1-Methylurea - Moligand™, ≥98% , CAS No.598-50-5

CAS: 598-50-5 Cat. No.: M107951 Formule: C2H6N2O Poids moléculaire: 74.08 Beilstein Registry Number: 878189 Numéro CE: 209-935-0
DISPONIBLE À COMMANDE
GRADE & PURITY Moligand™ ? Moligand™ — Aladdin's line of ligands and bioactive small molecules. Use for receptor, pathway, and binding studies needing defined small-molecule tools. ≥98%
Synonyms
Monomethylurea | Urea, methyl- | 1-Methylurea | Methylharnstoff | Methylmocovina | METHYLUREA-D6 | N-Methylurea | VZ89YBW3P8 | Methyl urea | Methylharnstoff [German] | Methylmocovina [Czech] | METHYLUREA | MFCD00007950 | N-methyl urea | urea, N-methyl-
Storage
Store at 2-8°C,Argon charged
Shipped In
Wet ice
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Size
Allemagne (EU)
USA*
Price
Qty
100g
M107951-100g
—
3 En stock

10,33€

15,53€
Enregistrer 5,21 € (33.52%)
500g
M107951-500g
—
En stock ≥10

19,87€

30,28€
Enregistrer 10,41 € (34.38%)
Enter a quantity for the sizes you want to add.
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Why this grade

Moligand™, ≥98% Moligand™ for sensitive chromatographic and analytical workflows requiring minimal baseline interference.

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Storage & shipping

Store at 2-8°C,Argon charged Ships Wet ice Check lot-specific COA for exact specifications.

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Quality documents

SDS, COA, datasheet, and spec sheet available for download. Lot-specific COA accessible via lot number lookup.

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Literature proof

Cited in 24 peer-reviewed publications across chromatography, organic synthesis, and cross-coupling reactions.

Specifications

Synonymes
Monomethylurea | Urea, methyl- | 1-Methylurea | Methylharnstoff | Methylmocovina | METHYLUREA-D6 | N-Methylurea | VZ89YBW3P8 | Methyl urea | Methylharnstoff [German] | Methylmocovina [Czech] | METHYLUREA | MFCD00007950 | N-methyl urea | urea, N-methyl-
Spécifications et pureté
Moligand™, ≥98%
Conditions de stockage de stockage
Store at 2-8°C,Argon charged
Expédié en
Wet ice
Ce produit nécessite l'expédition en chaîne froide. Les services terrestres et autres services économiques ne sont pas disponibles.
Grade
Moligand™
Pureté
≥98%
Noms et identifiants
Pubchem Sid504752181
Pubchem Sid Urlhttps://pubchem.ncbi.nlm.nih.gov/substance/504752181
Sourires canoniquesCNC(=O)N
IUPAC Namemethylurea
InChIKeyXGEGHDBEHXKFPX-UHFFFAOYSA-N
INCHI1S/C2H6N2O/c1-4-2(3)5/h1H3,(H3,3,4,5)
Isomères SMILES CNC(=O)N
WGK Allemagne 3
RTECS YT7175000
CAS alternatif 598-50-5,608090-15-9
Termes d'entrée MeSH methylurea;monomethylurea
Poids moléculaire 74.08
Beilstein 878189
Reaxy-Rn 878189
Reaxys-RN_link_address https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=878189&ln=

Documentation

📋 Safety Data Sheet (SDS)

Comprehensive hazard, handling, storage, and regulatory compliance document.

Download SDS →

✅ Certificate of Analysis (COA)

Lot-specific quality data. Enter your lot number to retrieve the exact COA.

Look up COA →

📊 Datasheet

Quick-reference summary of product specifications and applications.

View datasheet →

🔬 Specification Sheet

Full quality attributes and acceptance criteria for this grade.

View spec sheet →

Advanced Data

Taxonomic Classification

Taxonomy Tree

KingdomOrganic compounds
SuperclassOrganic acids and derivatives
ClasseOrganic carbonic acids and derivatives
SubclassUreas
Intermediate Tree Nodes Not available
Direct ParentUreas
Alternative Parents Organopnictogen compounds  Organonitrogen compounds  Organic oxides  Hydrocarbon derivatives  Carbonyl compounds  
Molecular FrameworkAliphatic acyclic compounds
Substituents Urea - Organic nitrogen compound - Organic oxygen compound - Organopnictogen compound - Organic oxide - Hydrocarbon derivative - Organooxygen compound - Organonitrogen compound - Carbonyl group - Aliphatic acyclic compound
DescriptionThis compound belongs to the class of organic compounds known as ureas. These are compounds containing two amine groups joined by a carbonyl (C=O) functional group.
External Descriptors ureas
Structure 3D
Modèle de structure chimique interactif





Certificats (CoA, COO, BSE/TSE et tableau d'analyse)
C of A & Other Certificates(BSE/TSE, COO):
Analytical Chart:

Find and download the COA for your product by matching the lot number on the packaging.

