1155-60-8 Usage
Uses
Used in Rubber and Plastic Industry:
1,2-Benzenediol, 4-dodecylis used as an antioxidant in the rubber and plastic industry to prevent the degradation of these materials. Its antioxidant properties help maintain the quality and longevity of rubber and plastic products by inhibiting the formation of free radicals and other oxidative processes.
Used in Lubricant and Grease Production:
1,2-Benzenediol, 4-dodecylis used as an antioxidant in the production of lubricants and greases. It helps to extend the life of these products by preventing oxidation, which can lead to the formation of sludge and other harmful byproducts. This, in turn, ensures the smooth operation of machinery and equipment that rely on these lubricants and greases.
Used in Other Industrial Materials:
1,2-Benzenediol, 4-dodecylis also used in the formulation of various other industrial materials. Its antioxidant properties help to protect these materials from degradation, ensuring their stability and performance over time. This makes it a valuable component in a wide range of applications, from coatings and adhesives to personal care products and more.
Check Digit Verification of cas no
The CAS Registry Mumber 1155-60-8 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 1,1,5 and 5 respectively; the second part has 2 digits, 6 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 1155-60:
(6*1)+(5*1)+(4*5)+(3*5)+(2*6)+(1*0)=58
58 % 10 = 8
So 1155-60-8 is a valid CAS Registry Number.
1155-60-8Relevant academic research and scientific papers
A template-free approach to nanotube-decorated polymer surfaces using 3,4-phenylenedioxythiophene (PhEDOT) monomers
Szczepanski, Caroline R.,M'Jid, Inès,Darmanin, Thierry,Godeau, Guilhem,Guittard, Frédéric
, p. 17308 - 17323 (2016/11/18)
In this work, novel 3,4-phenylenedioxythiophene (PhEDOT) monomers with alkyl, branched, and aromatic substituents were synthesized and tested for their efficacy at forming surfaces with unique wetting properties and surface morphology without the aid of surfactants. Monomers with a naphthalene substituent clearly showed the highest capacity to stabilize gas bubbles (O2 or H2) formed in solution during electrodeposition from trace water, resulting in the formation of nanotubes. Variation in the resulting density, diameter, and height of nanotubes was demonstrated by varying the electropolymerization protocol, conditions, or electrolyte used. The wetting induced by the nanotube formation results in the surfaces formed having both high contact angles with water (W) and strong adhesion, despite all polymers being intrinsically hydrophilic. This one-step and easily tunable approach to nanotube formation has potential to advance applications in membrane design, water transport and harvesting, as well as sensor design.