| Literature DB >> 28939840 |
Yusuke Sekimoto1, Ryo Ohtani1, Masaaki Nakamura1, Michio Koinuma1, Leonard F Lindoy2, Shinya Hayami3,4.
Abstract
Tuneable pressure effects associated with changing interlayer distances in two-dimensional graphene oxide (GO)/reduced GO (rGO) layers are demonstrated through monitoring the changes in the spin-crossover (SCO) temperature (T 1/2) of [Fe(Htrz)2(trz)](BF4) nanoparticles (NPs) incorporated in the interlayer spaces of the GO/rGO layers. The interlayer separation along the GO to GO/rGO-NP composites to rGO series decreases smoothly from 9.00 Å (for GO) to 3.50 Å (for rGO) as the temperature employed for the thermal reduction treatments of the GO-NP composites is increased. At the same time, T 1/2 increases from 351 K to 362 K along the series. This T 1/2 increment of 11 K corresponds to that observed for pristine [Fe(Htrz)2(trz)](BF4) NPs under a hydrostatic pressure of 38 MPa. The influence of the stacked layer structures on the pseudo-pressure effects has been further probed by investigating the differences in T 1/2 for [Fe(Htrz)2(trz)](BF4) that is present in the composite as larger bulk particles rather than as NPs.Entities:
Year: 2017 PMID: 28939840 PMCID: PMC5610342 DOI: 10.1038/s41598-017-12444-x
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic illustration of the tuneable pressure effects caused by the transformation of GO to rGO.
Figure 2SEM images of (a) 1 and (b) 4. SEM-EDX results for (c) 1 and (d) 4. Squares indicate areas analysed by EDX spectroscopy. Peaks for Au are caused by sputtering treatments with Au.
Figure 3PXRD patterns for 1–4, [Fe(Htrz)2(trz)](BF4) NPs, pristine GO and pristine rGO.
Interlayer distances and SCO temperatures for 1–4.
| Interlayer distance (Å) |
|
|
| Δ | |
|---|---|---|---|---|---|
|
| 9.00 | 351 | 358 | 343 | 15 |
|
| 7.45 | 355 | 366 | 343 | 23 |
|
| 6.77 | 358 | 368 | 348 | 20 |
|
| 3.50–3.78 | 362 | 374 | 349 | 25 |
Figure 6Schematic representations of the confinement effects in GO composites with NP and bulk [Fe(Htrz)2(trz)](BF4).
Figure 4SCO behaviour of (a) 1, (b) 2, (c) 3 and (d) 4. Heating: (), cooling: ().
Figure 5Correlations (a) between the interlayer distances and T 1/2 for 1–4, and (b) between the interlayer distances and the estimated pseudo-pressure values for 2–4.