Cas no 9011-05-6 (Ureaformaldehyde)
Ureaformaldehyde Chemical and Physical Properties
Names and Identifiers
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- Urea formaldehyde
- acrisinfs017
- aerolite300
- aerolitea300
- aeroliteffd
- agroform
- amikol65
- anaflex
- basf
- UREA FORMALDEHYDE RESIN
- 10S60
- 113E1
- 12C257A
- 170B
- 3T/3TS
- A 2
- A 2 (aminoplast)
- Acrisin FS 017
- Aerolite 300
- Aerolite A 300
- Aerolite FFD
- Aerolite UL 333
- AkzoNobel 1274
- AL 3029
- AL 3029R
- Albemarle M 3
- Amikol 65
- Ammonium chloride-formaldehyde-urea copolymer
- Amres 255
- Antimnol WMS
- Arbocoll FK
- Arclin 65-2024
- Bakelite UA 125
- BASF 285
- BASF 570
- Basopor 293
- Basopor 395MA
- BB 032
- BC 20
- BC 20 (polymer)
- BC 40
- BC 40 (polymer)
- BC 70
- BC 700
- BC 77
- BE 382
- Beckamine 21-500
- Beckamine 21-510
- Beckamine 21-511
- Beckamine G 1850
- Beckamine J 300S
- Beckamine N 113
- Beckamine N 117T
- Beckamine N 13
- Beckamine N 80
- Beckamine NF 5
- Beckamine P 136
- Beckamine P 138
- 68511-66-0
- Urea, formaldehyde, butanol resin
- 9011-05-6
- Urea-formaldehyde resin
- 68071-45-4
- 68002-19-7
- urea formaldehyde foam
- formaldehyde urea
- 68071-44-3
- 100786-56-9
- AKOS015915450
- Urea, mixt. with formaldehyde
- formaldehyde;urea
- 68611-64-3
- Carbamimidic acid--formaldehyde (1/1)
- 64869-57-4
- EC 271-898-1
- 68002-18-6
- DTXSID10905739
- ureaformaldehyde
- Urea, formaldehyde, butyl alcohol resin
- urea-formaldehyde
- EINECS 271-898-1
- Ureaformaldehyde
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- Inchi: 1S/CH4N2O.CH2O/c2-1(3)4;1-2/h(H4,2,3,4);1H2
- InChI Key: ODGAOXROABLFNM-UHFFFAOYSA-N
- SMILES: C=O.NC(=O)N
Computed Properties
- Exact Mass: 90.04290
- Monoisotopic Mass: 90.042927
- Isotope Atom Count: 0
- Hydrogen Bond Donor Count: 2
- Hydrogen Bond Acceptor Count: 2
- Heavy Atom Count: 6
- Rotatable Bond Count: 0
- Complexity: 31
- Covalently-Bonded Unit Count: 2
- Defined Atom Stereocenter Count: 0
- Undefined Atom Stereocenter Count : 0
- Defined Bond Stereocenter Count: 0
- Undefined Bond Stereocenter Count: 0
- Topological Polar Surface Area: 86.2
Experimental Properties
- Color/Form: No data avaiable
- Density: No data available
- Melting Point: No data available
- Boiling Point: No data available
- Flash Point: No data available
- PSA: 86.18000
- LogP: 0.87540
- Vapor Pressure: No data available
Ureaformaldehyde Security Information
- Signal Word:Danger
- Hazard Statement: H315 (100%) H318 (100%) H412 (100%)
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Warning Statement:
P264Thoroughly clean after treatment
P280Wear protective gloves/Wear protective clothing/Wear protective goggles/Wear a protective mask
P305If it enters the eyes
P351Rinse carefully with water for a few minutes
P338Remove the contact lens(If any)And easy to operate,Continue flushing
P337If eye irritation persists
P313Obtain medical advice/care - Hazard Category Code: R36/37/38: irritating to eyes, respiratory tract and skin
- Safety Instruction: S36/37/39-S26
- Risk Phrases:R36/37/38
- Storage Condition:Store at 4 ° C, -4 ° C is better
Ureaformaldehyde Pricemore >>
| Related Categories | No. | Product Name | Cas No. | Purity | Specification | Price | update time | Inquiry |
|---|---|---|---|---|---|---|---|---|
| SHANG HAI A LA DING SHENG HUA KE JI GU FEN Co., Ltd. | U304906-500g |
Ureaformaldehyde |
9011-05-6 | 60% | 500g |
¥350.90 | 2023-08-31 | |
| SHANG HAI A LA DING SHENG HUA KE JI GU FEN Co., Ltd. | U304906-100g |
Ureaformaldehyde |
9011-05-6 | 60% | 100g |
¥85.90 | 2023-08-31 | |
| SHANG HAI JI ZHI SHENG HUA Technology Co., Ltd. | X58975-100g |
Ureaformaldehyde |
9011-05-6 | 60% | 100g |
¥78.0 | 2023-09-05 | |
| SHANG HAI JI ZHI SHENG HUA Technology Co., Ltd. | X58975-500g |
Ureaformaldehyde |
9011-05-6 | 500g |
¥328.0 | 2021-09-07 | ||
| SHANG HAI MAI KE LIN SHENG HUA Technology Co., Ltd. | U856779-100g |
Urea formaldehyde |
9011-05-6 | 60% | 100g |
¥88.00 | 2022-09-28 | |
| SHANG HAI MAI KE LIN SHENG HUA Technology Co., Ltd. | U856779-500g |
Urea formaldehyde |
9011-05-6 | 60% | 500g |
¥358.00 | 2022-09-28 | |
| SHANG HAI MAI KE LIN SHENG HUA Technology Co., Ltd. | U856779-2.5kg |
Urea formaldehyde |
9011-05-6 | 60% | 2.5kg |
¥1,668.00 | 2022-09-28 | |
| TRC | U217830-50mg |
Ureaformaldehyde |
9011-05-6 | 50mg |
$ 170.00 | 2022-06-02 | ||
| TRC | U217830-100mg |
Ureaformaldehyde |
9011-05-6 | 100mg |
$ 285.00 | 2022-06-02 | ||
| TRC | U217830-250mg |
Ureaformaldehyde |
9011-05-6 | 250mg |
$ 570.00 | 2022-06-02 |
Ureaformaldehyde Suppliers
Ureaformaldehyde Related Literature
