| Literature DB >> 31822722 |
Dahyun Choi1, Sanjiv Sonkaria2, Stephen J Fox3,4,5, Shivraj Poudel6, Sung-Yong Kim6, Suhee Kang1, Seheon Kim6, Chandra Verma3,4,5, Sung Hoon Ahn7,8, Caroline Sunyong Lee9, Varsha Khare10.
Abstract
Entities:
Year: 2019 PMID: 31822722 PMCID: PMC6904763 DOI: 10.1038/s41598-019-55103-z
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Synthetic stabilization of an amorphous network of TiO2 quantum dots (QDs) in an ionic liquid (IL) (alkyl phosphonium dicyanamide) reaction medium thermally driven at 120 °C. (i) Bulk titanium oxide and ionic liquid (phosphonium dicyanamide) precursor chemistry was used as an effective biomimetic reaction medium driving a (ii) densely populated assembly of TiO2 amorphous clusters of quantum trapped disordered aggregates by bright-field electron imaging. The inset (iii) shows an enlarged view of homogeneously sized clustered QDs under (iv) polymer confinement. The scale bar in (ii) is 100 nm.
Figure 2HRTEM and WAXS analysis of nanocaged TiO2 quantum dots (QDs) in polystyrene (PS). (a) HRTEM imaging of nanocaged of TiO2 QDs at the metal oxide and polystyrene interface. The nanocages are shown within the yellow borders typically in the size range of 1.25–2.81 nm (b) Deconvoluted WAXS pattern of polystyrene nanocaged TiO2 QDs in 1:20 fold ethanol exhibiting a crystal syndiotactic phase of the polymer and orthorhombic rutile TiO2 phase. (c) Dislocations at the boundary interface of crystal growth often lead to (d) deformities to reduce surface energy.
Figure 3Key chemical steps in the quantum scale polymer confinement of TiO2. (i) The hydrolysis of phosphorous pentaoxide (P2O5) is evidenced by (b) P2p X-ray photoelectron spectra (XPS) (BE 135.596 eV) leading to the formation of (ii) phosphoric acid (H3PO3) (P2p; BE 133.78 eV). This was supported by surface analysis using XPS (shown in a–c) and FT-IR (shown in d). FT-IR analysis signifies band vibrations corresponding to (iii) vinyl and C=C stretches around 1415 and 1560 cm-1 respectively. The formation of (iv) styrene monomers that polymerise to (v) polystyrene forming a scaffold around TiO2 bound porphyrin rings (C36H46N4) (N1s; BE 398.73 eV) signified by Ti-N ligand chemistry (N1s; BE 398.18, 397.59, 396.7 eV) shown both (vi) schematically and by computational modelling in (e). In the FTIR spectrum shown in (d), the hydration state of PS-P-TiO2 is reflected by water confinement (shown in (e)) in nano or sub-nanometer polymer pores with bond vibrations at 1652 cm-1 and the bulk state of water reflected by OH vibrational states around the broader peak (3700–3100 cm-1).
Figure 4Modelled structure of 1-dimensional PS-P-TiO2. Computational modelling of 1-dimensional projection of quantum confined porphyrin compartmentalised TiO2 embedded in a polystyrene polymer lattice. Modelling colour scheme; white is hydrogen; cyan is carbon, red is oxygen, blue is nitrogen, gold is phosphorous and pink is Ti. The structure was built using Discovery studio (ref: Dassault Systèmes BIOVIA, Discovery Studio Modeling Environment, Release 2017, San Diego: Dassault Systèmes, 2016).
Figure 5High resolution TEM imaging of defect states in quantum confined TiO2 in PS-P-TiO2. The images show the intensity modulation of atomic-sized images from HRTEM. Larger atoms (e.g. P atoms) are visibly brighter and broader in comparison to other regions in the lattice. The red closed dots in (a) show a ‘step-edge’ like behaviour of surface complexed phosphine ligands occupying TiO2 oxygen deficient point defect sites encircled in white and shown as dark regions in (b). The image in (c) shows substitutional point defects by larger atoms. In (d), polymer assembly is shown to adopt a ‘slip’ growth mechanism which appear to form screw dislocations in (b). The pattern follows the route shown within the red bordered lines along vacancy defect sites encircled in white. The colored HRTEM image in (e) shows more clearly the ‘slip’ growth layered architecture. The chemical Scheme in the lower panel represents a possible convergent route with Scheme 1 in Fig 3. The interaction of (i) alkylated phosphonium molecules at defect sites (red closed circles) results in catalytically driven (ii) aromatization of linear alkyl chains. (iii) Surface decomposition and dehydrogenation of ethyl benzene from 1,2-ethanediyl)diphenylphosphorane oxide (P2p; BE 132.3 eV) selectively forms (iv) styrene monomers (C1s; BE 284.5 eV) polymerizing into (v) polystyrene networks in the presence of H3PO4 (P2p; BE 134.32 eV). All scale bars are 1 nm.
