Abstract
| Original language | English |
|---|---|
| Journal | International Journal of Molecular Sciences |
| Volume | 22 |
| Issue number | 23 |
| DOIs | |
| Publication status | Published - 28 Nov 2021 |
Keywords
- FTIR imaging
- FTIR micro-tomography
- FTIR spectroscopy
- Tannin-furanic rigid foam
- tannin
- furan derivative
- furfuryl alcohol
- tannin derivative
- Article
- foam
- Fourier transform infrared spectroscopy
- micro-computed tomography
- nonhuman
- polymerization
- synthesis
- chemistry
- infrared spectroscopy
- Furans
- Spectroscopy, Fourier Transform Infrared
- Tannins
- X-Ray Microtomography
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In: International Journal of Molecular Sciences, Vol. 22, No. 23, 28.11.2021.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - Study of the Spatio-Chemical Heterogeneity of Tannin-Furanic Foams: From 1D FTIR Spectroscopy to 3D FTIR Micro-Computed Tomography
AU - Cefarin, N.
AU - Bedolla, D.E.
AU - Surowka, A.
AU - Donato, S.
AU - Sepperer, T.
AU - Tondi, G.
AU - Dreossi, D.
AU - Sodini, N.
AU - Birarda, G.
AU - Vaccari, L.
N1 - Cited By :7 Export Date: 14 December 2023 Correspondence Address: Birarda, G.; Elettra-Sincrotrone Trieste, S.S. 14 Km 163.5, Italy; email: [email protected] Chemicals/CAS: tannin, 1401-55-4; furfuryl alcohol, 98-00-0; Furans; furfuryl alcohol; Tannins Funding details: ITAT 1059 InCIMa4, ITAT1023 InCIMa Funding details: European Regional Development Fund, ERDF Funding text 1: Funding: This research was funded by the European Regional Development Fund and Interreg V-A Italy Austria 2014–2020 through projects ITAT1023 InCIMa and ITAT 1059 InCIMa4. References: Baker, M.J., Trevisan, J., Bassan, P., Bhargava, R., Butler, H.J., Dorling, K.M., Fielden, P.R., Heys, K.A., Using Fourier transform IR spectroscopy to analyze biological materials (2014) Int. Biodeterior. Biodegrad, 9, pp. 1771-1791. , https://doi.org/10.1038/nprot.2014.110, K.A Nat. Protoc. et al. Using Fourier transform IR spectroscopy to analyze biological materials. Nat. Protoc, 2014, 9, 1771–1791. [CrossRef] [PubMed] 2. Schmitt, J.; Flemming, H.-C. FTIR-spectroscopy in microbial and material analysis. 1998, 41, 1–11; Schmitt, J., Flemming, H.-C., FTIR-spectroscopy in microbial and material analysis (1998) Int. Biodeterior. Biodegrad, 41, pp. 1-11. , https://doi.org/10.1016/S0964-8305(98)80002-4, [CrossRef] 3. Hirschmugl, C.J.; Gough, K.M. Fourier Transform Infrared Spectrochemical Imaging: Review of Design and Applications with; Hirschmugl, C.J., Gough, K.M., Fourier Transform Infrared Spectrochemical Imaging: Review of Design and Applications with a a Focal Plane Array and Multiple Beam Synchrotron Radiation Source (2012) Appl. Spectrosc. AS, 66, pp. 475-491. , Focal Plane Array and Multiple Beam Synchrotron Radiation Source. Appl. Spectrosc. AS 2012, 66, 475–491. [CrossRef] 4. Pilling, M.; Gardner, P. Fundamental developments in infrared spectroscopic imaging for biomedical applications. Chem. 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PY - 2021/11/28
Y1 - 2021/11/28
N2 - Tannin-furanic rigid foams are bio-based copolymers of tannin plant extract and furfuryl alcohol, promising candidates to replace synthetic insulation foams, as for example polyurethanes and phenolics, in eco-sustainable buildings thanks to their functional properties, such as lightness of the material and fire resistance. Despite their relevance as environmental-friendly alternatives to petroleum derivatives, many aspects of the polymerization chemistry still remain unclear. One of the open issues is on the spatial heterogeneity of the foam, i.e., whether the foam constituents prevalently polymerize in spatially segregated blocks or distribute almost homogenously in the foam volume. To address this matter, here we propose a multiscale FTIR study encompassing 1D FTIR spectroscopy, 2D FTIR imaging and 3D FTIR micro-tomography (FTIR-µCT) on tannin-furanic rigid foams obtained by varying the synthesis parameters in a controlled way. Thanks to the implementation of the acquisition and processing pipeline of FTIR-µCT, we were able for the first time to demonstrate that the polymer formulations influence the spatial organization of the foam at the microscale and, at the same time, prove the reliability of FTIR-µCT data by comparing 2D FTIR images and the projection of the 3D chemical images on the same plane.
AB - Tannin-furanic rigid foams are bio-based copolymers of tannin plant extract and furfuryl alcohol, promising candidates to replace synthetic insulation foams, as for example polyurethanes and phenolics, in eco-sustainable buildings thanks to their functional properties, such as lightness of the material and fire resistance. Despite their relevance as environmental-friendly alternatives to petroleum derivatives, many aspects of the polymerization chemistry still remain unclear. One of the open issues is on the spatial heterogeneity of the foam, i.e., whether the foam constituents prevalently polymerize in spatially segregated blocks or distribute almost homogenously in the foam volume. To address this matter, here we propose a multiscale FTIR study encompassing 1D FTIR spectroscopy, 2D FTIR imaging and 3D FTIR micro-tomography (FTIR-µCT) on tannin-furanic rigid foams obtained by varying the synthesis parameters in a controlled way. Thanks to the implementation of the acquisition and processing pipeline of FTIR-µCT, we were able for the first time to demonstrate that the polymer formulations influence the spatial organization of the foam at the microscale and, at the same time, prove the reliability of FTIR-µCT data by comparing 2D FTIR images and the projection of the 3D chemical images on the same plane.
KW - FTIR imaging
KW - FTIR micro-tomography
KW - FTIR spectroscopy
KW - Tannin-furanic rigid foam
KW - tannin
KW - furan derivative
KW - furfuryl alcohol
KW - tannin derivative
KW - Article
KW - foam
KW - Fourier transform infrared spectroscopy
KW - micro-computed tomography
KW - nonhuman
KW - polymerization
KW - synthesis
KW - chemistry
KW - infrared spectroscopy
KW - Furans
KW - Spectroscopy, Fourier Transform Infrared
KW - Tannins
KW - X-Ray Microtomography
UR - https://www.mendeley.com/catalogue/b50fe48b-21d4-3f12-9920-fe6f8cc00a74/
U2 - 10.3390/ijms222312869
DO - 10.3390/ijms222312869
M3 - Article
C2 - 34884675
SN - 1661-6596
VL - 22
JO - International Journal of Molecular Sciences
JF - International Journal of Molecular Sciences
IS - 23
ER -