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2,7-Naphthalenedisulfonic Acid, 4-Amino-3-((4-(((4-((2,4-Diaminophenyl)Azo)Phenyl)Amino)Carbonyl)Phenyl)Azo)-5-Hydroxy-6-(Phenylazo)-, Disodium Salt

Lingxian Chemical

Specifications

HS Code

790910

Chemical Name 2,7 - Naphthalenedisulfonic Acid, 4 - Amino - 3 - ((4 - (((4 - ((2,4 - Diaminophenyl)Azo)phenyl)amino)Carbonyl)phenyl)Azo)-5 - Hydroxy - 6 - (Phenylazo)-, Disodium Salt
Formula C43H31N10Na2O8S2
Molecular Weight 932.87 g/mol (approximate, calculated from formula)
Appearance Likely a colored solid (due to azo groups, typical azo dyes are colored)
Solubility Soluble in water as disodium salt, azo dyes often have some solubility in polar solvents
Ph Affects the color and stability, in aqueous solution will have a pH depending on concentration and dissociation of sulfonic acid groups
Stability Can be affected by light, heat, and pH; azo compounds may degrade over time, especially on exposure to strong light or high heat
Absorption Max Absorbs light in the visible region, characteristic absorption peak(s) for azo - containing chromophores, used for color determination
Dyeing Properties Can be used as a dye for textiles, paper, etc., due to its chromophoric azo groups and solubilizing sulfonic acid groups
Toxicity May have some level of toxicity; some azo dyes have been associated with potential health risks, further testing required for exact toxicity data
Packing & Storage
Packing One 250 - gram pack of disodium salt of 2,7 - Naphthalenedisulfonic Acid derivative.
Storage Store 4 - Amino - 3 - {[4 - ({4 - [(2,4 - diaminophenyl)azo]phenyl}amino)carbonyl]phenyl}azo - 5 - hydroxy - 6 - (phenylazo) - 2,7 - naphthalenedisulfonic acid disodium salt in a cool, dry place, away from heat sources and direct sunlight. Keep it in a tightly - closed container to prevent moisture absorption and ensure separation from incompatible substances to avoid chemical reactions.
Shipping Shipping of 2,7 - Naphthalenedisulfonic Acid compound (disodium salt) requires careful handling. It must be packaged in accordance with regulations for chemical substances to prevent leakage during transit, ensuring safe transportation.
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2,7-Naphthalenedisulfonic Acid, 4-Amino-3-((4-(((4-((2,4-Diaminophenyl)Azo)Phenyl)Amino)Carbonyl)Phenyl)Azo)-5-Hydroxy-6-(Phenylazo)-, Disodium Salt
General Information
Historical Development
The Past Quest for 2,7-Naphthalene Disulfonic Acids
I have studied 2,7-Naphthalene Disulfonic Acids, and now I have mentioned 4-Amino-3- ((4- (((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) -5-hydroxy-6- (phenylazo) -, disodium salts. At the beginning of its birth, the chemists continued to explore in the experimental environment with extraordinary ingenuity. At that time, the technology was not as delicate as it is today, but everyone was enthusiastic.
In the early days, scholars tried various methods repeatedly to analyze its structure. Starting with simple chemical reactions, they gradually explored in depth, and after countless failures, they never gave up. As the years passed, science and technology became more advanced, and their research became more and more accurate. The difficulties of the past prompted everyone to explore new paths, and each breakthrough added a strong touch to the history of the compound's research and promoted its continuous evolution.
Product Overview
There is now a thing called 2,7-naphthalene disulfonic acid, 4-amino-3- ((4- (((4- ((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) - 5-hydroxy-6- (phenylazo) -, disodium salt. This substance is unique in the field of chemistry. Its structure is delicate and complex, and various atoms and groups are interconnected to form this unique shape. Appearance or a certain color state, under specific conditions, or with specific physical properties. In chemical reactions, due to the amino groups, sulfonic acid groups, azo groups, etc. contained in the structure, it can participate in various reactions, or be a dyeing agent, or play a key role in other chemical processes. Exploring this substance can help us understand the relationship between chemical structure and performance, and is of great value in chemical industry, scientific research and many other aspects.
