| Literature DB >> 36081837 |
Clément Lebastard1,2, Maxence Wilmet1,2,3, Stéphane Cordier1, Clothilde Comby-Zerbino4, Luke MacAleese4, Philippe Dugourd4, Naoki Ohashi2,5, Tetsuo Uchikoshi2,5, Fabien Grasset1,2.
Abstract
The development of highly ultraviolet (UV) and near-infrared (NIR) absorbent transparent coatings is an important enabling technology and area of research for environmental sustainability and energy conservation. Different amounts of K4[{Nb5TaXi 12}Xa 6] cluster compounds (X = Cl, Br) dispersed into polyvinylpyrrolidone matrices were prepared by a simple, nontoxic and low-cost wet chemical method. The resulting solutions were used to fabricate visibly transparent, highly UV and NIR absorbent coatings by drop casting. The properties of the solution and films were investigated by complementary techniques (optical absorption, electrospray ionization mass spectrometry and Raman spectroscopy). The UV and NIR absorption of such samples strongly depended on the concentration, dispersion and oxidation state of the [{Nb5TaXi 12}Xa 6] nanocluster-based units. By varying and controlling these parameters, a remarkable improvement of the figures of merit TL/TE and SNIR for solar-glazing applications was achieved compared to the previous results on nanocomposite coatings based on metal atom clusters.Entities:
Keywords: NIR blocker; Octahedral metal clusters; nanoarchitectonic; nanocomposites; solar glazing; thin films
Year: 2022 PMID: 36081837 PMCID: PMC9448435 DOI: 10.1080/14686996.2022.2105659
Source DB: PubMed Journal: Sci Technol Adv Mater ISSN: 1468-6996 Impact factor: 7.821
Figure 1.UV-Vis-NIR solar energy spectrum (left) and sketch of the nanocomposite based on metal atom clusters [{Nb5TaXi12}Xa6]4- (right).
Examples of FOM TL, TL and the ratio TL/TE (with TL > 50%). *deposited on polyethylene terephthalate; $deposited on ITO coated glass (noted ITO@glass).
| Active species/Matrix | Ref. | TL (%) | TE (%) | TL/TE | |||
|---|---|---|---|---|---|---|---|
| LaB6/PVB | 9 | 81.7 | 68.3 | 1.20 | |||
| Silver nanoprisms | 14 | 92.7 | 92.9 | 1.0 | |||
| VO2 (T=20°C, | 18 | 59.2 | 62.1 | 0.95 | |||
| ITO | 24 | 93.0 | 91.0 | 1.02 | |||
| AZO | 24 | 85.0 | 82.0 | 1.02 | |||
| (NH4)xWO3/PVP* | 27 | 62.1 | 47.0 | 1.32 | |||
| Sb doped SnO2 | 28 | 93.9 | 78.7 | 1.19 | |||
| Cs0.32WO3/PMMA | 31 | 85.8 | 68.8 | 1.25 | |||
| {Ta6Xi12}/PVP$ | 35 | 69.9 | 55.3 | 1.26 | |||
| {Nb6Xi12}/PMMA$ | 38 | 74.1 | 62.2 | 1.19 | |||
| ITO@{Nb6Xi12}@SiO2$ | 39 | 61.8 | 55.6 | 1.11 | |||
| {Mo6Xi8}/PMMA$ | 38 | 71.1 | 57.5 | 1.24 | |||
PVB= polyvinyl butyral; AZO= aluminum-doped zinc oxide; PVP= polyvinylpyrrolidone; PMMA= Poly(methyl methacrylate).
Composition of the prepared cluster-PVP colloids.
| Sample | K4[{Nb5TaXi12}Xa6] (g∙L−1)* | PVP (%wt) |
|---|---|---|
| {Nb5TaXi12}-20 | 20 | 10%wt |
| {Nb5TaXi12}-16 | 16 | 10%wt |
| {Nb5TaXi12}-12 | 12 | 10%wt |
| {Nb5TaXi12}-8 | 8 | 10%wt |
| {Nb5TaXi12}-4 | 4 | 10%wt |
| {Nb5TaXi12}-2 | 2 | 10%wt |
* X = Cl, Br.
Figure 2.Raman spectra of K4[{Nb5TaXi12}Xa6]. The homometallic spectra are added for comparison.
Figure 3.Example of digital microscope pictures of the cross section of a {Nb5TaCli12}-12@PVP nanocomposite film on glass substrate.
Figure 4.UV-Vis-NIR transmission spectra of the chlorine nanocomposite films for concentrations ranging from 0 to 20 g∙L−1. Reproduced by permission from 41.
FOM values and CIE color coordinates for the chlorine nanocomposite films (thickness around 65 µm). Reproduced by permission from 41.
| Cluster core-concentration | TL | TE | TL/TE | x | y | z | SNIR(%) |
|---|---|---|---|---|---|---|---|
| {Nb5TaCli12}-20.0 | 47.1 | 35.6 | 1.32 | 0.38 | 0.45 | 0.17 | 57.8 |
| {Nb5TaCli12}-16.0 | 54.1 | 40.7 | 1.33 | 0.37 | 0.43 | 0.20 | 54.4 |
| {Nb5TaCli12}-12.0 | 62.9 | 48.3 | 1.30 | 0.35 | 0.41 | 0.24 | 48.8 |
| {Nb5TaCli12}-8.0 | 68.8 | 54.5 | 1.26 | 0.34 | 0.39 | 0.26 | 43.7 |
| {Nb5TaCli12}-4.0 | 79.6 | 68.3 | 1.16 | 0.33 | 0.36 | 0.30 | 31.1 |
| {Nb5TaCli12}-2.0 | 85.1 | 77.6 | 1.10 | 0.32 | 0.35 | 0.33 | 22.2 |
Figure 5.UV-Vis-NIR transmission spectra on glass and ITO@glass substrates for the {Nb5TaCli12}-12@PVP nanocomposite films.
Figure 6.UV-Vis-NIR transmission spectra for the {Nb5TaCli12}-12@PVP nanocomposite films deposited on glass substrates and dried at room temperature or 50°C/18h by using different acid conditions.
Figure 7.UV-Vis-NIR transmission spectra on glass substrates at room temperature or temperature ranging from 50°C to 100°C for the {Nb5TaCli12}-12@PVP nanocomposite films. Left: fresh measurements; right: measurement after 1-year aging at room temperature. Reproduced by permission from 41.
Figure 8.Picture of the nanocomposite films after 1-year aging for the {Nb5TaCli12}-12@PVP nanocomposite films.