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Methyl laurate - analytical standard, high purity , CAS No.111-82-0

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Item Number
M108597
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M108597-1ml
1ml
Available within 4-8 weeks(?)
Items will be manufactured post-order and can take 4-8 weeks. Thank you for your patience!
$103.90

Basic Description

Synonyms Methyl dodecylate | METHYL DODECANOATE [HSDB] | METHYL LAURATE [II] | A802417 | Metholene 2296 | dodecanoic acid-methyl ester | Stepan C40 | EC 203-911-3 | DTXCID206889 | HY-W004286 | NSC 5027 | Uniphat A40 IN 511 | FEMA number 2715 | Methyl laurate | NSC
Specifications & Purity analytical standard
Shipped In Normal
Grade analytical standard
Product Description

Methyl dodecanoate is a flavor ketone produced in a reaction biocatalyzed by microencapsulated fungal spores. Also used in production of biodiesel. Methyl dodecanoate has been used in selective synthesis of the secondary amide surfactant, N-methyl lauroylethanolamide.
Methyl laurate has been used in selective synthesis of the secondary amide surfactant, N-methyl lauroylethanolamide.

Taxonomic Classification

Taxonomy Tree

Kingdom Organic compounds
Superclass Lipids and lipid-like molecules
Class Fatty Acyls
Subclass Fatty acid esters
Intermediate Tree Nodes Not available
Direct Parent Fatty acid methyl esters
Alternative Parents Methyl esters  Monocarboxylic acids and derivatives  Organic oxides  Hydrocarbon derivatives  Carbonyl compounds  
Molecular Framework Aliphatic acyclic compounds
Substituents Fatty acid methyl ester - Methyl ester - Carboxylic acid ester - Monocarboxylic acid or derivatives - Carboxylic acid derivative - Organic oxygen compound - Organic oxide - Hydrocarbon derivative - Organooxygen compound - Carbonyl group - Aliphatic acyclic compound
Description This compound belongs to the class of organic compounds known as fatty acid methyl esters. These are compounds containing a fatty acid that is esterified with a methyl group. They have the general structure RC(=O)OR', where R=fatty aliphatic tail or organyl group and R'=methyl group.
External Descriptors Wax monoesters

Associated Targets(Human)

ESR1 Tclin Estrogen receptor alpha (17718 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
NR3C1 Tclin Glucocorticoid receptor (14987 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
AR Tclin Androgen Receptor (11781 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
VDR Tclin Vitamin D receptor (26531 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
PPARG Tclin Peroxisome proliferator-activated receptor gamma (15191 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
THRB Tclin Thyroid hormone receptor beta-1 (7926 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
RXRA Tclin Retinoid X receptor alpha (3637 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
NR1H4 Tclin Bile acid receptor FXR (6228 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
NFKB1 Tclin Nuclear factor NF-kappa-B p105 subunit (1459 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
TP53 Tchem Cellular tumor antigen p53 (48468 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID

Associated Targets(non-human)

Ppard Peroxisome proliferator-activated receptor delta (358 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID
Nfe2l2 Nuclear factor erythroid 2-related factor 2 (214 Activities)
Activity Type Relation Activity value Units Action Type Journal PubMed Id doi Assay Aladdin ID

Mechanisms of Action

Mechanism of Action Action Type target ID Target Name Target Type Target Organism Binding Site Name References

Names and Identifiers

IUPAC Name methyl dodecanoate
INCHI InChI=1S/C13H26O2/c1-3-4-5-6-7-8-9-10-11-12-13(14)15-2/h3-12H2,1-2H3
InChIKey UQDUPQYQJKYHQI-UHFFFAOYSA-N
Smiles CCCCCCCCCCCC(=O)OC
Isomeric SMILES CCCCCCCCCCCC(=O)OC
WGK Germany 1
Molecular Weight 214.34
Beilstein 1767780
Reaxy-Rn 1767780
Reaxys-RN_link_address https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=1767780&ln=

Certificates(CoA,COO,BSE/TSE and Analysis Chart)

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.

4 results found

Lot Number Certificate Type Date Item
B2328350 Certificate of Analysis Dec 16, 2024 M108597
C2307835 Certificate of Analysis Mar 13, 2023 M108597
C2215282 Certificate of Analysis Mar 22, 2022 M108597
D2010101 Certificate of Analysis Feb 18, 2022 M108597

Chemical and Physical Properties

Solubility Miscible with ethanol, ether, acetone, and benzene.
Refractive Index 1.431
Flash Point(°F) >235.4 °F
Flash Point(°C) 113 °C
Boil Point(°C) 262°C
Melt Point(°C) 4-5°C
Molecular Weight 214.340 g/mol
XLogP3 5.800
Hydrogen Bond Donor Count 0
Hydrogen Bond Acceptor Count 2
Rotatable Bond Count 11
Exact Mass 214.193 Da
Monoisotopic Mass 214.193 Da
Topological Polar Surface Area 26.300 Ų
Heavy Atom Count 15
Formal Charge 0
Complexity 143.000
Isotope Atom Count 0
Defined Atom Stereocenter Count 0
Undefined Atom Stereocenter Count 0
Defined Bond Stereocenter Count 0
Undefined Bond Stereocenter Count 0
The total count of all stereochemical bonds 0
Covalently-Bonded Unit Count 1