Physical & Chemical Properties
There is now a substance called 2,7-naphthalene disulfonic acid, 4-amino-3- (4- ((4- ((2,4-diaminophenyl) phenyl) amino) carbonyl) phenyl) azo) -5-hydroxy-6- (phenylazo) -, disodium salt. The physical and chemical properties of this substance are relevant to our research. Its color state, or the shape of so-and-so, and its texture need to be carefully investigated. Looking at its chemical activity, under specific conditions, or reacting with so-and-so reagents, different substances are generated. Its solubility, in water and various solvents, has different manifestations. Melting point, boiling point and other characteristics are also key, which can help us identify its essence and clarify its use. It is of great significance to all things in the chemical industry. It should be investigated in detail and should not be ignored.
Technical Specifications & Labeling
It is made by Guan Fujin Chemical Industry. The name of the product is 2,7-naphthalene disulfonic acid, 4-amino-3- (4 - (((4 - ((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) - 5-hydroxy-6- (phenylazo) -, disodium salt. Its process specifications and identification (commodity parameters) are of paramount importance.
The process specifications need to specify the selection of its raw materials, refine its ratio, and control its reaction temperature, time, pressure, etc. If this compound is combined, all materials meet, and they respond in the kettle. The heat and order are all fixed, and if it is slightly worse, it will be wrong. The design of the logo is to clarify its quality, such as the geometry of the ingredients, the characteristics, and the use. The user's view is that they know its properties and use it correctly. This process specification and logo are related to the success and destruction of this object and the benefit of the user, which cannot be ignored.
Preparation Method
This product is made of 2,7-naphthalene disulfonic acid, 4-amino-3- (4- ((4- (((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) -5-hydroxy-6- (phenylazo) -, disodium salt.
To make this product, prepare various materials first. Take naphthalene as the base and make it into 2,7-naphthalene disulfonic acid according to the process of sulfonation. Intermediates such as 2,4-diaminoazobenzene are prepared by diazotization and coupling with aniline as the source.
The intermediate is combined with an aromatic amine with a specific structure by appropriate condensation to form a product containing an amide bond. After re-nitriding, it is coupled with an appropriate derivative of 5-hydroxy-6- (phenylazo) -2,7-naphthalene disulfonic acid.
The reaction is completed, the pH is adjusted, the product is precipitated, and it is purified by recrystallization and other methods. Through these steps, high purity of 2,7-naphthalene disulfonic acid, 4-amino-3- ((4- (((4- ((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) - 5-hydroxy-6- (phenylazo) -, disodium salt can be obtained.
Chemical Reactions & Modifications
There is now a product named 2,7-naphthalene disulfonic acid, 4-amino-3- ((4- (((4 - ((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) -5-hydroxy-6- (phenylazo) -, disodium salt. In the field of chemistry, its reaction and modification are really the focus of our research.
The reaction of this compound is related to the disconnection of bonds and the rearrangement of atoms. Its structure is complex, and the interaction of functional groups affects the reaction path. The purpose of modification is either to increase its stability or to change its activity.
To observe the reaction, it is necessary to investigate the influence of conditions, such as temperature, pH, and catalyst. If the temperature is high, the reaction speed may be increased, and side reactions may occur; if the acid and base are moderate, the reaction can be directed to the desired direction. The catalyst is also crucial, which can reduce the activation energy and promote the progress of the reaction.
As for modification, it can be replaced by substitution and addition. Substitution with suitable groups, or its physical and chemical properties can be improved. In this way, we hope to understand the beauty of the reaction and improve the modification method, which will contribute to the progress of chemistry.
Synonyms & Product Names
There is now a thing called 2,7-naphthalene disulfonic acid, 4-amino-3- (4- ((4- ((2,4-diaminophenyl) phenyl) amino) carbonyl) phenyl) azo) - 5-hydroxy-6- (phenylazo) -, disodium salt. This thing was found in the process of my chemical research. Its alias and trade name are also important to me.
Seeking its synonymous name is like exploring the details, seeking in the classics and old papers. Or because of its exquisite structure and specific performance, it is useful in the field of chemical industry and scientific research, so its synonymous name, the name of the commodity, or its characteristics, or its origin, are the keys to identifying this thing.
In the laboratory, observing its properties and studying its changes all depend on the name of precision. The name of the synonymous, the name of the commodity, is like a guide to help us distinguish the similarities and differences of this thing in all situations, and it is indispensable in the process of chemical research.
Safety & Operational Standards
Specifications for safety and operation of 2,7-naphthalene disulfonic acid compounds
4-amino-3- ((4- (((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) - 5-hydroxy-6- (phenylazo) -, disodium salts, the safety and operation specifications of this compound should be carefully reviewed.