19 results found

Lot NumberCertificate TypeDateArticle
F2610544Certificate of AnalysisJun 17, 2026 M107951
F2610543Certificate of AnalysisJun 17, 2026 M107951
H2504574Certificate of AnalysisApr 28, 2025 M107951
H2504573Certificate of AnalysisApr 28, 2025 M107951
H2414433Certificate of AnalysisAug 02, 2024 M107951
H2414414Certificate of AnalysisAug 02, 2024 M107951
H2414413Certificate of AnalysisAug 02, 2024 M107951
D2508524Certificate of AnalysisJul 01, 2024 M107951
D2508552Certificate of AnalysisJul 01, 2024 M107951
D2508624Certificate of AnalysisJul 01, 2024 M107951
D2508725Certificate of AnalysisJul 01, 2024 M107951
B2328919Certificate of AnalysisJan 03, 2023 M107951
B2328917Certificate of AnalysisJan 03, 2023 M107951
B2328890Certificate of AnalysisJan 03, 2023 M107951
B2328874Certificate of AnalysisJan 03, 2023 M107951
A2426051Certificate of AnalysisJan 03, 2023 M107951
C1907078Certificate of AnalysisDec 12, 2022 M107951
F2218049Certificate of AnalysisJun 30, 2022 M107951
A2306233Certificate of AnalysisJun 10, 2021 M107951