Citations of This Product

1. Zhenglong Zhao, Wenwang Wu, Lihua Jia, Xiangfeng Guo.  (2023)  Sodium phosphate solid base catalysts for production of novel biodiesel by transesterification reaction.  RSC Advances,  13  (38): (26700-26708). 
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3. Tinghu Wang, Wenjing Zhang, Yuzhi Li, Furang Li, Junhao Liu, Lei Fan, Jianye Fu, Xinmei Liu, Yuchao Lyu.  (2023)  Quantitative synergy between metal and acid centers over the Ni/Beta bifunctional catalyst for methyl laurate hydrodeoxygenation to bio-jet fuel.  FUEL PROCESSING TECHNOLOGY,  241  (107602). 
4. Qi Zeng, Mengmeng Sun, Xin Xie, Yuli Zhang, Haoyue Hou, Xingyuan Fang, Ting Guo, Hao Yuan, Tao Meng.  (2022)  Lipase-Entrapped Colloidosomes with Tunable Positioning at the Oil–Water Interface for Pickering Emulsion-Enhanced Biocatalysis.  ACS Applied Materials & Interfaces,  14  (49): (54781–54789). 
5. Lingcheng Meng, Jinling Zhang, Shuang Zhao, Desheng Qi, Pan Xu, Shuoqi Wu, Le Wang, Xigui Yue, Zhenhua Jiang.  (2022)  A Novel PEEK Foam with Ultra-High Temperature-Resistant by Temperature Induced Phase Separation.  MACROMOLECULAR MATERIALS AND ENGINEERING,  308  (5): (2200559). 
6. Li Dan, Pang Yan, Wang Jingying, Sun Danlin, Zhang Xuena, Yue Danwei, Hao Longxia.  (2022)  Excess Molar Volume, Viscosity and Refractive Index for Binary Mixtures of Methyl Laurate with n-Octane, Iso-Octane or Ethyl Cyclohexane.  JOURNAL OF SOLUTION CHEMISTRY,  51  (7): (752-767). 
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11. Xiong Zheng, An Huang, Yanqiong Bao, Sheng Wang, Guangzhao Qin, Yu Liu.  (2022)  Measurement of the thermal conductivity of the components of biodiesels: Methyl laurate and methyl myristate.  FLUID PHASE EQUILIBRIA,  556  (113409). 
12. Cheng Du, Chenglong Qiu, Zhongying Fang, Ping Li, Yijing Gao, Jianguo Wang, Wei Chen.  (2022)  Interface hydrophobic tunnel engineering: A general strategy to boost electrochemical conversion of N2 to NH3.  Nano Energy,  92  (106784). 
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14. Dechao Hu, Zhiqiang Wang, Wenshi Ma.  (2021)  Fabrication and characterization of a novel polyurethane microencapsulated phase change material for thermal energy storage.  PROGRESS IN ORGANIC COATINGS,  151  (106006). 
15. Zhoutian Ding, Tong Zhao, Qing Zhu, Shengyun Liao, Liangmin Ning, Yadong Bi, Hui Chen.  (2020)  Facile synthesis Cobalt catalysts for regulating the deoxygenation pathways in producing diesel-like hydrocarbon fuels.  BIOMASS & BIOENERGY,  143  (105879). 
16. Pingling Zhang, Shuang Liu, Zhengang Zhao, Lijun You, Mark D. Harrison, Zhanying Zhang.  (2021)  Enzymatic acylation of cyanidin-3-glucoside with fatty acid methyl esters improves stability and antioxidant activity.  FOOD CHEMISTRY,  343  (128482). 
17. Zihao Zhang, Meizan Jing, Hao Chen, Francis Okejiri, Jixing Liu, Yan Leng, Haolan Liu, Weiyu Song, Zhaoyin Hou, Xiuyang Lu, Jie Fu, Jian Liu.  (2020)  Transfer Hydrogenation of Fatty Acids on Cu/ZrO2: Demystifying the Role of Carrier Structure and Metal–Support Interface.  ACS Catalysis,  10  (16): (9098–9108). 
18. Zhiqiang Wang, Wenshi Ma, Dechao Hu, Li Wu.  (2020)  Synthesis and characterization of microencapsulated methyl laurate with polyurethane shell materials via interfacial polymerization in Pickering emulsions.  COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS,  600  (124958). 
19. Xiaoting Jing, Zhen Li, Bing Lu, Yuyang Han, Yingnan Chi, Changwen Hu.  (2020)  Assembly of polyoxometalate with graphene foam as a compressible monolithic catalyst for biodiesel production.  APPLIED CATALYSIS A-GENERAL,  598  (117613). 
20. Xin Gou, Francis Okejiri, Zihao Zhang, Miaomiao Liu, Jixing Liu, Hao Chen, Kequan Chen, Xiuyang Lu, Pingkai Ouyang, Jie Fu.  (2020)  Tannin-derived bimetallic CuCo/C catalysts for an efficient in-situ hydrogenation of lauric acid in methanol-water media.  FUEL PROCESSING TECHNOLOGY,  205  (106426). 