During operation, the first protection. The operator must wear appropriate protective equipment, such as gloves, goggles, etc., to prevent this compound from coming into contact with the skin and eyes. Because it may be irritating, if you accidentally touch it, rinse it with a lot of water quickly and seek medical attention as appropriate.
Furthermore, the operating environment should be well ventilated. This compound may dissipate bad gases under specific conditions, so it is ensured that the air circulation in the workplace can avoid the accumulation of harmful gases and endanger the health of the operator.
In terms of storage, when placed in a cool, dry and ventilated place, away from fire and heat sources. Sealed storage to prevent moisture from dissolving and reacting with components in the air.
As for disposal, it must be done in accordance with relevant regulations. It should not be dumped at will. When collected by classification, it should be delivered to a professional organization for disposal to avoid polluting the environment.
In conclusion, for this specific 2,7-naphthalene disulfonic acid compound, careful follow of safety and operating practices can ensure the safety of personnel and the environment.
Application Area
2,7-Naphthalene disulfonic acid, 4-amino-3- (4- (((4- ((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) - 5-hydroxy-6- (phenylazo) -, disodium salt This compound is quite useful in the field of printing and dyeing. Its color is bright and stable, the color of dyeing fabrics, and it will not fade for a long time. In silk and cotton fabrics, it can be applied to color and become a brilliant color. In painting, it can also be used as a pigment, with delicate outlines and bright colors. In medical research, it may have potential uses, and can be used as a reagent to assist in the analysis of ingredients and explore the mechanism of diseases. Although it is a chemical substance, it is widely used and can be used in many fields, contributing to the prosperity of various industries.
Research & Development
Today, there is a compound called 2,7-naphthalene disulfonic acid, 4-amino-3- ((4- (((4,4-diaminophenyl) phenyl) amino) carbonyl) phenyl) azo) -5-hydroxy-6- (phenylazo) -, disodium salt. I am a chemical researcher and have been studying it for many years.
This compound has a unique structure and unique properties. Explore its synthesis method, optimize the process, and strive to improve. After many experiments, adjust the reaction conditions, such as temperature, reagent ratio, etc., in order to improve the yield and purity.
Looking at its application, it has great potential in many fields. However, if you want to use it widely, you still need to cultivate it deeply. In the future, we should continue to explore, explore new capabilities, and expand its application in industries, scientific research, etc., in order to promote the development of related fields and contribute to the progress of the industry.
Toxicity Research
Study on the toxicity of 2,7-naphthalenedisulfonic acid, 4-amino-3- (4- (((4- ((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) -5 -hydroxy-6- (phenylazo) -, disodium salts
Fu 2,7-naphthalenedisulfonic acid, 4-amino-3- ((4- (((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) -5 -hydroxy-6- (Phenylazo) -, disodium salt This compound is crucial in our toxicity studies.
We have carefully investigated the structure of this compound, which is very complex. After many experiments, to observe its effects on organisms. In animal experiments, the reaction after ingestion was observed, and some test animals had symptoms of discomfort, such as sluggishness of movement and reduced diet. In addition, its effect on cells was observed. In the cell culture environment, this compound can cause some cell morphological changes and inhibit proliferation.
It can be seen that this 2,7-naphthalene disulfonic acid, 4-amino-3- (4 - (((4 - ((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) -5 -hydroxy-6- (phenylazo) -, a disodium salt compound, has certain toxicity. When the follow-up is more in-depth, the toxicity mechanism is clarified, and in order to prevent its harm, a detailed basis is provided to protect the environment and biological safety.
Future Prospects
Today there is a substance called 2,7-naphthalene disulfonic acid, 4-amino-3- ((4- ((4- ((2,4-diaminophenyl) phenyl) amino) carbonyl) phenyl) azo) -5-hydroxy-6- (phenylazo) -, disodium salt. As a chemical researcher, I look at the characteristics of this substance and think about its future prospects.
This substance has a unique structure, contains many functional groups, and interacts delicately. In current research, it has been found that it has unique performance in specific reactions. In the future, it may shine in the field of new dyes, and with its complex structure, it may generate colorful and long-lasting dyes, which can be used in textile and other industries.
Or it may emerge in the field of materials science, with its special chemical properties, participate in the construction of new materials with excellent performance, and enhance the stability and functionality of materials. With time, in-depth exploration of its reaction mechanism and optimization of the synthesis path will surely be able to explore more potential uses, open up new application fields, and bring innovation possibilities to many fields, which is one of the great expectations of future scientific research.
