Liu Yong, Zhang Weiping, Xie Sujuan, Xu Longya, Han Xiuwen, Bao Xinhe
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, China.
J Phys Chem B. 2008 Jan 31;112(4):1226-31. doi: 10.1021/jp077396m. Epub 2008 Jan 9.
One- and two-dimensional 129Xe NMR spectroscopy has been employed to study the porosity of cocrystallized MCM-49/ZSM-35 zeolites under the continuous flow of hyperpolarized xenon gas. It is found by variable-temperature experiments that Xe atoms can be adsorbed in different domains of MCM-49/ZSM-35 cocrystallized zeolites and the mechanically mixed counterparts. The exchange of Xe atoms in different types of pores is very fast at ambient temperatures. Even at very low temperature two-dimensional exchange spectra (EXSY) show that Xe atoms still undergo much faster exchange between MCM-49 and ZSM-35 analogues in the cocrystallized zeolites than in the mechanical mixture. This demonstrates that the MCM-49 and ZSM-35 analogues in cocrystallized zeolites may be stacked much closer than in the physical mixture, and some parts of intergrowth may be formed due to the partially similar basic structure of MCM-49 and ZSM-35.
一维和二维¹²⁹Xe核磁共振光谱已被用于研究在超极化氙气连续流动下共结晶的MCM-49/ZSM-35沸石的孔隙率。通过变温实验发现,Xe原子可以吸附在共结晶的MCM-49/ZSM-35沸石以及机械混合对应物的不同区域。在环境温度下,不同类型孔隙中的Xe原子交换非常快。即使在非常低的温度下,二维交换光谱(EXSY)也表明,共结晶沸石中MCM-49和ZSM-35类似物之间的Xe原子交换仍然比机械混合物中的快得多。这表明共结晶沸石中的MCM-49和ZSM-35类似物可能比物理混合物中的堆积得更紧密,并且由于MCM-49和ZSM-35部分相似的基本结构,可能会形成一些共生部分。