| Literature DB >> 32750659 |
Noemí Contreras-Pereda1, Faezeh Moghzi2, Javier Baselga1, Haixia Zhong3, Jan Janczak4, Janet Soleimannejad2, Renhao Dong3, Daniel Ruiz-Molina5.
Abstract
Large blue rectangular crystals of theEntities:
Keywords: 2D MOF; Catalysis; Coordination polymer; Delamination; Nanomaterials; Ultrasound
Year: 2020 PMID: 32750659 PMCID: PMC7786594 DOI: 10.1016/j.ultsonch.2020.105292
Source DB: PubMed Journal: Ultrason Sonochem ISSN: 1350-4177 Impact factor: 7.491
Fig. 1(Top) Schematic representation of the ultrasound-assisted LPE process for the delamination of 1, resulting in the formation of colloidal NS suspensions of 1. (Bottom) Exfoliated NSs with LPE process present more catalytic active sites than bulk material.
Fig. 2(Left) SEM images of crystals of complex 1 synthetized as reported; (Right) Optical image of crystals of complex 1, which can be stored over long periods of time, dried or dipped in water, without any loss of the crystalline phase.
Fig. 3(a) Unit cell of complex 2; (b) Crystal packing of 2 mediated mainly by hydrogen bonds, displayed in green, between carboxylic groups and lattice water molecules.
Fig. 4(a) Image of the unit cell of 1 showing the crystallographic axis; (b) Side view of two layers of 1 showing lattice water molecules interconnecting them. Hydrogen bonds are displayed in blue showing the zig-zag configuration (c) Image of the crystallographic arrangement of the 2D layers in complex 1 obtained from a side view; (d) Top view of a 2D layer displaying the one dimensional chain arrangement of Cu ions.
Fig. 5As-centrifuged NSs after LPE process of complex 1 in water sonicating 60 min: (a) Image of an aqueous colloidal suspension after centrifuge showing Tyndall effect; (b) DLS measurement of a colloidal suspension of flakes taken as-exfoliated and centrifuged, after 1 day and after 7 days of exfoliations. The measurement remains basically unaltered over the whole period. (c) SEM image of the aqueous colloidal suspension showing only exfoliated NSs. Bulk materials were removed from the suspension by centrifuge (d) Tilted SEM image of NSs of 1 showing uniform thicknesses.
Fig. 6(a) SEM image of nanocrystals of complex 1; (b) Higher magnification SEM image of nanocrystals of 1 showing a wide distribution of sizes; (c) FT-IR spectra of 2,5pydc before the reaction (black) and of nanocrystals of 1 (red); (d) Comparison of the PXRD spectra of crystals of 1 and nanocrystals of 1 with the SXRD of 1.
Fig. 7Electrocatalytic performance of complex 1 bulk on CP (carbon paper), complex 1 NS on CP and CP in 1 M KOH. (a) HER polarization plots with IR compensation (i: current, R: resistant); (b) The corresponding Tafel plot; (c) EIS; (d) HER polarization curves of complex 1 NSs on CP before and after 1000 potential cycles. All HER polarization curves are IR-compensation.
Comparison of HER catalytic activity of NS of 1 and other MOF based HER electrocatalysts.
| Materials | Active centre | η mV (at 10 mA cm−2) | Tafel slope (mV dec−1) | Ref. |
|---|---|---|---|---|
| NS of | Cu-N | 340 | 70 | This work |
| 2D CTGU-5 | Co(II)-O | 388 | 125 | |
| AB &CTGU-5 | Co(II)-O | 44 | 45 | |
| NiFe-MOF | Ni-O | 134 | 34 | |
| THTA-Co | S-Co-N | 283 | 71 | |
| THTNi 2DSP | Ni-S | 333 | 80.5 | |
| CoBHT | Co-S | 185 | 88 | |
| NiBHT | Ni-S | 331 | 67 | |
| MOS1 | Co-S | 340 | 149 | |
| NiAT | N-Ni-S | 370 | 128 | |
| NENU-500 | Mo-O | 237 | 96 |