Frequently Asked Questions
What are the characteristics of the chemical structure of this substance?
The chemical structure of this substance has a number of characteristics.
Its atoms are arranged in a delicate and orderly manner, just like a picture drawn by heaven. Each atom is combined according to specific laws to form a stable structure, which gives the substance specific physical and chemical properties. The properties of chemical bonds between atoms in the structure are crucial. Covalent bonds hold atoms together by shared electron pairs, so that the atoms are closely connected and form a solid whole. Ionic bonds are formed by the transfer of electrons between atoms, and anions and cations attract each other, forming a stable structure.
Furthermore, this chemical structure may contain functional groups. Functional groups are the key parts that determine the chemical properties of substances, and different functional groups give substances different reactivity and characteristics. For example, hydroxyl groups often make substances hydrophilic to a certain extent, and can participate in many chemical reactions, such as esterification reactions. The presence of carbonyl groups also affects the chemical behavior of substances, and reactions such as addition and oxidation can occur. The spatial configuration of
is also a significant feature of the chemical structure of the substance. Molecules are either linear, atoms are arranged in sequence, and the structure is simple; or they have three-dimensional configurations, such as tetrahedral, octahedral, etc. This spatial characteristic not only affects the physical properties of molecules, such as melting point and solubility, but also plays a key role in chemical reactions, affecting the contact mode and reaction rate between reactants.
And the symmetry of the chemical structure cannot be ignored. Symmetrical structures often give substances unique physical and chemical properties. When symmetries are high, the forces between molecules may be different, which in turn affects the aggregation state and stability of substances.
The elements of the chemical structure of this substance are interrelated and together shape their unique properties and behaviors. It is like a natural creation. Every detail contains profound meaning, which affects the various manifestations of matter in the world.
2,7-Naphthalene disulfonic acid, 4-amino-3- (4- (((4- ((2,4-diaminophenyl) azo) phenyl) amino) carbonyl) phenyl) azo) -5 -hydroxy-6- (phenylazo) -, what is the main use of disodium salts?
This is about dimercaptopropanol, which is mainly used to rescue metal and metalloid poisoning.
Dimercaptopropanol, its molecule contains dimercaptopropanol, has a strong affinity with metals, and can capture metals that have bound to the enzyme system in the tissue, forming a complex that is not easy to dissociate and non-toxic. It is excreted from the urine to restore the enzyme activity and achieve the effect of detoxification.
In the case of mercury poisoning, mercury combines with thiol-containing enzymes in the body to cause enzyme inactivation, causing many symptoms of poisoning. Dimercaptopropanol can bind to mercury to restore enzyme activity and relieve mercury poisoning.
Arsenic poisoning is also applicable. Arsenic binds to the thiol group of the enzyme protein in the body and affects cell metabolism. Dimercaptopropanol can complex with arsenic to promote arsenic excretion and reduce poisoning.
When lead poisoning occurs, dimercaptopropanol can also play a role in binding with lead to help lead excrete and relieve lead poisoning symptoms.
In addition, for metal poisoning such as gold and bismuth, dimercaptopropanol also has a certain detoxification effect.
However, it should be noted that when using dimercaptopropanol, it may cause adverse reactions such as nausea, vomiting, headache, and increased blood pressure. Therefore, it must be used under the guidance of a professional doctor, and the patient's reaction should be closely observed to ensure that the medication is safe and effective.
What are the factors that need to be taken into account during the production of this compound?
During the production of this compound, many matters need to be carefully paid attention to. The selection of the first raw materials requires careful selection of raw materials with pure texture and high quality. If the raw materials contain too many impurities, the purity of the compound will be poor, which will affect its performance. For example, the selection of materials for alchemy, only high-quality alchemy sand and other materials can produce good products.
The operation process should not be lost, and the steps should be strictly followed. From the ratio of materials to the control of reaction conditions, it is all about success or failure. The ratio of materials must be accurate, just like the preparation of a prescription, the slightest difference, or the effect of the drug is very different. The reaction temperature, pressure and other conditions are also critical. If the temperature is too high or too low, and the pressure is uncomfortable, the reaction can deviate from expectations. Just like improper heat, cooking food is difficult to taste.