Figure 7Solvent dependent morphologies of PS-P-TiO2. TEM bright field imaging indicating QDs amorphous matrix of polystyrene in (a) pure reaction (b) 1:5 (v/v) ethanol. (c) Initiation of crystallization of polymer indicated by the faceted weak contrast rectangular crystals of (~10–20 nm). The dark contrast is possibly due to entrapment of ionic liquid (d) Nanoporous cages (pore size-3–5 nm) at 1:20 (v/v) ethanol, (e) rectangular nanocages (15–50 nm) 1:40 ethanol (v/v) (f) Sheet like nanocages (500 nm–1 μm) diluted 1:60 (v/v) ethanol. Scale bars in images (a–d,f) is 100 nm and 50 nm in image (e).
Figure 6Optical profile of PS-P-TiO2. Spectral band shift of porphyrin (P) bound TiO2 in PS-P-TiO2 atypical of porphyrin ring characteristics signifying distortion of porphyrin ring compartmentalization of TiO2 via Ti–N bonds within the ring cavity. This shift occurs from 290 nm to 286 nm influencing the excitation properties of the neighbouring Soret band. Stabilization of the strained porphyrin–TiO2 complexation (adjacent figure) supported by the surrounding polystyrene (PS) polymer lattice layer via the (1) aromatic moiety groups of PS and (2) phosphine-derived surface ligands provides the opportunity to increase the therapeutic window of TiO2 for tissue absorption at the quantum scale. Copyright Wiley-VCH Verlag GmbH & Co. KGaA. Reproduced with permission.
Figure 8Computational modelling of 3-dimensional supramolecular PS-P-TiO2. The structure was built using Discovery studio (ref: Dassault Systèmes BIOVIA, Discovery Studio Modelling Environment, Release 2017, San Diego: Dassault Systèmes, 2016.) as single porphyrin units, and geometry optimised before combining to create the complete structure (consisting of eight units), which was then further minimised. Structures were minimised using the MMFF94 force field. This monomer was copied to create 10 layers minimizing the system between each addition. Modelling colour scheme; white is hydrogen; cyan is carbon, red is oxygen, blue is nitrogen, gold is phosphorous and pink is Ti.
Figure 9Correlation of wave-length with absorbance spectral data and photoluminescence measurements and modeled structures. Peak intensities of wavelength-abs characteristically occur along the Soret or B band transitions in the colloidal MOF assemblies that correlate to HOMO – LUMO arrangements along the conjugated structures. The peak maxima were converted to energy bands. Relative HOMO-LUMO positions for both (a) UV spectra and (b) photoluminescence intensity data were compared and asiisgned to modelled structures (based on experimental data). The comparison shows that there is good agreement in the energy jumps in the electron absorption excitability of the nanocaged structures.
Figure 10Solar cell performance and predicted mechanism of the QD based solar cell. (a) Incident photon to current efficiency (IPCE) of PS-P-TiO2 peaks at 2.48% relative to the reference cell at 540 nm (b) Current density–voltage curve and Table of parameters showing overall efficiency enhancement of 8.39% in QDDSSC performance (c) possible mechanism of trapping-detrapping route via dye (N719) adsorbed PS-P-TiO2 QDs.
Figure 11Biomimicry as a route to achieve quantum trapped hierarchical materials. Induced biomimcry in synthetic systems leads to a number of atomically important events (summarised in the closed box). Programmable self-assembly provides a feasible route at heterogenous interfaces for the quantum confinement of materials and tuning the complexiety of hierarchical structures as a function of size (boxed in the red border and and the blue border outlined in bold). This has important implications for conventional synthetic routes limited by kinetic pathwy accessability to higher structures.