Submitted:
18 June 2025
Posted:
20 June 2025
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Abstract

Keywords:
1. Introduction
2. Results and Discussion
2.1. FT-IR
- free NH groups,
- NH groups that are connected to carbonyl in hard segments – type I
- NH groups that are connected to ether oxygen in soft segments – type II.
2.2. 1H NMR
- Methyl groups from PPO (a) appear at δ 0.85–0.95 ppm as a doublet, broadened in mixed PEG-PPO systems.
- Internal aliphatic CH₂ groups (b) from DADD are seen as broad multiplets at δ 1.2–1.5 ppm, while β-methylene groups (c) are slightly downfield (δ ~1.6–2.0 ppm) due to proximity to urethane and ether linkages.
- Terminal NH₂ and adjacent CH₂ signals (d, e) are visible in some spectra as low-intensity features, indicating slight chain-end functionality.
- Methylene groups adjacent to NH (f, g) in DADD and PEO segments appear at δ ~2.9–3.1 ppm.
- PPO methine and ether CH₂ (h, i) resonate at δ ~3.3–3.4 ppm and δ ~3.5–3.7 ppm, respectively, forming part of the PEO/PPO backbone.
- CHOH-associated CH₂ and CH protons (j, m, o) appear from δ 4.0 to 4.7 ppm, with signal complexity reflecting regioisomeric ring opening.
- Secondary OH groups (p) show broad signals at δ 4.8–5.0 ppm, and a distinct multiplet at δ ~5.02 ppm (pH) is attributed to hydrogen-bonded CH–OH. The peak pH may be due to OH … O=C – the hydroxyl groups, bonded with urethane group and responsible for dividing FTIR band for urethanes, into 1684 cm-1 band.
- Notably, the CHOH–OH signal splitting varies with diamine structure: a triplet is observed when PPO is used (due to asymmetric, rigid environments near the urethane), while a doublet appears in PEG-containing systems where greater flexibility and symmetry may reduce additional coupling.
2.3. WAXD
2.4. SAXS
2.5. DSC
2.6. DMA
4. Materials and Methods
4.1. Materials
4.2. Synthesis of Erythritol Di(carbonate)
4.3. General Procedure for Synthesis of Non-Isocyanate Polyurethanes (NIPUs)
4.4. Methods
4.4.1. Fourier-Transform Infrared Spectroscopy (FT-IR)
4.4.2. Nuclear Magnetic Resonance (NMR)
4.4.3. Differential Scanning Calorimetry (DSC)
4.4.4. Wide Angle X-Ray Diffraction (WAXD)
4.4.5. Small Angle X-Ray Scattering (SAXS)
4.4.6. Dynamic Mechanical Analysis (DMA)
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Catalá, J.; Guerra, I.; García-Vargas, J.M.; Ramos, M.J.; García, M.T.; Rodríguez, J.F. Tailor-Made Bio-Based Non-Isocyanate Polyurethanes (NIPUs), Polymers, 2023, 15, 1589-1609. [CrossRef]
- Griffin, M.; Castro, N.; Bas, O.; Saifzadeh, S.; Butler, P.; Hutmacher, D.W. The Current Versatility of Polyurethane Three-Dimensional Printing for Biomedical Applications, Tissue Eng. Part B., 2020, 26, 272–283. [CrossRef]
- Król P. Synthesis methods, chemical structures and phase structures of linear polyurethanes. Properties and applications of linear polyurethanes in polyurethane elastomers, copolymers and ionomers, Prog. Mater. Sci., 2007, 52, 915–1015. [CrossRef]
- Engels H.W.; Pirkl H.G.; Albers R.; Albach R.W.; Krause J.; Hoffmann A.; Casselmann H.; Dormish J. Polyurethanes: Versatile Materials and Sustainable Problem Solvers for Today’s Challenges, Angew. Chemie Int. Ed., 2013, 52, 9422–9441. [CrossRef]
- Gomez-Lopez A.; Panchireddy S.; Grignard B.; Calvo I.; Jerome C.; Detrembleur C.; Sardon H. Poly(hydroxyurethane) Adhesives and Coatings: State-of-the-Art and Future Directions, ACS Sustain. Chem. Eng., 2021, 9, 9541–9562. [CrossRef]