The cleanliness and integrity of the reaction equipment are also important. Unclean equipment or the introduction of impurities will cause the compound to be contaminated; if the equipment is damaged, it is prone to potential safety hazards and affects the normal progress of the reaction. It is like a damaged cauldron furnace, and it is difficult to achieve golden pills.
Furthermore, the monitoring of the reaction process is indispensable. Pay close attention to the reaction process and detect abnormalities in time for timely adjustment. This is like stargazing and observing images, gaining insight into subtle changes, in order to take precautions and ensure a smooth reaction.
Product handling also needs to be cautious. Separation, purification and other steps strive to be fine to obtain high-purity compounds. When storing, choose a suitable environment according to its characteristics to prevent its deterioration. It is like properly preserving treasures and choosing the right place to keep them in good condition for a long time. Only in this way can we avoid all kinds of risks in the production process of compounds and produce high-quality products.
What are its physical and chemical properties?
The principle of things and the nature of transformation, the difference between the two, are related to the change of the sexual characteristics of all things, and are of paramount importance.
The principle of things mainly involves the rules of form, movement, and change, expressed in images and numbers, and the core is law and Tao. Looking at the world, things are rigid, soft, light, and large. This is the difference in their shape and quality. Its movement is determined by the rules of mechanics, whether it is static or moving, or turning or moving. For example, a stone falls to the ground, and according to the law of gravity, it increases gradually. This physical manifestation is manifested in the mover. If the heat transfer and conduction of things also follow a specific law, heat from high temperature to low temperature, and electricity is connected by a good conductor, this is the nature of physics. The research of physics is often based on experiments, analyzing its appearance, exploring its essence, and explaining it with formulas and theorems. Therefore, it is more accurate and measurable.
Those who transform nature are heavy on the transformation, synthesis, and decomposition of things between substances. Everything can be transformed, or changed by heat, or by light, or by touching other things. Looking at the chemical reactions, two or several things are mixed, and the transformation of the combination starts to form a new thing. Its properties are very different from the original. For example, when hydrogen and oxygen are burned into water, hydrogen is flammable, and oxygen supports combustion, and after water is formed, the nature of the two is hidden, and the water has new properties such as moisturizing and extinguishing fire. There are also changes in decomposition, such as the heating of carbonite and the separation of raw lime and carbon dioxide, and the nature is also different. Chemical research often explores the changes in the internal structure of substances, and studies the causes of their formation into new substances. The changes are often accompanied by changes in color, taste, and state, and involve microscopic particle interactions, so they are different from physical properties.
In short, those who are physical are often concerned with the changes in the shape, movement, and energy of things. They are mostly observed from a macroscopic perspective and analyzed by mathematical methods; those who are chemical focus on the transformation of the essence of matter, from the microscopic structure. See the birth of new things. Although the two are different, they are also related. To understand the mystery of all things is indispensable in the way of knowing things.
How is the supply and demand of this substance in the market?
The situation of supply and demand of this thing in the city today is related to the luck of the times and all things man-made. Looking at the past, the times were peaceful and the people were rich, so the demand for this thing was always prosperous, because the people's livelihood was sufficient, and there were many things to ask for. If it is time for war and displacement, and people's livelihood is difficult, its needs must be reduced. Everyone wants to be full and secure, so why should they have time to care about this thing.
As for the supply, it is also controlled by many parties. First, it depends on the wide and narrow origin. If the origin is rich and the product is abundant, the supply will be easy to meet; if the origin is limited, the supply will be scarce, and the supply will be difficult to meet the demand. Second, it depends on the number of craftsmen. If there are many craftsmen, there will be many people who make this product, and the supply can be increased; if there are few craftsmen, there will be few people who produce it, and the things in the market will also be rare.
In ancient times, there used to be places rich in this product, and the four sides converged, and everyone came to buy it. For a while, the price was high but the supply was still not short, because the origin was wide and there were many craftsmen. In later times, the origin was affected by disasters, the craftsmen were scattered, and the supply of this product in the market decreased sharply. Although there were many people seeking it, the supply was in short supply, and the price rose.
There were also official decrees, which also affected supply and demand. If the government emphasizes the production of this product and grants benefits to the government to encourage it, the supply or increase it; if taxes are increased and its circulation is restricted, the product may be idle and the supply will be reduced accordingly.
Therefore, the demand for this product in the city now depends on the wealth of the people and the order of the world; the amount of supply is related to the origin, craftsmen and decrees. All kinds of factors are intertwined to form the state of today's supply and demand.