期刊论文详细信息
Pressure-driven mechanical anisotropy and destabilization in zeolitic imidazolate frameworks
Article
关键词: METAL-ORGANIC FRAMEWORKS;    INDUCED AMORPHIZATION;    PIEZOELECTRIC CONSTANTS;    ZIF-8;    INSTABILITY;    CRYSTALS;    PHASE;   
DOI  :  10.1103/PhysRevB.99.014102
来源: SCIE
【 摘 要 】

The anisotropic mechanical response of ZIF-8 and ZIF-67 is investigated as a function of pressure and its main features (including shear-destabilization eventually leading to amorphization) discussed in terms of specific lattice vibrations and structural changes occurring in the framework. At zero pressure, the two ZIFs are characterized by an elastic anisotropy with directions of maximum and minimum stiffness along < 111 > and < 100 >, respectively. At P = 0.2 GPa, the framework exhibits a perfectly isotropic mechanical response, while at P > 0.2 GPa a different (complementary) anisotropic response is observed with directions of maximum and minimum stiffness along < 100 > and < 111 >, respectively. The bulk modulus of the two ZIFs initially slightly increases up to 0.1 GPa of pressure and then decreases at higher pressures. Amorphization in both ZIF-8 and ZIF-67 is confirmed to be due to the pressure-driven mechanical instability of their frameworks to shear deformations. The directional elastic moduli of the two ZIFs are partitioned into contributions from specific normal modes of vibration. The elastic constants C-11, and C-12 [and thus the bulk modulus K = 1/3(C-11 + 2C(12))] are mostly affected by symmetric gate-opening vibrations of the imidazolate linkers in the four-membered rings. The C-44 shear elastic constant (and thus the mechanical instability and amorphization of the framework) are instead related to asymmetric gate-opening vibrations of the four-membered rings.

【 授权许可】

Free   

  文献评价指标  
  下载次数:0次 浏览次数:1次