21. Tao Chen, Run-Ze Hu, Xiao-Hui Yao, Qiang Yang, Shi-Min Shuai, Jun Wang, Ming Xu, Dong-Yang Zhang, Yu-Jie Fu, Long Li, Wei-Guo Zhao.  (2020)  Effect of Pyrola extract on the stability of palm biodiesel upon exposure to copper.  RENEWABLE ENERGY,  149  (1282). 
22. Xue Xiong, Meiling Qi.  (2020)  Adenine-functionalized polypropylene glycol: A novel stationary phase for gas chromatography offering good inertness for acids and bases combined with a unique selectivity.  JOURNAL OF CHROMATOGRAPHY A,  1612  (460627). 
23. Wenqi Zhao, Yitong Dai, Haiyun Sun, Yongsheng Guo, Wenjun Fang.  (2019)  Densities and Viscosities for the Ternary Mixtures of exo-Tetrahydrodicyclopentadiene (1) + Isopropylcyclohexane (2) + Methyl Laurate (3) and Corresponding Binaries.  JOURNAL OF CHEMICAL AND ENGINEERING DATA,  64  (9): (4013–4023). 
24. Dan Li, Meng Guo, Xia Wang, Shutong Lin, Wei Jia, Guangyi Wang.  (2019)  Measurement and correlation of density and viscosity of binary mixtures of fatty acid (methyl esters + methylcyclohexane).  JOURNAL OF CHEMICAL THERMODYNAMICS,  137  (86). 
25. Nisakorn Saengprachum, Dongren Cai, Mantian Li, Ling Li, Xiaocheng Lin, Ting Qiu.  (2019)  Acidic chitosan membrane as an efficient catalyst for biodiesel production from oleic acid.  RENEWABLE ENERGY,  143  (1488). 
26. Xiaojiang Liang, Yanren Fei, Qinglong Xie, Yang Liu, Meizhen Lu, Fan Xia, Yong Nie, Jianbing Ji.  (2019)  Sulfuryl Fluoride Absorption from Fumigation Exhaust Gas by Biobased Solvents: Thermodynamic and Quantum Chemical Analysis.  INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH,  58  (12): (5018–5029). 
27. Xiaojie Wang, Shanshan Zhu, Xiaopo Wang.  (2019)  Liquid viscosities for methyl hexanoate, methyl heptanoate, methyl caprylate, and methyl nonanoate at high pressures.  JOURNAL OF CHEMICAL THERMODYNAMICS,  133  (285). 
28. Zhao Jiangbin, Agaba Aphra, Sui Xiaofeng, Mao Zhiping, Xu Hong, Zhong Yi, Zhang Linping, Wang Bijia.  (2018)  A heterogeneous binary solvent system for recyclable reactive dyeing of cotton fabrics.  CELLULOSE,  25  (12): (7381-7392). 
29. Jing Fan, Zixuan Zhu, Xiaopo Wang, Fenhong Song, Lihui Zhang.  (2018)  Experimental studies on the liquid thermal conductivity of three saturated fatty acid methyl esters components of biodiesel.  JOURNAL OF CHEMICAL THERMODYNAMICS,  125  (200). 
30. Li Qu, Hailong Yu, Fengli Yu, Bing Yuan, Congxia Xie, Shitao Yu.  (2018)  Catalytic reduction of α-pinene using Ru nanoparticles stabilized by modified carboxymethyl cellulose.  APPLIED SURFACE SCIENCE,  453  (271). 
31. Fanglin Li, Jianchun Jiang, Peng Liu, Qiaolong Zhai, Fei Wang, Chung-yun Hse, Junming Xu.  (2018)  Catalytic cracking of triglycerides with a base catalyst and modification of pyrolytic oils for production of aviation fuels.  Sustainable Energy & Fuels,  (6): (1206-1215). 
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33. Hui Ding, Wenjing Ke, Dan Zhao, Lulu Wang, Yujie Gao, Shejiang Liu.  (2018)  Isobaric vapor-liquid equilibrium for binary system of methyl caprate + methyl laurate at 2, 4 and 6 kPa.  JOURNAL OF CHEMICAL THERMODYNAMICS,  116  (241). 
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36. Xiangyang Liu, Chenyang Zhu, Chao Su, Maogang He, Wei Dong, Tansu Shang, Weiping Yang.  (2017)  Isobaric molar heat capacities of binary mixtures containing methyl caprate and methyl laurate at pressures up to 16.2 MPa.  THERMOCHIMICA ACTA,  651  (43). 
37. Xiaopo Wang, Kai Kang, Hanxiao Lang.  (2016)  High-pressure liquid densities and derived thermodynamic properties for methyl laurate and ethyl laurate.  JOURNAL OF CHEMICAL THERMODYNAMICS,  103  (310). 
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