| Literature DB >> 34257304 |
Jin-Oh Kim1, Won-Tae Koo1,2, Hanul Kim3, Chungseong Park1,2, Taehoon Lee1, Calvin Andreas Hutomo1, Siyoung Q Choi3, Dong Soo Kim4, Il-Doo Kim5,6, Steve Park7.
Abstract
Conductive metal-organic framework (C-MOF) thin-films have a wide variety of potential applications in the field of electronics, sensors, and energy devices. The immobilization of various functional species within the pores of C-MOFs can further improve the performance and extend the potential applications of C-MOFs thin films. However, developing facile and scalable synthesis of high quality ultra-thin C-MOFs while simultaneously immobilizing functional species within the MOF pores remains challenging. Here, we develop microfluidic channel-embedded solution-shearing (MiCS) for ultra-fast (≤5 mm/s) and large-area synthesis of high quality nanocatalyst-embedded C-MOF thin films with thickness controllability down to tens of nanometers. The MiCS method synthesizes nanoscopic catalyst-embedded C-MOF particles within the microfluidic channels, and simultaneously grows catalyst-embedded C-MOF thin-film uniformly over a large area using solution shearing. The thin film displays high nitrogen dioxide (NO2) sensing properties at room temperature in air amongst two-dimensional materials, owing to the high surface area and porosity of the ultra-thin C-MOFs, and the catalytic activity of the nanoscopic catalysts embedded in the C-MOFs. Therefore, our method, i.e. MiCS, can provide an efficient way to fabricate highly active and conductive porous materials for various applications.Entities:
Year: 2021 PMID: 34257304 DOI: 10.1038/s41467-021-24571-1
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919