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Heptadecan-9-yl 4-methylbenzenesulfonate is an organic compound that belongs to the class of benzenesulfonates. It is a derivative of heptadecanol and 4-methylbenzenesulfonic acid, known for its ability to lower the surface tension of liquids.
Used in Cosmetics Industry:
Heptadecan-9-yl 4-methylbenzenesulfonate is used as a surfactant and emulsifier for its ability to mix and disperse immiscible substances, enhancing the stability and performance of cosmetic products.
Used in Detergent Industry:
Heptadecan-9-yl 4-methylbenzenesulfonate is used as a surfactant to lower the surface tension of water, improving the cleaning efficiency of detergents and making them more effective in removing dirt and stains.
Used in Industrial Cleaning Solutions:
Heptadecan-9-yl 4-methylbenzenesulfonate is used as a surfactant and emulsifier in industrial cleaning solutions to enhance their cleaning power and ensure the proper dispersion of cleaning agents.
Note: It is important to handle Heptadecan-9-yl 4-methylbenzenesulfonate with care, as it may cause skin and eye irritation, and prolonged exposure could lead to adverse health effects.

949898-99-1

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949898-99-1 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 949898-99-1 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 9,4,9,8,9 and 8 respectively; the second part has 2 digits, 9 and 9 respectively.
Calculate Digit Verification of CAS Registry Number 949898-99:
(8*9)+(7*4)+(6*9)+(5*8)+(4*9)+(3*8)+(2*9)+(1*9)=281
281 % 10 = 1
So 949898-99-1 is a valid CAS Registry Number.

949898-99-1SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 17, 2017

Revision Date: Aug 17, 2017

1.Identification

1.1 GHS Product identifier

Product name heptadecan-9-yl 4-methylbenzenesulfonate

1.2 Other means of identification

Product number -
Other names -

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:949898-99-1 SDS

949898-99-1Downstream Products

949898-99-1Relevant academic research and scientific papers

Bridging Small Molecules to Conjugated Polymers: Efficient Thermally Activated Delayed Fluorescence with a Methyl-Substituted Phenylene Linker

Rao, Jiancheng,Liu, Xinrui,Li, Xuefei,Yang, Liuqing,Zhao, Lei,Wang, Shumeng,Ding, Junqiao,Wang, Lixiang

, p. 1320 - 1326 (2019/12/24)

Based on a “TADF + Linker” strategy (TADF=thermally activated delayed fluorescence), demonstrated here is the successful construction of conjugated polymers that allow highly efficient delayed fluorescence. Small molecular TADF blocks are linked together

A General and Air-tolerant Strategy to Conjugated Polymers within Seconds under Palladium(I) Dimer Catalysis

Magnin, Guillaume,Clifton, Jamie,Schoenebeck, Franziska

, p. 10179 - 10183 (2019/06/25)

While current M0/MII based polymerization strategies largely focus on fine-tuning the catalyst, reagents and conditions for each and every monomer, this report discloses a single method that allows access to a variety of different conjugated polymers within seconds at room temperature. Key to this privileged reactivity is an air- and moisture stable dinuclear PdI catalyst. The method is operationally simple, robust and tolerant to air.

Carbazole-based π-conjugated polyazomethines: Effects of catenation and comonomer insertion on optoelectronic features

Garbay,Muccioli,Pavlopoulou,Hanifa,Hadziioannou,Brochon,Cloutet

, p. 274 - 284 (2017/05/31)

A series of carbazole-based polyazomethines have been synthesized under micro-wave irradiation and without transition-metal based catalyst. The impact of both the catenation brought by the carbazole subunits and the insertion of a co-monomer, i.e. 3,4 ethylene dioxythiophene (EDOT), on the optical and electrochemical properties have been studied. Among the different polyazomethines synthesized, the best in terms of optical and electrochemical properties has been found to be the one with the azomethine function linked in positions 2,7 of carbazole subunits. Upon the insertion of the EDOT comonomer, an increase of the molecular weight and a red-shift in the absorption spectra has been observed, corresponding to a diminution of the electronic gap.

