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Merck
CN

E36652

2-乙基-4-甲基咪唑

95%

别名:

EMI-2,4

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关于此项目

经验公式(希尔记法):
C6H10N2
化学文摘社编号:
分子量:
110.16
UNSPSC Code:
12352005
NACRES:
NA.22
PubChem Substance ID:
EC Number:
213-234-5
Beilstein/REAXYS Number:
1711
MDL number:
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产品名称

2-乙基-4-甲基咪唑, 95%

InChI

1S/C6H10N2/c1-3-6-7-4-5(2)8-6/h4H,3H2,1-2H3,(H,7,8)

InChI key

ULKLGIFJWFIQFF-UHFFFAOYSA-N

SMILES string

CCc1nc(C)c[nH]1

assay

95%

refractive index

n20/D 1.5 (lit.)

bp

292-295 °C (lit.)

mp

47-54 °C (lit.)

density

0.975 g/mL at 25 °C (lit.)

Quality Level

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Application

2-乙基-4-甲基咪唑可用作:
  • 用于环氧树脂的交联剂,用于合成具有改善的耐热性和物理性质的网络聚合物。
  • 聚硅氧烷环硫化物树脂(PSER)固化剂。
  • 用于促进超支化芳香环氧聚合物和双酚 F 二缩水甘油醚共混物固化的催化剂。

pictograms

CorrosionExclamation mark

signalword

Danger

hcodes

Hazard Classifications

Acute Tox. 4 Oral - Eye Dam. 1

存储类别

11 - Combustible Solids

wgk

WGK 2

flash_point_f

278.6 °F - closed cup

flash_point_c

137 °C - closed cup

ppe

dust mask type N95 (US), Eyeshields, Gloves


历史批次信息供参考:

分析证书(COA)

Lot/Batch Number

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Yuezhan Feng et al.
Journal of hazardous materials, 346, 140-151 (2017-12-20)
Phosphorus and/or nitrogen doping is an effective method of improving the physical and chemical properties of reduced graphene oxide (rGO). In this work, phosphorus and nitrogen co-doped rGO (PN-rGO), synthesized using a scalable hydrothermal and microwave process, was used as
Hyperbranched aromatic epoxies in the design of adhesive materials.
Emrick T, et al.
Polymer Bull., 45(1), 1-7 (2000)
Van-Dung Mai et al.
Polymers, 11(2) (2019-04-10)
A bio-derived dihydroxylimine hardener, Van2HMDA, for the curing of epoxy resin was prepared from vanillin (Van) and hexamethylene-1,6-diamine (HMDA) by Schiff base formation. The epoxy resin of diglycidyl ether of bisphenol A was cured with Van2HMDA in the presence of
Co-cross-linking of bio-based multi-functional epoxide and bisphenol A diglycidyl ether with 2-ethyl-4-methylimidazole.
Morinaga H and Sakamoto M
Tetrahedron Letters, 59(43), 3889-3891 (2018)
Yan-Fang Li et al.
Journal of tissue engineering and regenerative medicine, 11(8), 2411-2420 (2016-06-01)
Smart materials for on-demand delivery of therapeutically active agents are challenging in pharmaceutical and biomaterials science. In the present study, we report hybrid nanofibres capable of being reversibly controlled to pulsatile deliver both therapeutic drugs and cells on-demand of near-infrared

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