- Kathalewar M.S.; Joshi P.B.; Sabnis A.S.; Malshe V.C. Non-isocyanate polyurethanes: From chemistry to applications, RSC Adv. 2013, 3, 4110–4129. [CrossRef]
- Munn A.; Hazards of Isocyanates, Ann. Occup. Hyg. 1965, 8, 163–169. [CrossRef]
- Rayung M.; Ghani N.A.; Hasanudin N. A review on vegetable oil-based non isocyanate polyurethane: towards a greener and sustainable production route, RSC Adv., 2024, 14, 9273–9299. [CrossRef]
- Chattopadhyay D.K.; Webster D.C. Thermal stability and flame retardancy of polyurethanes, Prog. Polym. Sci. 2009, 34, 1068–1133. [CrossRef]
- Rokicki G.; Parzuchowski P.G.; Mazurek M. Non-isocyanate polyurethanes: Synthesis, properties, and applications, Polym. Adv. Technol. 2015, 26, 707–761. [CrossRef]
- Carré C.; Ecochard Y.; Caillol S.; Avérous L. From the Synthesis of Biobased Cyclic Carbonate to Polyhydroxyurethanes: A Promising Route towards Renewable Non-Isocyanate Polyurethanes, ChemSusChem. 2019, 12, 3410–3430. [CrossRef]
- Błażek K; Datta J. Renewable natural resources as green alternative substrates to obtain bio-based non-isocyanate polyurethanes-review, Crit. Rev. Environ. Sci. Technol. 2019, 49, 173–211. [CrossRef]
- Blain M.; Jean-Gérard L.; Auvergne R.; Benazet D.; Caillol S.; Andrioletti B. Rational investigations in the ring opening of cyclic carbonates by amines, Green Chem. 2024, 16, 4286–4291. [CrossRef]
- Cornille A.; Auvergne R.; Figovsky O.; Boutevin B.; Caillol S. A perspective approach to sustainable routes for non-isocyanate polyurethanes, Eur. Polym. J. 2017, 87, 535–552. [CrossRef]
- Yu W.; Maynard E.; Chiaradia V.; Arno M.C.; Dove A.P. Aliphatic Polycarbonates from Cyclic Carbonate Monomers and Their Application as Biomaterials, Chem. Rev. 2021, 121, 10865–10907. [CrossRef]
- Cornille A.; Blain M.; Auvergne R.; Andrioletti B.; Boutevin B.; Caillol S. A study of cyclic carbonate aminolysis at room temperature: Effect of cyclic carbonate structures and solvents on polyhydroxyurethane synthesis, Polym. Chem. 2017, 8, 592–604. [CrossRef]
- Tomita H.; Sanda F.; Endo T. Structural analysis of polyhydroxyurethane obtained by polyaddition of bifunctional five-membered cyclic carbonate and diamine based on the model reaction, J. Polym. Sci. Part A Polym. Chem. 2001, 39, 851–859. [CrossRef]
- Tomita H.; Sanda F.; Endo T. Model reaction for the synthesis of polyhydroxyurethanes from cyclic carbonates with amines: Substituent effect on the reactivity and selectivity of ring-opening direction in the reaction of five-membered cyclic carbonates with amine, J. Polym. Sci. Part A Polym. Chem. 2001, 39, 3678–3685. [CrossRef]
- Leitsch E. K.; Beniah G.; Liu K.; Lan T.; Heath W. H.; Scheidt K. A.; Torkelson J. M. Nonisocyanate Thermoplastic Polyhydroxyurethane Elastomers via Cyclic Carbonate Aminolysis: Critical Role of Hydroxyl Groups in Controlling Nanophase Separation, ACS Macro Lett. 2016, 5, 424-429. [CrossRef]
- Besse V.; Camara F.; Méchin F.; Fleury E.; Caillol S.; Pascault J.-P.; Boutevin B. How to explain low molar masses in PolyHydroxyUrethanes (PHUs), Eur. Polym. J. 2015, 71, 1-11. [CrossRef]
- Sintas J. I.; Bean R. H.; Zhang R.; Long T. E. Nonisocyanate Polyurethane Segmented Copolymers from Bis-Carbonylimidazolides, Macromol. Rapid Commun. 2024, 45, 2400057-2400064. [CrossRef]
- Anderson J. R.; Argyropoulos J. N. Ambient temperature curable isocyanate-free compositions for preparing crosslinked polyurethanes, US 8,653,174 B2, 2014.
