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What is Sodium 4- [ (2E) -2- (2-Oxonaphthalen-1 (2H) -Ylidene) Hydrazino] Benzenesulfonate?
This is a rather complex chemical substance. Its name is "Sodium+4-%5B%282E%29-2-%282-Oxonaphthalen-1%282H%29-Ylidene%29Hydrazino%5DBenzenesulfonate". From its name, it can be preliminarily inferred that "Sodium" is a sodium element, and it can be known that this substance contains sodium components. "4 - [ (2E) -2 - (2 - Oxonaphthalen - 1 (2H) -Ylidene) Hydrazino] Benzenesulfonate" part, in which the benzenesulfonate radical group (Benzenesulfonate) indicates that the substance contains the derivative structure of benzenesulfonate. The section " (2E) -2 - (2 - Oxonaphthalen - 1 (2H) -Ylidene) Hydrazino" reveals that there is a nitrogen-containing hydrazino structure in the molecule, and it is connected to naphthone (2 - Oxonaphthalen - 1 (2H) -Ylidene) in a specific configuration (2E).
This substance may have unique chemical properties and reactivity. The heteroatoms such as nitrogen and oxygen, as well as the structures of benzene ring and naphthalene ring, may make it special in the fields of organic synthesis and medicinal chemistry. In organic synthesis, due to its complex structure, it may act as a key intermediate and participate in the construction of more complex organic molecules. In the field of medicinal chemistry, the structure of such nitrogen-containing, oxygen-containing heteroatoms and conjugated systems may endow substances with specific biological activities, such as potential pharmacological effects, or can be used as lead compounds to develop new drugs through structural modification and optimization. However, it is difficult to know the specific physicochemical properties and practical uses from the name alone, and more experimental data and studies are needed to explore in depth.
What is the chemical structure of Sodium 4- [ (2E) -2- (2-Oxonaphthalen-1 (2H) -Ylidene) Hydrazino] Benzenesulfonate?
Sodium + 4 - [ (2E) -2 - (2 - Oxonaphthalen - 1 (2H) -Ylidene) Hydrazino] Benzenesulfonate of this compound. It is mainly composed of parts.
First, there is a benzenesulfonate group, in which a sulfonic acid group is attached to the benzene group, and the sulfonic acid group exists in the form of a sulfonic acid group, that is, a major reason for the water solubility of the compound.
Furthermore, there is a nitrogen-containing hydrazine group fragment, namely - [ (2E) -2 - (2 - Oxonaphthalen - 1 (2H) -Ylidene) Hydrazino] part. The nitrogen atom of the hydrazine group can be reversed, such as the formation or nuclear substitution of the hydrazine group.
In which the naphthenone group moiety, namely (2 - Oxonaphthalen - 1 (2H) -Ylidene), the naphthalene group gives the compound a certain planarity and aromaticity. The distribution of the cloud and the chemical activity of the carbonyl group on the naphthalene group have an important influence.
Of course, the chemical compound is formed by the interaction of the benzene sulfonic acid part, the nitrogen-containing hydrazine group and the naphthenone group, and the interaction of each part determines its physical and chemical properties.
What are the physical properties of Sodium 4- [ (2E) -2- (2-Oxonaphthalen-1 (2H) -Ylidene) Hydrazino] Benzenesulfonate?
Sodium-4- [ (2E) -2 - (2-oxynaphthalene-1 (2H) -subunit) hydrazinyl] benzenesulfonate, this is an organic compound. It has many physical properties, let me tell you one by one.
Looking at its appearance, it is often in a solid state, or in a powdery state, fine and uniform, just like fresh snow in winter, delicate and free of impurities. Its color is mostly white or off-white, pure, as if it had not been stained by the world.
When it comes to solubility, it has a certain solubility in water. Just like salt melting in water, this compound can gradually disperse in water and interact with water molecules to form a uniform solution. However, its solubility is also restricted by factors such as temperature. When the temperature increases, the solubility may increase, just like ice and snow in the warm sun, gradually melting and gradually melting.
In addition to the melting point, this compound has a specific melting point. When the temperature rises to a certain exact value, the shape of its solid state begins to change, just like ice disappearing into water, gradually turning from solid state to liquid state. This melting point is one of its important physical properties, which can help identify its purity. If the purity is high, the melting point range is narrow and close to the theoretical value; if it contains impurities, the melting point may drop, and the melting range becomes wider.
