Chan Hwang Gil, Joo Shin Tae, Blom Douglas A, Vogt Thomas, Lee Yongjae
Department of Earth System Sciences, Yonsei University, Seoul, 120749, Korea.
UNIST Central Research Facilities &School of Natural Science, Ulsan National Institute of Science and Technology (UNIST), Ulsan, 689798, Korea.
Sci Rep. 2015 Oct 12;5:15056. doi: 10.1038/srep15056.
Systematic studies of pressure-induced amorphization of natrolites (PIA) containing monovalent extra-framework cations (EFC) Li(+), Na(+), K(+), Rb(+), Cs(+) allow us to assess the role of two different EFC-H2O configurations within the pores of a zeolite: one arrangement has H2O molecules (NATI) and the other the EFC (NATII) in closer proximity to the aluminosilicate framework. We show that NATI materials have a lower onset pressure of PIA than the NATII materials containing Rb and Cs as EFC. The onset pressure of amorphization (PA) of NATII materials increases linearly with the size of the EFC, whereas their initial bulk moduli (P1 phase) decrease linearly. Only Cs- and Rb-NAT reveal a phase separation into a dense form (P2 phase) under pressure. High-Angle Annular Dark Field Scanning Transmission Electron Microscopy (HAADF-STEM) imaging shows that after recovery from pressures near 25 and 20 GPa long-range ordered Rb-Rb and Cs-Cs correlations continue to be present over length scales up to 100 nm while short-range ordering of the aluminosilicate framework is significantly reduced-this opens a new way to form anti-glass structures.
对含有单价骨架外阳离子(EFC)Li⁺、Na⁺、K⁺、Rb⁺、Cs⁺的钠沸石压力诱导非晶化(PIA)的系统研究,使我们能够评估沸石孔内两种不同的EFC-H₂O构型的作用:一种构型中H₂O分子(NATI),另一种构型中EFC(NATII)更靠近铝硅酸盐骨架。我们表明,NATI材料的PIA起始压力低于以Rb和Cs作为EFC的NATII材料。NATII材料的非晶化起始压力(PA)随EFC尺寸线性增加,而其初始体模量(P1相)线性降低。只有Cs-NAT和Rb-NAT在压力下显示出相分离成致密形式(P2相)。高角度环形暗场扫描透射电子显微镜(HAADF-STEM)成像表明,从接近25和20 GPa的压力恢复后,在长达100 nm的长度尺度上,长程有序的Rb-Rb和Cs-Cs相关性仍然存在,而铝硅酸盐骨架的短程有序显著降低——这开辟了一种形成抗玻璃结构的新方法。