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Propriétés chimiques et physiques
SolubilitéSolubility in water: Completely soluble; Very soluble in Methanol; Insoluble in Ether
Sensibilitéheat sensitive;Air sensitive;Hygroscopic
Point de fusion (°C)99°C
Poids moléculaire74.080 g/mol
XLogP3-1.400
Hydrogen Bond Donor Count2
Hydrogen Bond Acceptor Count1
Rotatable Bond Count0
Exact Mass74.048 Da
Monoisotopic Mass74.048 Da
Topological Polar Surface Area55.100 Ų
Heavy Atom Count5
Formal Charge0
Complexity42.900
Isotope Atom Count0
Defined Atom Stereocenter Count0
Undefined Atom Stereocenter Count0
Defined Bond Stereocenter Count0
Undefined Bond Stereocenter Count0
The total count of all stereochemical bonds0
Covalently-Bonded Unit Count1
Citations of This Product
Références
1. Yuan Zhang, Lu Yu, Wuxia Ge, Wentao Bi, David Da Yong Chen.  (2023)  Preparation of carbon-rich material from Dendrobium officinale polysaccharide in deep eutectic system.  INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,      [PMID:37832618] [10.1016/j.ijbiomac.2023.127394]
2. Xinjin Yu, Zhimei Zhao, Xiaoli Yan, Jianhua Xie, Qiang Yu, Yi Chen.  (2023)  Extraction optimization of tea saponins from Camellia oleifera seed meal with deep eutectic solvents: Composition identification and properties evaluation.  FOOD CHEMISTRY,      [PMID:37392622] [10.1016/j.foodchem.2023.136681]
3. Ying Zhang, Jian Ye, Yinzhi Jiang, Shuqin Jiang, Wei Xiao, Dongchu Wei.  (2023)  Alkylaluminum/Urea Hybrid Cocatalysts and Their Use in Iron-Catalyzed Oligomerization of Ethylene.  Macromolecular Reaction Engineering,  17  (3): (2300013).  [PMID:] [10.1002/mren.202300013]
4. Wei Wang, Baian Pu, Chi Ma, Chengxiang Shi, Lun Pan, Xiangwen Zhang, Ji-Jun Zou.  (2023)  Pd/C catalytic cyclopropanation of polycyclic olefins for synthesis of high-energy-density strained fuels.  AICHE JOURNAL,  69  (7): (e18085).  [PMID:] [10.1002/aic.18085]
5. Ziwei Ju, Jiaxuan Fan, Zilin Meng, Runhua Lu, Haixiang Gao, Wenfeng Zhou.  (2022)  A high-throughput semi-automated dispersive liquid–liquid microextraction based on deep eutectic solvent for the determination of neonicotinoid pesticides in edible oils.  MICROCHEMICAL JOURNAL,      [PMID:] [10.1016/j.microc.2022.108193]
6. Dan Cao, Min Liu, Yung-Chih Su, Zehui Yang, Wentao Bi, David Da Yong Chen.  (2022)  Adsorption behavior of anthraquinones in deep eutectic solvent on polyester fiber and its application.  Sustainable Chemistry and Pharmacy,      [PMID:] [10.1016/j.scp.2022.100680]
7. Yinghui Bian, Weichuan Jiang, Yonglei Zhang, Lishun Zhao, Xiaohang Wang, Zichuan Lv, Shuai Zhou, Yuqing Han, Hui Chen, Meng-Chang Lin.  (2021)  Understanding the Oxidation and Reduction Reactions of Sulfur in Rechargeable Aluminum-Sulfur Batteries with Deep Eutectic Solvent and Ionic Liquid Electrolytes.  ChemSusChem,  15  (1): (e202101398).  [PMID:34532988] [10.1002/cssc.202101398]
8. Hongyan Wang, Song Ma, Zhimao Zhou, Minjie Li, Hui Wang.  (2020)  Alkylation of isobutane with butene catalyzed by deep eutectic ionic liquids.  FUEL,      [PMID:] [10.1016/j.fuel.2020.117419]
9. Zheng-Meng Jiang, Lan-Jin Wang, Zhao Gao, Bo Zhuang, Qiang Yin, E-Hu Liu.  (2018)  Green and efficient extraction of different types of bioactive alkaloids using deep eutectic solvents.  MICROCHEMICAL JOURNAL,      [PMID:] [10.1016/j.microc.2018.10.057]
10. Jiaqin Wang, Yanying Zhou, Man Wang, Wentao Bi, Hongli Li, David Da Yong Chen.  (2018)  High-Throughput Analysis for Artemisinins with Deep Eutectic Solvents Mechanochemical Extraction and Direct Analysis in Real Time Mass Spectrometry.  ANALYTICAL CHEMISTRY,      [PMID:29381342] [10.1021/acs.analchem.7b04060]
11. Bo Zhuang, Li-Li Dou, Ping Li, E-Hu Liu.  (2016)  Deep eutectic solvents as green media for extraction of flavonoid glycosides and aglycones from Platycladi Cacumen.  JOURNAL OF PHARMACEUTICAL AND BIOMEDICAL ANALYSIS,      [PMID:27915199] [10.1016/j.jpba.2016.11.049]
12. Li Duan, Li-Li Dou, Long Guo, Ping Li, E-Hu Liu.  (2016)  Comprehensive Evaluation of Deep Eutectic Solvents in Extraction of Bioactive Natural Products.  ACS Sustainable Chemistry & Engineering,      [PMID:] [10.1021/acssuschemeng.6b00091]