As for the density, although it is relatively infrequently mentioned, it is also its inherent property. Density reflects the mass per unit volume of a substance, just like a scale for measuring the "weight" of an object. The density of this compound is related to many factors, such as molecular structure, crystal form, etc. Its density may be within a certain range, providing a basis for its behavior in a specific environment.
The physical properties of this sodium-4- [ (2E) -2 - (2-oxynaphthalene-1 (2H) -subunit) hydrazine] benzene sulfonate are of great significance in chemical research, industrial production and other fields, helping researchers understand its characteristics and laying the foundation for related applications.
What are the chemical properties of Sodium 4- [ (2E) -2- (2-Oxonaphthalen-1 (2H) -Ylidene) Hydrazino] Benzenesulfonate?
This is a compound named "4 - [ (2 - ethoxy - 2 - (2 - oxynaphthalene - 1 (2H) - subunit) hydrazine] sodium benzene sulfonate". It has many chemical properties.
In terms of physical properties, this compound is usually in solid form, mostly in white or off-white powder form. Because the molecular structure contains sulfonic acid groups, it has certain solubility in water. Sulfonic acid groups are hydrophilic groups, which can interact with water molecules through hydrogen bonds, etc., so that the compound can be dispersed in water.
From the perspective of chemical properties, the naphthalene ring part in its structure imparts certain stability and conjugate system characteristics to the molecule. Conjugated systems often affect the electron cloud distribution of compounds, which in turn affects their spectral properties. For example, in the ultraviolet-visible spectrum, or there may be absorption peaks at specific wavelengths, which can be used for qualitative and quantitative analysis of the compound.
Furthermore, the hydrazine group in the molecule has strong reactivity. There are lone pairs of electrons on its nitrogen atom, which can participate in many chemical reactions as nucleophiles. For example, it can undergo condensation reactions with carbonyl compounds such as aldose and ketone to form hydrazone derivatives.
In addition, the sulfonic acid group not only affects the solubility of the compound, but also participates in ion exchange reactions as acidic groups. Under appropriate conditions, its sodium ions can be exchanged with other cations to form different salts, which may have applications in fields such as ion exchange resins.
The ethoxy group, as an alkoxy group, has a certain donator effect, which will affect the overall electron cloud density and chemical activity of the molecule, increasing the electron cloud density of the atoms or groups connected to it, and changing its reactivity and selectivity.
In short, this compound has potential applications in many fields such as organic synthesis and pharmaceutical chemistry due to its unique molecular structure and a combination of various chemical properties.
What are the main uses of Sodium 4- [ (2E) -2- (2-Oxonaphthalen-1 (2H) -Ylidene) Hydrazino] Benzenesulfonate?
Sodium + 4 - [ (2 - E) - 2 - (2 - Oxonaphthalen - 1 (2H) - Ylidene) Hydrazino] Benzenesulfonate, which is a chemical substance, often called naphthol green B, although there is no such thing in ancient China, it can be used with ancient wisdom.
In the field of industry, it can be used as a dye. Ancient dyeing, relying on natural grass, ores, etc., is cumbersome and has poor color fastness. If this thing was born in ancient times, dyers can use it to color fabrics, and the color may be brighter and longer lasting. For example, the silk weaving industry in ancient times was prosperous, and silk was dyed with naphthol green B, which could make brocade with unique color, which could be used by officials and dignitaries to make clothes and add splendor to the clothing culture.
In the process of scientific research, it can be used as an analytical reagent. Ancient scholars study the properties of matter, but often have no precise reagents. If this material is obtained, it can help it analyze mineral composition, water quality, etc. For example, when exploring gold deposits, it can be used to detect related elements, or it can be used to find ore veins more efficiently and promote the development of mining.
In the path of agriculture, it can be used as a plant growth regulator. In ancient agriculture, crop growth was often restricted by many restrictions. If naphthol green B is used to regulate plant growth, it may enhance crop resistance and increase yield. In the event of a drought, the treated crops may be able to survive better, ensuring the food supply of the people and stabilizing the social and livelihood.