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蒸汽密度
2.1 (vs air)
质量水平
蒸汽压
10 mmHg ( 147 °C)
14.9 mmHg ( 20 °C)
等级
purum
方案
≥99% (GC)
表单
liquid
自燃温度
700 °F
expl. lim.
13.7 %
杂质
≤0.002% free acid (as C2H5COOH)
≤0.005% non-volatile matter
≤0.1% water (Karl Fischer)
折射率
n20/D 1.384 (lit.)
pH值(酸碱度)
8.5 (20 °C, 200 g/L)
沸点
97 °C (lit.)
mp
−127 °C (lit.)
密度
0.804 g/mL at 25 °C (lit.)
应用
microbiology
SMILES字符串
CCCO
InChI
1S/C3H8O/c1-2-3-4/h4H,2-3H2,1H3
InChI key
BDERNNFJNOPAEC-UHFFFAOYSA-N
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一般描述
1-Propanol is a linear alcohol. It exhibits Debye-type relaxation process which resembles the α-relaxation and Johari-Goldstein type β-relaxation features of the supercooled liquids (nonhydrogen-bonding type). It has been tested as a substitute of the fuel for various fuel cells. Its biosynthesis from glucose using Escherichia coli strain has been proposed.
应用
1-Propanol has been employed as solvent for the synthesis of mesoporous alumina.
警示用语:
Danger
危险声明
危险分类
Eye Dam. 1 - Flam. Liq. 2 - STOT SE 3
靶器官
Central nervous system
储存分类代码
3 - Flammable liquids
WGK
WGK 1
闪点(°F)
71.6 °F - closed cup
闪点(°C)
22 °C - closed cup
其他客户在看
C R Shen et al.
Metabolic engineering, 10(6), 312-320 (2008-09-09)
Production of higher alcohols via the keto-acid intermediates found in microorganism's native amino-acid pathways has recently shown promising results. In this work, an Escherichia coli strain that produces 1-butanol and 1-propanol from glucose was constructed. The strain first converts glucose
Dynamics of glass-forming liquids. III. Comparing the dielectric α-and β-relaxation of 1-propanol and o-terphenyl.
Hansen C, et al.
J. Chem. Phys. , 107, 1086-1093 (1997)
Mesoporous alumina (I): comparison of synthesis schemes using anionic, cationic, and non-ionic surfactants.
Ray JC, et al.
Microporous and Mesoporous Materials : The Official Journal of the International Zeolite Association, 100(1), 183-190 (2007)
Evaluation of Ethanol, 1-Propanol, and 2-Propanol in a Direct Oxidation Polymer-Electrolyte Fuel Cell A Real-Time Mass Spectrometry Study.
Wang J, et al.
Journal of the Electrochemical Society, 142(12), Wang J-Wang J (1995)
Dieuwke Sevenster et al.
Science (New York, N.Y.), 339(6121), 830-833 (2013-02-16)
Although reconsolidation opens up new avenues to erase excessive fear memory, subtle boundary conditions put constraints on retrieval-induced plasticity. Reconsolidation may only take place when memory reactivation involves an experience that engages new learning (prediction error). Thus far, it has
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