II)。可以将SANC作为一种新型的氧化铝纳米结构引入,该结构比众所周知的氧化铝材料具有更低的稳定性和更高的活性。

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