- Schimpf V.; Heck B.; Reiter G.; Mülhaupt R. Triple-Shape Memory Materials via Thermoresponsive Behavior of Nanocrystalline Non-Isocyanate Polyhydroxyurethanes, Macromolecules 2017, 50, 3598–3606. [CrossRef]
- Datta J.; Włoch M. Progress in non-isocyanate polyurethanes synthesized from cyclic carbonate intermediates and di- or polyamines in the context of structure–properties relationship and from an environmental point of view, Polym. Bull. 2016, 73, 1459–1496. [CrossRef]
- Nohra B.; Candy L.; Blanco J.-F.; Raoul Y.; Mouloungui Z. Aminolysis Reaction of Glycerol Carbonate in Organic and Hydroorganic Medium, J. Am. Oil Chem. Soc. 2012, 89, 1125–1133. [CrossRef]
- Lam K.Y.; Lee C. S.; Pichika M. R.; Cheng S. F.; Yie R.; Tan H. Non-isocyanate polyurethane-acrylate as UV- and thermo-responsive plasticizer for thermoplastic elastomer, J. Appl. Polym. Sci. 2024, 141, e55703. [CrossRef]
- Zhang B.; Yang X.; Lin X.; Shang H.; Liu Q.; Wang H.; Liu S.; Xu X.; Dong F. High-Strength, Self-Healing, Recyclable, and Catalyst-Free Bio-Based Non-Isocyanate Polyurethane, ACS Sustain. Chem. Eng. 2023, 11, 6100–6113. [CrossRef]
- Beniah G.; Liu K.; Heath W. H.; Miller M. D.; Scheidt K. A.; Torkelson J.M. Novel Thermoplastic Polyhydroxyurethane Elastomers as Effective Damping Materials over Broad Temperature Ranges, Eur. Polym. J. 2016, 84, 770-783. [CrossRef]
- Beniah G.; Uno B.; Lan T.; Jeon J.; Heath W.H.; Scheidt K.A.; Torkelson J.M. Tuning nanophase separation behavior in segmented polyhydroxyurethane via judicious choice of soft segment, Polymer 2017, 110, 218-277. [CrossRef]
- Ochiai, B.; Inoue, S.; Endo, T. One-pot non-isocyanate synthesis of polyurethanes from bisepoxide, carbon dioxide, and diamine. J. Polym. Sci. Part A: Polym. Chem. 2005, 43, 6613–6618. [Google Scholar] [CrossRef]
- Diakoumakos, C.D.; Kotzev, D.L. Non-Isocyanate-Based Polyurethanes Derived upon the Reaction of Amines with Cyclo carbonate Resins. Macromol. Symp. 2004, 216, 37−46. [Google Scholar] [CrossRef]
- Blain, M.; Jean-Gérard, L.; Auvergne, R.; Benazet, D.; Caillol, S.; Andrioletti, B. Rational investigations in the ring opening of cyclic carbonates by amines. Green Chem. 2014, 16, 4286−4291. [Google Scholar] [CrossRef]
- Lambeth, R. Organocatalytic synthesis of (poly)hydroxyurethanes from cyclic carbonates and amines. Polymer 2013, 54, 5568–5573. [Google Scholar] [CrossRef]
- Chen, Q.; Gao, K.; Xie, H.; Zhao, Z.K.; Bao, M. Preparation of lignin/glycerol-based bis(cyclic carbonate) for the synthesis of polyurethanes. Green Chem. 2015, 17, 4546–4551. [Google Scholar] [CrossRef]
- Prompers, G.; Keul, H.; Höcker, H. Polyurethanes with pendant hydroxy groups: polycondensation of D-mannitol-1,2:5,6-dicarbonate with diamines. Des. Monomers Polym. 2005, 8, 547–569. [Google Scholar] [CrossRef]
- Fidalgo, D.M.; Kolender, A.A.; Varela, O. Stereoregular poly O-methyl [m,n]-polyurethanes derived from D-mannitol. J. Polym. Sci. Part A: Polym. Chem. 2013, 51, 463–470. [Google Scholar] [CrossRef]
- Ubaghs, L.; Fricke, N.; Keul, H.; Höcker, H. Polyurethanes with Pendant Hydroxyl Groups: Synthesis and Characterization. Macromol. Rapid Commun. 2004, 25, 517–521. [Google Scholar] [CrossRef]
- Prompers, G.; Keul, H.; Höcker, H. Polyurethanes with pendant hydroxy groups: polycondensation of 1,6-bis-O-phenoxycarbonyl-2,3[ratio]4,5 di-O-isopropylidenegalactitol and 1,6-di-O-phenoxycarbonylgalactitol with diamines. Green Chem. 2006, 8, 467–478. [Google Scholar] [CrossRef]