13. Xiaohua Zhao, Xiang Liu, Ming Lu.  (2014)  β-cyclodextrin-capped palladium nanoparticle-catalyzed ligand-free Suzuki and Heck couplings in low-melting β-cyclodextrin/NMU mixtures.  APPLIED ORGANOMETALLIC CHEMISTRY,  28  (8): (635-640).  [PMID:] [10.1002/aoc.3173]
14. Han-Qing Pang, Jia-Xiu Guo, Yang Yang, Chuan Jiang, Xuan-Hao Zhang, Wei Shi, Chun-Yang Bi, Bing-Chun Yan.  (2024)  Development of deep eutectic solvents for the efficient extraction of active compounds and removal of hepatotoxic compounds from Polygonum multiflorum Thunb..  JOURNAL OF MOLECULAR LIQUIDS,      [PMID:] [10.1016/j.molliq.2024.125591]
15. Guanfeng Deng, Pingjin Li, Heng Liang, Tao Chen, Lijun Zhou, Hongyu Yang, Xiaoyu Jiang, Chunbang Ding, Shiling Feng.  (2025)  Extraction of polysaccharides from Camellia oleifera leaves by dual enzymes combined with deep eutectic solvents screened by ANN and COSMO-RS.  INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,      [PMID:39961566] [10.1016/j.ijbiomac.2025.141131]
16. Si-wei Rao, Feng-xiang Zhang, Yuan-yuan Duan, Zi-hao Chen, Dong Liang, Wei Shi.  (2024)  Urea-based deep eutectic solvents enzyme system for high efficiency extraction of alkaloids and flavonoids in plants: Zanthoxylum nitidum (Roxb.) DC. as a case.  MICROCHEMICAL JOURNAL,      [PMID:] [10.1016/j.microc.2024.109964]
17. Zhenqian Wei, Weiyan Zhang, Menghao Du, Haiyan Zhong, Xuezhi Fang.  (2024)  Widely targeted metabolomic and KEGG analyses of natural deep eutectic solvent-based saponins extraction from Camellia oleifera Abel.: Effects on composition.  FOOD CHEMISTRY,      [PMID:38636384] [10.1016/j.foodchem.2024.139333]
18. Wentao Zheng, Jialing Chen, Yujiao Jia, Nengqi Sun, Xiankun Wu.  (2025)  Thermodynamic analysis of nitric oxide absorption in deep eutectic solvents comprising 1,1,3,3-tetramethylguanidine.  JOURNAL OF CHEMICAL THERMODYNAMICS,      [PMID:] [10.1016/j.jct.2025.107563]
19. Xinyue Zhang, Yuan Yao, Yingying Cao, Xin Tan, Xiaomin Fang, Yanqiang Zhang.  (2025)  Enhanced Cyclopropanation of Norbornene as a High-Energy Fuel by Pd Single-Site Catalysts.  INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH,      [PMID:] [10.1021/acs.iecr.5c01267]
20. Fuhui Luo, Fenfen Zeng, Zhongqiao Zhao, Xu Ren, Yong He, Xia Yang, Fengxiang Zhang, Hanqing Pang, Wei Shi.  (2025)  A Novel Green and Efficient Strategy for Natural Products by Extraction with Acidic Electrolytic Oxidation Water-Assisted Deep Eutectic Solvent.  ACS Sustainable Chemistry & Engineering,      [PMID:] [10.1021/acssuschemeng.5c03706]
21. Guanfeng Deng, Heng Liang, Qilu Xue, Tao Chen, Lijun Zhou, Ming Yuan, Chunbang Ding, Shiling Feng.  (2025)  Tailor-Made Deep Eutectic Solvents Designed via COSMO-RS for Enhanced Polyphenol Extraction from Lethariella cladonioides.  Journal of Future Foods,      [PMID:] [10.1016/j.jfutfo.2025.06.024]
22. Yao Yuan, Zhang Xinyue, Cao Yingying, Liu Long, Zhang Yanqiang, Zhang Suojiang.  (2025)  Strain engineering of single-site Cu on SWCNTs for highly efficient diene cyclopropanation.  Nature Communications,      [PMID:41402267] [10.1038/s41467-025-66241-6]
23. Xiaojun Bao, Yu Cao, Lei Gong, Renjiang Li, Dongshun Deng.  (2026)  Separation of Taurine and Na2SO4 Using in Situ Formation of Deep Eutectic Solvents: Experiments and Computation Simulation.  NEW JOURNAL OF CHEMISTRY,      [PMID:] [10.1039/D5NJ04739K]
24. Yonghui Guo, Ruyu Yan, Yaya Jia, Yiming Yang, Zihan You, Xiaoyan Zhang, Shan Liu.  (2026)  Dual-mode interfacial regulation by a bifunctional additive for stable zinc anodes.  JOURNAL OF COLLOID AND INTERFACE SCIENCE,      [PMID:] [10.1016/j.jcis.2026.141361]
25. Yangyang Zhang, Weifeng Jin, Tianxue Chen, Jin Han, Li Yu, Haitong Wan, Haofang Wan.  (2026)  Experiment-confirmed machine learning optimization of NADES extraction with ultrasound assistance and Mendelian randomization evidence on antioxidant effects of ferulic acid and ligustilide from Angelicae Sinensis Radix.  ULTRASONICS SONOCHEMISTRY,      [PMID:] [10.1016/j.ultsonch.2026.108000]
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Furan-2-ylmethyl-urea - ≥97% , CAS No.5962-13-0
PSI-6206 - 10mM in DMSO , CAS No.863329-66-2
Trimethylurea - ≥95% , CAS No.632-14-4
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1-Amino-3-methylurea - ≥98% , CAS No.17696-95-6

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