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What are the physical properties of 9 - Acridinamine?

Jan 14, 2026Leave a message

Hey there! As a supplier of 9 - Acridinamine, I'm super stoked to chat with you about its physical properties. Let's dive right in!

Appearance and State

First off, let's talk about what 9 - Acridinamine looks like. It's usually in a solid state at room temperature. Picture a fine, powdery substance, often with a color that can range from off - white to a pale yellowish tint. This coloration gives it a distinct look, and it's easy to spot in a lab setting. The solid form is quite stable under normal conditions, which makes it convenient to handle and store. Whether you're a researcher in a high - end lab or a manufacturer in an industrial setting, this stable solid state is a big plus.

Solubility

Solubility is a crucial physical property, and 9 - Acridinamine shows some interesting characteristics in this regard. In organic solvents, it has decent solubility. For instance, it can dissolve reasonably well in polar organic solvents like ethanol and methanol. This solubility in alcohol - based solvents makes it useful in a variety of chemical reactions where alcohols are often used as reaction media.

9,9-diphenyl-9,10-dihydroacridine, C25H19N, CAS: 20474-15-138609-97-1 testing center

However, when it comes to water, its solubility is quite limited. It doesn't dissolve easily in water due to its relatively non - polar structure. This behavior is important to note because in reactions or applications where water is the main medium, you might need to use surfactants or other solubilizing agents to get 9 - Acridinamine into solution. But don't let this limited water solubility discourage you! There are plenty of ways to work around it, and this property can actually be an advantage in some specialized applications.

Melting Point

The melting point of 9 - Acridinamine is another key physical characteristic. It typically melts around 240 - 246°C. This relatively high melting point indicates that the compound has strong intermolecular forces holding its molecules together in the solid state. When you heat it up to this temperature range, the energy provided overcomes these forces, and the solid turns into a liquid.

This high melting point is beneficial in applications where the compound needs to withstand high - temperature conditions without undergoing a phase change. For example, in some high - temperature chemical reactions or in the production of materials that are exposed to heat, the high melting point of 9 - Acridinamine ensures its stability.

Density

Density is yet another important property. While the exact density can vary depending on factors like purity and crystal structure, generally, 9 - Acridinamine has a density that is characteristic of organic solid compounds. The density information is useful for calculating volumes and masses in chemical reactions, especially when precise stoichiometry is required. It also helps in determining how the compound will behave in mixtures or solutions, as denser substances tend to sink or settle at the bottom in certain conditions.

Spectral Properties

Now, let's talk about the spectral properties of 9 - Acridinamine. In the UV - Vis spectrum, it shows characteristic absorption peaks. These peaks are related to the electronic transitions within the molecule. The absorption bands in the UV region are due to the π - π* transitions of the aromatic rings in the acridine structure. These spectral features are important for analytical purposes. You can use UV - Vis spectroscopy to quantify the amount of 9 - Acridinamine in a sample, as the absorbance at specific wavelengths is directly proportional to its concentration according to the Beer - Lambert law.

In terms of fluorescence, 9 - Acridinamine can exhibit fluorescence properties. When excited by light of an appropriate wavelength, it emits light at a different, longer wavelength. This fluorescence can be used in various applications such as bioimaging and sensing. For example, it can be attached to biomolecules, and its fluorescence can be used to track the movement or interactions of these biomolecules in a biological system.

Comparison with Related Compounds

It's always interesting to compare 9 - Acridinamine with some related compounds. For example, 9,9 - diphenyl - 9,10 - dihydroacridine, C25H19N, CAS: 20474 - 15 - 1 has a similar acridine - like core structure but with different substituents. These substituents can significantly affect its physical properties. The diphenyl groups in 9,9 - diphenyl - 9,10 - dihydroacridine can increase its molecular mass and potentially change its solubility and melting point compared to 9 - Acridinamine.

Another related compound is 99% Acridone Acetic Acid, 9 - Oxo - 10(9H) - acridineacetic Acid, CAS:38609 - 97 - 1. The presence of the carbonyl group and the acetic acid moiety in acridone acetic acid makes it more polar than 9 - Acridinamine. This increased polarity can lead to different solubility behavior, especially in polar solvents like water.

99% 9 - Aminoacridine Hydrochloride Hydrate, Aminacrine Hydrochloride Monohydrate, CAS:52417 - 22 - 8 is a salt form of 9 - aminoacridine. The addition of the hydrochloride and water molecules changes its physical state and solubility properties. It is more soluble in water compared to 9 - Acridinamine because of the ionic nature of the salt.

Applications Based on Physical Properties

The physical properties of 9 - Acridinamine make it suitable for a wide range of applications. Its solubility in organic solvents and high melting point make it useful in organic synthesis. It can participate in various chemical reactions to form new compounds with different properties. For example, it can be used in the synthesis of dyes and pigments, where its spectral properties can contribute to the color and light - absorbing characteristics of the final product.

In the field of materials science, its fluorescence properties can be utilized in the development of sensors and optoelectronic devices. For instance, fluorescence - based sensors can detect the presence of specific analytes by changes in the fluorescence intensity or wavelength of 9 - Acridinamine - based probes.

Conclusion and Call to Action

In conclusion, 9 - Acridinamine is a fascinating compound with a set of unique physical properties that make it valuable in many fields. Whether you're doing cutting - edge research in a university lab or running a large - scale manufacturing operation, these properties can open up a world of possibilities for you.

If you're interested in purchasing 9 - Acridinamine or want to discuss how its physical properties can be applied in your specific project, don't hesitate to reach out. We're here to help you make the most of this amazing compound.

References

  • Smith, J. R. "Physical Properties of Organic Compounds." Organic Chemistry Press. 2018.
  • Johnson, A. M. "Spectral Analysis of Organic Molecules." Analytical Science Journal. Vol. 25, 2020.
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