- Boyer, A.; Cloutet, E.; Tassaing, T.; Gadenne, B.; Alfos, C.; Cramail, H. Solubility in CO2 and carbonation studies of epoxidized fatty acid diesters: towards novel precursors for polyur ethane synthesis. Green Chem. 2010, 12, 2205–2213. [Google Scholar] [CrossRef]
- Mazurek-Budzyńska, M.M.; Rokicki, G.; Drzewicz, M.; Guńka, P.A.; Zachara, J. Bis(cyclic carbonate) based on d-mannitol, d-sorbitol and di (trimethylolpropane) in the synthesis of non-isocyanate poly (carbonate-urethane)s. Eur. Polym. J. 2016, 84, 799–811. [Google Scholar] [CrossRef]
- Lamarzelle, O.; Durand, P.-L.; Wirotius, A.-L.; Chollet, G.; Grau, E.; Cramail, H. Activated lipidic cyclic carbonates for non isocyanate polyurethane synthesis. Polym. Chem. 2016, 7, 1439–1451. [Google Scholar] [CrossRef]
- Fatoumata, C.; Mechin, F.; Fleury, E.; Caillol, S.; Pascault, J.-P.; Boutevin, B. How to explain low molar masses in PolyHydroxyUrethanes (PHUs). Eur. Polym. J. 2015, 71, 1–11. [Google Scholar]
- Besse, V.; Auvergne, R.; Carlotti, S.; Boutevin, G.; Otazaghine, B.; Caillol, S.; Pascault, J.-P.; Boutevin, B. Synthesis of isosorbide based polyurethanes: An isocyanate free method. React. Funct. Polym. 2013, 73, 588–594. [Google Scholar] [CrossRef]
- Delebecq, E.; Pascault, J.-P.; Boutevin, B.; Ganachaud, F. On the Versatility of Urethane/Urea Bonds: Reversibility, Blocked Isocyanate, and Non-isocyanate Polyurethane. Chem. Rev. 2013, 113, 80–118. [Google Scholar] [CrossRef]
- Schmidt S.; Gatti F. J.; Luitz M.; Ritter B. S.; Bruchmann B.; Mulhaupt R. Erythritol Dicarbonate as Intermediate for Solvent- and Isocyanate Free Tailoring of Bio-Based Polyhydroxyurethane Thermoplastics and Thermoplastic Elastomers, Macromolecules 2017, 50, 2296−2303. [CrossRef]
- Kihara, N.; Endo, T. Synthesis and properties of poly (hydroxyurethane)s. J. Polym. Sci. Part A: Polym. Chem. 1993, 31, 2765–2773. [Google Scholar] [CrossRef]
- Schmidt S., Göppert N. E., Bruchmann B.; Mülhaupt R. Liquid sorbitol ether carbonate as intermediate for rigid and segmented non-isocyanate polyhydroxyurethane thermosets. Eur. Polym. J. 2017, 94, 136–142. [Google Scholar] [CrossRef]
- Salvado, V.; Dolatkhani, M.; Grau, E.; Vidil, T.; Cramail, H. Sequence-Controlled Polyhydroxyurethanes with Tunable Regioregularity Obtained from Sugar-Based Vicinal Bis-cyclic Carbonates. Macromolecules 2022, 55, 7249–7264. [Google Scholar] [CrossRef]
- Raftopoulos K.N.; Łukaszewska I.; Lalik S.; Zając P.; Bukowczan A.; Hebda E.; Marzec M.; Pielichowski K. Structure–Glass Transition Relationships in Non Isocyanate Polyhydroxyurethanes. Molecules 2024, 29, 4057. [CrossRef]
- Mishra A. K.; Chattopadhyay D. K.; Sreedhar B.; Raju K. V. S. N. FT-IR and XPS studies of polyurethane-urea-imide coatings. Prog. Org. Coat. 2006, 55, 231-243. [CrossRef]
- Koutsoumpis S.; Ozimek J.; Raftopoulos K. N.; Hebda E.; Klonos P.; Papadakis C. M.; Pielichowski K.; Pissis P. Polyurethanes with POSS pendent on flexible hard segments: Morphology and glass transition. Polymer, 2018, 147, 225-236. [CrossRef]
- Wang Z.; Liu Z.; Gao Z.; Li X.; Eling B.; Poselt E.; Schander E.; Wang Z. Structure transition of aliphatic m,6-Polyurethane during heating investigated using in-situ WAXS, SAXS, and FTIR, Polymer 2022, 254, 125072-125083. [CrossRef]
