| Literature DB >> 32148854 |
Raphael S Märkl1, Nuri Hohn1, Emanuel Hupf2, Lorenz Bießmann1, Volker Körstgens1, Lucas P Kreuzer1, Gaetano Mangiapia3, Matthias Pomm3, Armin Kriele3, Eric Rivard2, Peter Müller-Buschbaum1,4.
Abstract
Efficient infiltration of a mesoporous titania matrix with conducting organic polymers or small molecules is one key challenge to overcome for hybrid photovoltaic devices. A quantitative analysis of the backfilling efficiency with time-of-flight grazing incidence small-angle neutron scattering (ToF-GISANS) and scanning electron microscopy (SEM) measurements is presented. Differences in the morphology due to the backfilling of mesoporous titania thin films are compared for the macromolecule poly[4,8-bis-(5-(2-ethyl-hexyl)-thio-phen-2-yl)benzo[1,2-b;4,5-b']di-thio-phene-2,6-diyl-alt-(4-(2-ethyl-hexyl)-3-fluoro-thieno[3,4-b]thio-phene-)-2-carboxyl-ate-2-6-diyl)] (PTB7-Th) and the heavy-element containing small molecule 2-pinacol-boronate-3-phenyl-phen-anthro[9,10-b]telluro-phene (PhenTe-BPinPh). Hence, a 1.7 times higher backfilling efficiency of almost 70% is achieved for the small molecule PhenTe-BPinPh compared with the polymer PTB7-Th despite sharing the same volumetric mass density. The precise characterization of structural changes due to backfilling reveals that the volumetric density of backfilled materials plays a minor role in obtaining good backfilling efficiencies and interfaces with large surface contact. © Märkl et al. 2020.Entities:
Keywords: backfilling; grazing incidence small-angle neutron scattering; mesoporous titania; semiconducting polymers; tellurophene
Year: 2020 PMID: 32148854 PMCID: PMC7055378 DOI: 10.1107/S2052252520000913
Source DB: PubMed Journal: IUCrJ ISSN: 2052-2525 Impact factor: 4.769
Figure 1(a) Structures of PTB7-Th and PhenTe-BPinPh. (b)–(e) XRR curves of PTB7-Th spin-coated at (b) 1000 rpm on glass and (c) 1500 rpm on silicon with fit (solid line), and of PhenTe-BPinPh spin-coated at 1000 rpm on silicon (d) with subsequent SVA and (e) without SVA.
Figure 2(a), (c) and (e) Surface SEM images and (b), (d) and (f) cross-section SEM images of mesoporous titania films (a) and (b) as-prepared and (c)–(f) backfilled. Defects are highlighted with red circles. (b) The top surface of the sample is purple with the cross-section kept in grayscale. (d) PTB7-Th overlayer represented in dark blue, with lighter blue showing the infiltrated polymer, and the as-prepared material kept in grayscale. (f) PhenTe-BPinPh backfilling, with the top surface shown in darker orange and backfilled cross-section in yellow.
Figure 3Linear regressions of material-specific critical angles obtained from vertical line cuts of ToF-GISANS data versus neutron wavelength for (a) as-prepared mesoporous titania, (b) mesoporous titania filled with PTB7-Th and (c) mesoporous titania filled with PhenTe-BPinPh. As indicated in the inset, different colors correspond to linear regressions related to the SLDs of Si (red) and TiO2 [TiO2: PTB7-Th (blue) and TiO2: PhenTe-BPinPh (black)] composite materials.
Figure 4Horizontal line cuts for (a) the as-prepared mesoporous titania film, (b) PTB7-Th infiltrated titania and (c) PhenTe-BPinPh infiltrated titania. Solid lines represent the best model obtained for the data and dashed lines indicate the peak position of modeled structure factors. The curves are shifted along the intensity axis for clarity. Neutron wavelength bands increase from bottom to top (3.3–18.1 Å).
Figure 5Schematic representation of the material infiltration model into a mesoporous titania matrix. (a) Grayscale SEM image of as-prepared mesoporous titania and (b) binarized SEM with structure size (2 × FF1, green bar) and distance (SF1, red bar) as extracted from ToF-GISANS modeling for as-prepared mesoporous titania. SEM images with the respectively growing structure sizes (2 × FF1, green bars) and constant distances (SF1, red bars) upon pore infiltration with (c) PTB7-Th represented in blue and (d) PhenTe-BPinPh represented in orange. The simulated blue and orange representations of PTB7-Th and PhenTe-BPinPh are added for visualization.