Metal‐Organic Frameworks at the Edge of Stability: Mediating Node Distortion to Access Metastable Nanoparticle Polymorphs
Abstract
Abstract Metal‐organic frameworks (MOFs) are emerging as unconventional precursors for nanoparticle synthesis, with potential to leverage their tunable structures and chemistry to achieve nanomaterials with structures and compositions inaccessible via traditional synthetic routes. Here, we use in situ synchrotron X‐ray diffraction and pair distribution function (PDF) measurements to investigate how the dynamic structure of MOFs at the edge of stability influences their transformation into different metastable polymorphs. Our study reveals that the local structural features of metal‐oxo MOF nodes at elevated temperatures are linked to the resulting nanoparticle structures formed under mild conditions. Focusing on the titanium‐based MOF MIL‐125, we demonstrate that manipulating the chemical environment to facilitate transformation of the Ti 8 node geometry promotes formation of metastable, nanometer‐scale TiO 2 brookite rather than the more common anatase and rutile TiO 2 polymorphs typically produced through MOF pyrolysis at high temperature. These findings highlight the potential to harness the MOF topology and chemical environment to design and control node distortions and enable access to exotic metastable nanoparticle states.
Article Details
Authors (5)
Zhihengyu Chen
SSRL, SLAC National Accelerator Laboratory
Simon M. Vornholt
Department of Chemistry
Jacob T. Bryant
Department of Chemistry and REACT: Renewable Energy and Chemical Transformations Cluster University of Central Florida Orlando Florida 32816 USA
Fernando Uribe‐Romo
Department of Chemistry and REACT: Renewable Energy and Chemical Transformations Cluster University of Central Florida Orlando Florida 32816 USA
Karena W. Chapman
Department of Chemistry