- Skrovanek D.J.; Painter P.C.; Coleman M.M.; Hydrogen Bonding in Polymers. Infrared Temperature Studies of Nylon 11, Macromolecules 1986, 19, 699–705. [CrossRef]
- Stancik A. L.; Brauns E. B. A simple asymmetric lineshape for fitting infrared absorption spectra, Vibrational Spectroscopy 2008, 47, 66-69. [CrossRef]
- Koutsoumpis S.; Ozimek J.; Raftopoulos K. N.; Hebda E.;, Klonos P.; Papadakis C. M.; Pielichowski K.; Pissis P. Polyurethanes with POSS pendent on flexible hard segments: Morphology and glass transition, Polymer, 2018, 147, 225-236. [CrossRef]
- Nobre S. S.; Lima P. P.; Mafra L.; Sá Ferreira R. A.; Freire R. O.; Fu L.; Uwe Pischel U.; Zea Bermudez V.; Malta O. L.; Carlos L. D. Energy Transfer and Emission Quantum Yields of Organic−Inorganic Hybrids Lacking Metal Activator Centers, J. Phys. Chem. C 2007, 111, 3275–3284. [CrossRef]
- Raut P. W.; Shitole A. A.; Khandwekar A.; Sharma N. Engineering biomimetic polyurethane using polyethylene glycol and gelatin for blood-contacting applications, Journal of Materials Science 2019, 54, 10457–10472. [CrossRef]
- Beniah G.; Fortman D. J.; Heath W. H.; Dichtel W. R.; Torkelson J. M. Non-Isocyanate Polyurethane Thermoplastic Elastomer: AmideBased Chain Extender Yields Enhanced Nanophase Separation and Properties in Polyhydroxyurethane, Macromolecules 2017, 50, 4425–4434. [CrossRef]
- Koberstein J.T.; Russell T.P. Simultaneous SAXS-DSC study of multiple endothermic behavior in polyether-based polyurethane block copolymers, Macromolecules 1986, 19, 714–720. [CrossRef]
- Koberstein J.T.; Stein R.S. Small-angle X-ray scattering studies of microdomain structure in segmented polyurethane elastomers, Journal of Polymer Science: Polymer Physics 1983, 21, 1439–1472. [CrossRef]
- Leung L.M.; Koberstein J.T. Small-angle scattering analysis of hard-microdomain structure and microphase mixing in polyurethane elastomers, Journal of Polymer Science: Polymer Physics 1985, 23, 1883–1913. [CrossRef]
- Koutsoumpis S.; Raftopoulos K.N.; Oguz O.; Papadakis C.M.; Menceloglu Y.Z.; Pissis P. Dynamic glass transition of the rigid amorphous fraction in polyurethane-urea/SiO2 nanocomposites, Soft Matter 2017, 13, 4580–4590. [CrossRef]
- Koutsoumpis S.; Raftopoulos K.N.; Jancia M.; Pagacz J.; Hebda E.; Papadakis C.M.; Pielichowski K.; Pissis P. POSS moieties with PEG vertex groups as diluent in Polyurethane elastomers: morphology and phase separation, Macromolecules 2016, 49, 6507–6517. [CrossRef]
- Raftopoulos K.N.; Koutsoumpis S.; Jancia M.; Lewicki J.P.; Kyriakos K.; Mason H.E.; Harley S.J.; Hebda E.; Papadakis C.M.; Pielichowski K.; Pissis P. Reduced Phase Separation and Slowing of Dynamics in Polyurethanes with Three-Dimensional POSS-Based Cross-Linking Moieties, Macromolecules 2015, 48, 1429–1441. [CrossRef]
- Teubner M.; Strey R.; Origin of the scattering peak in microemulsions, J Chem Phys 1987, 87, 3195–3200. [CrossRef]
- Endo H.; Mihailescu M.; Monkenbusch M.; Allgaier J.; Gompper G.; Richter D.; Jakobs B.; Sottmann T.; Strey R.; Grillo I. Effect of amphiphilic block copolymers on the structure and phase behavior of oil–water-surfactant mixtures, J Chem Phys 2001, 115, 580–600. [CrossRef]
- SasView 6.0.1 documentation » teubner_strey, (n.d.). https://www.sasview.org/docs/user/models/teubner_strey.html (accessed May 22, 2025).
- SasView 6.0.1 documentation » peak_lorentz, (n.d.). https://www.sasview.org/docs/user/models/peak_lorentz.html (accessed May 22, 2025).