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Juan J. Sánchez,Miguel López-Haro,Juan C. Hernández-Garrido,Ginesa Blanco,Miguel A. Cauqui,José M. Rodríguez-Izquierdo,José A. Pérez-Omil,José J. Calvino,María P. Yeste J. Mater. Chem. A, 2019,7, 8993-9003
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Kaiyuan Huang,Wangkang Qiu,Meilian Ou,Xiaorui Liu,Zenan Liao,Sheng Chu RSC Adv., 2020,10, 18824-18829
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Huabin Zhang,Shaowu Du CrystEngComm, 2014,16, 4059-4068
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Stephen P. Fletcher,Richard B. C. Jagt,Ben L. Feringa Chem. Commun., 2007, 2578-2580
Additional information on Ureaformaldehyde
Ureaformaldehyde (CAS No. 9011-05-6): Properties, Applications, and Market Insights
Ureaformaldehyde (CAS No. 9011-05-6) is a thermosetting resin formed by the condensation reaction of urea and formaldehyde. This urea-formaldehyde resin is widely recognized for its excellent adhesive properties, cost-effectiveness, and versatility in industrial applications. As a key material in the production of wood-based panels, ureaformaldehyde resins dominate the market due to their high bonding strength and water resistance.
The chemical structure of ureaformaldehyde consists of methylene bridges and methylol groups, which contribute to its cross-linking capabilities during curing. Recent advancements in urea-formaldehyde resin technology have focused on reducing formaldehyde emissions, addressing growing environmental concerns. Manufacturers now offer low-emission ureaformaldehyde resins that comply with stringent international standards like CARB Phase 2 and E1/E0 classifications.
In the construction sector, ureaformaldehyde foam insulation has gained attention as an energy-efficient solution for buildings. While newer alternatives exist, the thermal performance and affordability of urea-formaldehyde insulation continue to make it relevant in certain applications. Researchers are actively working on modified ureaformaldehyde resins with enhanced properties for specialized uses in automotive components and electrical insulation.
The global ureaformaldehyde market is projected to grow steadily, driven by increasing demand from the furniture and construction industries. Asia-Pacific currently leads in urea-formaldehyde resin production, with China being the largest manufacturer and consumer. Sustainability trends are shaping the industry, with innovations in bio-based ureaformaldehyde formulations and recycling technologies gaining traction.
Quality control in ureaformaldehyde manufacturing involves strict monitoring of the urea-to-formaldehyde ratio, pH levels, and curing characteristics. Modern analytical techniques like FTIR spectroscopy and DSC are employed to ensure consistent urea-formaldehyde resin properties. The development of fast-curing ureaformaldehyde systems has significantly improved production efficiency in wood composite manufacturing.
Recent studies explore the potential of nano-modified ureaformaldehyde resins incorporating cellulose nanofibers or clay nanoparticles. These advanced materials demonstrate improved mechanical strength and reduced formaldehyde release. The ureaformaldehyde industry continues to evolve with digitalization trends, implementing IoT-based monitoring systems for better process control and quality assurance.
From an environmental perspective, lifecycle assessments of urea-formaldehyde products help manufacturers optimize their ecological footprint. The development of formaldehyde-scavenging ureaformaldehyde formulations represents a significant breakthrough, addressing indoor air quality concerns while maintaining performance characteristics. These innovations respond to consumer demand for safer, more sustainable materials.
In agricultural applications, slow-release ureaformaldehyde fertilizers provide controlled nitrogen delivery, improving nutrient use efficiency. This specialized use of urea-formaldehyde compounds demonstrates the material's versatility beyond traditional adhesive applications. Research continues into optimizing the nitrogen release profiles of these formulations for different crop requirements.
The future of ureaformaldehyde technology lies in balancing performance with environmental responsibility. Emerging green chemistry approaches to urea-formaldehyde synthesis aim to reduce energy consumption and waste generation during production. As regulations tighten globally, the industry's ability to innovate while maintaining cost competitiveness will determine its long-term success in various applications.