山梨醇酐油酸酯 |
时间:2023-07-18 来源:化工号 作者:C24H44O6 |
中文名 | 山梨醇酐油酸酯
| 英文名 | Span-80
| 别名 | 斯盘 司班80 斯盘80 司盘80 司本80 斯盘 80 油酸山梨坦 乳化剂S80 乳化剂S-80 山梨醇酐油酸酯 脱水山梨醇油酸酯 油酸山梨醇酯(司班 山梨糖醇酐单油酸酯 失水山梨醇油酸酯(司班80) 司班80,清凉茶醇油酸酯,油酸清凉茶醇
| 英文别名 | Span-80 Span 80 ionets80 sorgen40 glycomulo armotanmo sorbons80 emsorb2500 EmulsifierS80 Emulsifier S80 Sorbitan oleate Sorbitan monooleate Arlacel 80Sorbitan Monooleate Sorbitan Monooleate (Span 80) Sorbitan (Z)-mono-9-octadecenoate polyoxyethylene(20) sorbitan monooleate 1,4-anhydro-6-O-[(9Z)-octadec-9-enoyl]-D-glucitol [2-[(2R,3S,4R)-3,4-dihydroxytetrahydrofuran-2-yl]-2-hydroxy-ethyl] (Z)-octadec-9-enoate [(2R)-2-[(2R,3R,4S)-3,4-dihydroxytetrahydrofuran-2-yl]-2-hydroxy-ethyl] octadec-9-enoate
| CAS | 1338-43-8
| EINECS | 215-665-4 | 化学式 | C24H44O6
| 分子量 | 428.6 | InChI | InChI=1/C24H44O6/c1-2-3-4-5-6-7-8-9-10-11-12-13-14-15-16-17-22(27)29-19-21(26)24-23(28)20(25)18-30-24/h9-10,20-21,23-26,28H,2-8,11-19H2,1H3/t20-,21+,23+,24+/m0/s1 | InChIKey | MPZLHRXPRGLWEB-AAZCQSIUSA-N | 密度 | 0.986 g/mL at 25 °C(lit.) | 熔点 | 10~12℃ | 沸点 | 463.43°C (rough estimate) | 闪点 | >230°F | 水溶性 | Soluble in ethanol at 50mg/mlMiscible with water, ethanol, isopropanol and ether. Insoluble in acetone. | 溶解度 | Practically insoluble but dispersible in water, soluble in fatty oils producing a hazy solution, miscible with alcohol. | 折射率 | n20/D 1.48(lit.) | 存储条件 | Store below +30°C. | 稳定性 | Stable. Combustible. Incompatible with strong oxidizing agents. | 敏感性 | Easily absorbing moisture | 外观 | Viscous Liquid | 比重 | 0.986 | 颜色 | Yellow | Merck | 13,8796 | BRN | 8172514 | 物化性质 | 本品为琥珀色至棕色油状液体,相对密度1.029,熔点10~12℃,闪点210℃,有脂肪气味,不溶于水,溶于热油及有机溶剂。不得溶于异丙醇、四氯乙烯、二甲苯、棉子油、矿物油等,属高级亲油型乳化剂。 | 产品用途 | 用于乳化炸药、石油、医药、化妆品、纺织、油漆、皮革等行业 | MDL号 | MFCD00080948 | 安全术语 | 24/25 - 避免与皮肤和眼睛接触。
| WGK Germany | 1 | RTECS | WG2932400 | TSCA | Yes | 海关编号 | 34021300 | 上游原料 | 氮(高纯) 环氧乙烷 油酸 棕榈油 | 参考资料 展开查看 | 1. 李彤, 赵娜, 史雨,等. 维生素C纳米乳处方优化及其经皮渗透性[J]. 沈阳药科大学学报, 2018(7). 2. [IF=5.396] Boru Chen et al."Enhancement of the solubility and antioxidant capacity of α-linolenic acid using an oil in water microemulsion."Food Funct. 2017 Aug;8(8):2792-2802 3. [IF=7.312] Man-Ke Zhang et al."Magnetic alginate/PVA hydrogel microspheres with selective adsorption performance for aromatic compounds."Sep Purif Technol. 2021 Dec;278:119547 4. [IF=6.165] Xiaoxue Liu et al."The palm oil-based microemulsion: Fabrication, characterization and rheological properties."J Mol Liq. 2020 Mar;302:112527 5. [IF=4.539] Xiao-Jun Feng et al."Polydopamine-anchored polyether on Fe3O4 as magnetic recyclable nanoparticle-demulsifiers."Colloid Surface A. 2021 May;617:126142 6. [IF=4.329] Ming Chen et al."Polyacrylamide Microspheres-Derived Fe3C@N-doped Carbon Nanospheres as Efficient Catalyst for Oxygen Reduction Reaction."Polymers-Basel. 2019 May;11(5):767 7. [IF=6.609] Fulong Ning et al."The kinetic effects of hydrate anti-agglomerants/surfactants."Fuel. 2022 Jun;318:123566 8. [IF=7.328] Xueqing Yang et al."Development of PVA-based microsphere as a potential embolization agent."Mat Sci Eng C-Mater. 2022 Jan;:112677 9. [IF=5.875] Yutong Wang et al."Extra virgin olive oil-based phospholipid complex/self-microemulsion enhances oral absorption of salvianolic acid B through inhibition of catechol-O-methyltransferase-mediated metabolism."Int J Pharmaceut. 2022 Jan;611:121330 10. [IF=4.508] Cheng-Hai Yan et al."Formulation and stability of silkworm pupae oil microemulsion."Sustainable Chemistry and Pharmacy. 2022 Jun;27:100702 11. [IF=5.89] Chunying Feng et al."Simple One-Step and Rapid Patterning of PDMS Microfluidic Device Wettability for PDMS Shell Production."Frontiers in Bioengineering and Biotechnology. 2022; 10: 891213 |
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