organic semiconductor compound, manufacturing method thereof, and organic electronic device that contains it

-

, (2016/10/09)

The present invention relates to an organic semiconductor compound, a method for manufacturing the same, and an organic electronic device comprising the same and, more specifically, to an organic semiconductor compound including quinoxaline, a method for manufacturing the same, and an organic electronic device comprising the same. In addition, by having a low band gap by synthesizing and copolymerizing a thiophene derivative containing sulfur (S) with a quinoxaline-based compound, the organic electronic device comprising the same has a higher efficiency with an innovative combination with a fullerene derivative, which is a photoactive layer, with the organic semiconductor compound of the present invention. The organic semiconductor compound of the present invention has high thermal stability and high solubility and the organic electronic device comprising the same has excellent electric characteristics, thereby can be valuably used as a n-type material of the organic electronic device, especially an organic solar cell or an organic thin film transistor.

A versatile approach to organic photovoltaics evaluation using white light pulse and microwave conductivity

Saeki, Akinori,Yoshikawa, Saya,Tsuji, Masashi,Koizumi, Yoshiko,Ide, Marina,Vijayakumar, Chakkooth,Seki, Shu

, p. 19035 - 19042 (2013/01/15)

State-of-the-art low band gap conjugated polymers have been investigated for application in organic photovoltaic cells (OPVs) to achieve efficient conversion of the wide spectrum of sunlight into electricity. A remarkable improvement in power conversion efficiency (PCE) has been achieved through the use of innovative materials and device structures. However, a reliable technique for the rapid screening of the materials and processes is a prerequisite toward faster development in this area. Here we report the realization of such a versatile evaluation technique for bulk heterojunction OPVs by the combination of time-resolved microwave conductivity (TRMC) and submicrosecond white light pulse from a Xe-flash lamp. Xe-flash TRMC allows examination of the OPV active layer without requiring fabrication of the actual device. The transient photoconductivity maxima, involving information on generation efficiency, mobility, and lifetime of charge carriers in four well-known low band gap polymers blended with phenyl-C61-butyric acid methyl ester (PCBM), were confirmed to universally correlate with the PCE divided by the open circuit voltage (PCE/Voc), offering a facile way to predict photovoltaic performance without device fabrication.

Synthesis and characterization of a thiadiazole/benzoimidazole-based copolymer for solar cell applications

Chen, Guan-Yu,Lan, Shang-Che,Lin, Po-Yu,Chu, Chih-Wei,Wei, Kung-Hwa

, p. 4456 - 4464 (2011/11/30)

In this study, we synthesized a new polymer, PCTDBI, containing alternating carbazole and thiadiazole-benzoimidazole (TDBI) units. This polymer (number-average molecular weight = 25,600 g mol-1), which features a planar imidazole structure into the polymeric main chain, possesses reasonably good thermal properties (Tg = 105 °C; Td = 396 °C) and an optical band gap of 1.75 eV that matches the maximum photon flux of sunlight. Electrochemical measurements revealed an appropriate energy band offset between the polymer's lowest unoccupied molecular orbital and that of PCBM, thereby allowing efficient electron transfer between the two species. A solar cell device incorporating PCTDBI and PCBM at a blend ratio of 1:2 (w/w) exhibited a power conversion efficiency of 1.20%; the corresponding device incorporating PCTDBI and PC71BM (1:2, w/w) exhibited a PCE of 1.84%.

Synthesis and biological evaluation of galactofuranosyl alkyl thioglycosides as inhibitors of mycobacteria

Davis, Chris B.,Hartnell, Regan D.,Madge, Paul D.,Owen, David J.,Thomson, Robin J.,Chong, Andrew K.J.,Coppel, Ross L.,Von Itzstein, Mark

, p. 1773 - 1780 (2008/03/13)

As part of our research interest directed toward the development of antimycobacterial agents, we have investigated compounds based on galactofuranose (Galf), an essential cell wall component of mycobacteria. The objective of this study was to explore stru

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