- Vallance M.; Yeung A.S.; Cooper S.L. A dielectric study of the glass transition region in segmented polyether-urethane copolymers, Colloid & Polymer Science 1983, 261, 541–554. [CrossRef]
- Umoren S.A.; Solomon M.M.; Saji V.S. Polyethers, in: Polymeric Materials in Corrosion Inhibition, Elsevier, 2022: pp. 399–417. [CrossRef]
- Koberstein J.T.; Galambos A.F. Multiple melting in segmented polyurethane block copolymers, Macromolecules 1992, 25, 5618–5624. [CrossRef]
- Leung L.M.; Koberstein J.T. DSC Annealing Study of Microphase Separation and Multiple Endothermic Behavior in Polyether-Based Polyurethane Block Copolymers, Macromolecules 1986, 19, 706–713. [CrossRef]
- Koberstein J.T.; Leung L.M. Compression-molded polyurethane block copolymers. Evaluation of microphase compositions, Macromolecules 1992, 25, 6205–6213. [CrossRef]
- Koberstein J.T.; Gancarz I.; Clarke T.C. The effects of morphological transitions on hydrogen bonding in polyurethanes: Preliminary results of simultaneous DSC–FTIR experiments, J Polym Sci B Polym Phys 1986, 24, 2487–2498. [CrossRef]
- Koberstein J.T.; Galambos A.F.; Leung L.M. Compression-Molded Polyurethane Block Copolymers. Microdomain Morphology and Thermomechanical Properties, Macromolecules 1992, 25, 6195–6204. [CrossRef]
- Raftopoulos K.N.; Janowski B.; Apekis L.; Pielichowski K.; Pissis P. Molecular mobility and crystallinity in polytetramethylene ether glycol in the bulk and as soft component in polyurethanes, Eur Polym J 2011, 47, 2120–2133. [CrossRef]
- Umoren S.A.; Solomon M.M.; Saji V.S. Polyethers, in: Polymeric Materials in Corrosion Inhibition, Elsevier, 2022: pp. 399–417. [CrossRef]
- Faucher J.A.; Koleske J. V.; Santee E.R.; Stratta J.J.; Wilson C.W. Glass Transitions of Ethylene Oxide Polymers, J Appl Phys 1966, 37, 3962–3964. [CrossRef]
- Bakkali-Hassani C.; Berne D.; Ladmiral V.; Caillol S. Transcarbamoylation in Polyurethanes: Underestimated Exchange Reations?, Macromolecules 2022, 55, 7974–7991. [CrossRef]
- Dannecker P.-K.; Meier M.A.R. Facile and Sustainable Synthesis of Erythritol bis(carbonate), a Valuable Monomer for Non-Isocyanate Polyurethanes (NIPUs), Sci Rep 2019, 9, 9858-9864. [CrossRef]










| Sample | (nm) | (nm) | (nm) | (nm) |
|---|---|---|---|---|
| EDC-PEG-25 | 22.41±0.10 | 3.07±0.03 | 2.19±0.05 | 1.46±0.03 |
| EDC-PPO-25 | 17.50±0.03 | 3.42±0.01 | 2.26±0.06 | 1.68±0.06 |
| EDC-PEG/PPO-25 | 19.00±0.06 | 2.86±0.02 | 2.18±0.04 | 1.62±0.04 |
| Sample name | Polyether | Amine | Polyether: Amine [wt%] |
| EDC-PEG_20 | H2N-PEG-NH2 | DADD | 20:80 |
| EDC-PEG_22.5 | H2N-PEG-NH2 | 22.5:77.5 | |
| EDC-PEG_25 | H2N-PEG-NH2 | 25:75 | |
| EDC-PEG_27,5 | H2N-PEG-NH2 | 27.5:72.5 | |
| EDC-PPO_20 | H2N-PPO-NH2 | 20:80 | |
| EDC-PPO_22.5 | H2N-PPO-NH2 | 22.5:77.5 | |
| EDC-PPO_25 | H2N-PPO-NH2 | 25:75 | |
| EDC-PPO_27.5 | H2N-PPO-NH2 | 27.5:72.5 | |
| EDC-PPO/PEG_20 | H2N-PPO/PEG-NH2 | 20:80 | |
| EDC-PPO/PEG_22.5 | H2N-PPO/PEG-NH2 | 22.5:77.5 | |
| EDC-PPO/PEG_25 | H2N-PPO/PEG-NH2 | 25:75 | |
| EDC-PPO/PEG_27.5 | H2N-PPO/PEG-NH2 | 27.5:72.5 |
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