双金属片
材料科学
铪
锆
结晶度
热稳定性
铈
纳米孔
金属有机骨架
金属
化学工程
无机化学
纳米技术
复合材料
物理化学
化学
冶金
吸附
工程类
作者
Sven M. J. Rogge,Pascal G. Yot,Jannick Jacobsen,Francesco Muniz‐Miranda,Steven Vandenbrande,Jonas Gosch,Vanessa Ortiz,Ines E. Collings,Sabine Devautour‐Vinot,Guillaume Maurin,Norbert Stock,Véronique Van Speybroeck
标识
DOI:10.1021/acsmaterialslett.0c00042
摘要
In theory, bimetallic UiO-66(Zr:Ce) and UiO-66(Zr:Hf) metal-organic frameworks (MOFs) are extremely versatile and attractive nanoporous materials as they combine the high catalytic activity of UiO-66(Ce) or UiO-66(Hf) with the outstanding stability of UiO-66(Zr). Using in situ high-pressure powder X-ray diffraction, however, we observe that this expected mechanical stability is not achieved when incorporating cerium or hafnium in UiO-66(Zr). This observation is akin to the earlier observed reduced thermal stability of UiO-66(Zr:Ce) compounds. To elucidate the atomic origin of this phenomenon, we chart the loss-of-crystallinity pressures of 22 monometallic and bimetallic UiO-66 materials and systematically isolate their intrinsic mechanical stability from their defect-induced weakening. This complementary experimental/computational approach reveals that the intrinsic mechanical stability of these bimetallic MOFs decreases nonlinearly upon cerium incorporation but remains unaffected by the zirconium: hafnium ratio. Additionally, all experimental samples suffer from defect-induced weakening, a synthesis-controlled effect that is observed to be independent of their intrinsic stability.
科研通智能强力驱动
Strongly Powered by AbleSci AI