Coordination Polymer to Atomically Thin, Holey, Metal-Oxide Nanosheets for Tuning Band Alignment.
Sajjad S MofarahEsmaeil AdabifiroozjaeiRaheleh PardehkhorramMohammad Hussein Naseef AssadiManuel HintersteinYin YaoXinhong LiuMohammad B GhasemianKourosh Kalantar-ZadehRashid MehmoodClaudio CazorlaReza ShahmiriGhazaleh BahmanrokhSaroj BhattacharyyaMaria Chiara SpadaroJordi ArbiolSean LimYuwen XuHamidreza ArandiyanJason ScottPramod KoshyCharles C SorrellPublished in: Advanced materials (Deerfield Beach, Fla.) (2019)
Holey 2D metal oxides have shown great promise as functional materials for energy storage and catalysts. Despite impressive performance, their processing is challenged by the requirement of templates plus capping agents or high temperatures; these materials also exhibit excessive thicknesses and low yields. The present work reports a metal-based coordination polymer (MCP) strategy to synthesize polycrystalline, holey, metal oxide (MO) nanosheets with thicknesses as low as two-unit cells. The process involves rapid exfoliation of bulk-layered, MCPs (Ce-, Ti-, Zr-based) into atomically thin MCPs at room temperature, followed by transformation into holey 2D MOs upon the removal of organic linkers in aqueous solution. Further, this work represents an extra step for decorating the holey nanosheets using precursors of transition metals to engineer their band alignments, establishing a route to optimize their photocatalysis. The work introduces a simple, high-yield, room-temperature, and template-free approach to synthesize ultrathin holey nanosheets with high-level functionalities.
Keyphrases
- room temperature
- reduced graphene oxide
- highly efficient
- metal organic framework
- transition metal
- quantum dots
- ionic liquid
- visible light
- aqueous solution
- gold nanoparticles
- induced apoptosis
- physical activity
- cell cycle arrest
- big data
- weight gain
- mass spectrometry
- oxidative stress
- human health
- body mass index
- computed tomography
- climate change
- molecularly imprinted
- adverse drug
- loop mediated isothermal amplification
- artificial intelligence