Department of Physics, Arizona State University, , Tempe, AZ 85287, USA.
Philos Trans A Math Phys Eng Sci. 2013 Dec 30;372(2008):20120036. doi: 10.1098/rsta.2012.0036. Print 2014 Feb 13.
Zeolites are microporous crystalline aluminosilicate materials whose atomic structures can be usefully modelled in purely mechanical terms as stress-free periodic trusses constructed from rigid corner-connected SiO4 and AlO4 tetrahedra. When modelled this way, all of the known synthesized zeolite frameworks exhibit a range of densities, known as the flexibility window, over which they satisfy the framework mechanical constraints. Within the flexibility window internal stresses are accommodated by force-free coordinated rotations of the tetrahedra about their apices (oxygen atoms). We use rigidity theory to explore the folding mechanisms within the flexibility window, and derive an expression for the configurational entropic density throughout the flexibility window. By comparison with the structures of pure silica zeolite materials, we conclude that configurational entropy associated with the flexibility modes is not a dominant thermodynamic term in most bulk zeolite crystals. Nevertheless, the presence of a flexibility window in an idealized hypothetical tetrahedral framework may be thermodynamically important at the nucleation stage of zeolite formation, suggesting that flexibility is a strong indicator that the topology is realizable as a zeolite. Only a small fraction of the vast number of hypothetical zeolites that are known exhibit flexibility. The absence of a flexibility window may explain why so few hypothetical frameworks are realized in nature.
沸石是微孔结晶硅铝酸盐材料,其原子结构可以用纯力学术语有效地建模为无应力周期性桁架,由刚性角连接的 SiO4 和 AlO4 四面体构成。以这种方式建模时,所有已知的合成沸石骨架都表现出一系列密度,称为柔韧性窗口,在该窗口范围内它们满足骨架力学约束。在柔韧性窗口内,通过四面体关于其顶点(氧原子)的无内力协调旋转来适应内部应力。我们使用刚性质论来探索柔韧性窗口内的折叠机制,并推导出整个柔韧性窗口的构象熵密度表达式。通过与纯二氧化硅沸石材料的结构进行比较,我们得出结论,与柔韧性模式相关的构象熵在大多数块状沸石晶体中不是主要的热力学项。然而,在沸石形成的成核阶段,理想化假设的四面体骨架中存在柔韧性窗口可能在热力学上很重要,这表明柔韧性是拓扑结构可作为沸石实现的有力指标。已知的大量假设沸石中只有一小部分具有柔韧性。缺乏柔韧性窗口可能解释了为什么自然界中实现的假设框架如此之少。