Date published: 2025-9-18

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Quinolines

Santa Cruz Biotechnology now offers a broad range of quinolines for use in various applications. Quinolines are aromatic heterocyclic compounds characterized by a benzene ring fused to a pyridine ring. These compounds play a crucial role in scientific research due to their versatile chemical properties and their presence in a wide array of natural and synthetic substances. Quinolines serve as important scaffolds in organic synthesis, enabling the construction of complex molecular architectures. Researchers utilize quinolines to study reaction mechanisms, develop new synthetic methodologies, and create diverse chemical libraries for high-throughput screening in various fields, including materials science and agrochemistry. In environmental science, quinolines are studied for their role in the degradation pathways of pollutants and their impact on ecosystems, helping to develop strategies for monitoring and mitigating environmental contamination. Quinolines also find applications in the development of advanced materials, such as dyes, polymers, and semiconductors, where their unique electronic and photophysical properties are harnessed to create innovative products. Furthermore, quinoline derivatives are used in the study of biological systems, where they serve as probes and tools to explore enzyme functions and cellular processes. Analytical chemists employ quinoline-based compounds in techniques such as chromatography and mass spectrometry to enhance the detection and quantification of various analytes. The broad applications of quinolines in scientific research highlight their significance in advancing our understanding of chemical processes and driving technological innovations across multiple disciplines. View detailed information on our available quinolines by clicking on the product name.

Items 91 to 100 of 135 total

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Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

(−)-Bicuculline methiodide

40709-69-1sc-200485
50 mg
$209.00
5
(1)

(-)-Bicuculline methiodide, a quinoline derivative, showcases unique stereochemical properties that influence its interaction with biological targets. Its rigid molecular structure promotes specific binding affinities, while the presence of a methiodide group enhances its solubility in polar media. This compound also exhibits notable hydrogen bonding capabilities, which can modulate its reactivity and stability in diverse chemical environments, impacting its kinetic pathways during reactions.

2-Chloroquinoline-3-carbonitrile

95104-21-5sc-254224
250 mg
$87.00
(0)

2-Chloroquinoline-3-carbonitrile is a distinctive quinoline derivative characterized by its electron-withdrawing chloro and cyano groups, which significantly influence its reactivity. The presence of these substituents enhances its electrophilic nature, facilitating nucleophilic attack in various reactions. Additionally, the compound's planar structure allows for effective π-π stacking interactions, potentially affecting its solubility and aggregation behavior in different solvents, thereby altering its kinetic profiles in synthetic pathways.

Neratinib

698387-09-6sc-364549
sc-364549A
sc-364549B
sc-364549C
sc-364549D
5 mg
25 mg
100 mg
500 mg
1 g
$90.00
$210.00
$375.00
$740.00
$1225.00
4
(1)

Neratinib, a unique quinoline derivative, features a distinctive structure that promotes strong hydrogen bonding and π-π interactions due to its aromatic system. The presence of a bulky side chain enhances steric hindrance, influencing its reactivity and selectivity in chemical transformations. This compound exhibits notable stability under various conditions, while its electronic properties allow for efficient charge transfer, impacting its behavior in catalytic processes and material science applications.

HDS 029

881001-19-0sc-203995
1 mg
$112.00
1
(0)

HDS 029, a novel quinoline compound, showcases intriguing electron-donating characteristics that facilitate unique charge transfer interactions. Its planar structure enhances π-stacking, promoting effective stacking interactions in solid-state forms. The compound's reactivity is influenced by its electron-rich nitrogen atom, which can engage in coordination with metal centers, potentially altering reaction pathways. Additionally, its solubility profile suggests favorable interactions with polar solvents, impacting its behavior in various chemical environments.

Procaterol hydrochloride

62929-91-3sc-203667
sc-203667A
10 mg
50 mg
$235.00
$700.00
(0)

Procaterol hydrochloride, a distinctive quinoline derivative, exhibits notable hydrogen bonding capabilities due to its functional groups, which can significantly influence solvation dynamics. Its rigid bicyclic framework contributes to a unique conformational stability, allowing for selective interactions with various substrates. The compound's electron-withdrawing characteristics can modulate reactivity, facilitating specific electrophilic attack pathways. Furthermore, its crystalline nature may enhance thermal stability, affecting its behavior in diverse chemical contexts.

QUIN 2, Tetrapotassium Salt

73630-23-6sc-202303
5 mg
$231.00
(0)

QUIN 2, Tetrapotassium Salt, is a unique quinoline compound characterized by its ability to form strong ionic interactions due to its tetrapotassium structure. This enhances its solubility in polar solvents, promoting efficient ion exchange processes. The compound's distinct electronic configuration allows for selective coordination with metal ions, influencing catalytic pathways. Additionally, its high ionic strength can affect reaction kinetics, leading to accelerated rates in certain chemical reactions.

SR 2640 hydrochloride

105350-26-3sc-204902
sc-204902A
10 mg
50 mg
$290.00
$1000.00
(0)

SR 2640 hydrochloride, a notable quinoline derivative, exhibits intriguing properties through its ability to engage in π-π stacking interactions, enhancing its stability in various environments. Its unique electron-rich aromatic system facilitates complexation with transition metals, potentially altering redox behavior. Furthermore, the compound's hydrophilic nature, stemming from its hydrochloride form, influences solvation dynamics, impacting reaction mechanisms and enhancing reactivity in specific chemical contexts.

SB 222200

174635-69-9sc-224282
sc-224282A
10 mg
50 mg
$205.00
$800.00
1
(0)

SB 222200, a distinctive quinoline compound, showcases remarkable photophysical properties, particularly in its ability to undergo fluorescence quenching in the presence of certain metal ions. This behavior is attributed to its planar structure, which promotes effective π-π interactions. Additionally, the compound's electron-withdrawing substituents can modulate its reactivity, influencing nucleophilic attack pathways and enhancing its role in catalytic cycles. Its solubility characteristics further affect its distribution in various solvents, impacting its overall chemical behavior.

CP 339818 hydrochloride

185855-91-8sc-203903
sc-203903A
10 mg
50 mg
$155.00
$660.00
(0)

CP 339818 hydrochloride, a notable quinoline derivative, exhibits intriguing electrochemical properties, particularly in its redox behavior. The compound's rigid aromatic framework facilitates strong π-stacking interactions, enhancing its stability in various environments. Its unique electron-donating groups can significantly alter reaction kinetics, promoting selective pathways in complex reactions. Furthermore, its solubility profile allows for diverse interactions with polar and nonpolar solvents, influencing its reactivity and aggregation behavior.

c-Met/RON Dual Kinase Inhibitor

913376-84-8sc-364532
sc-364532A
sc-364532B
sc-364532C
sc-364532D
5 mg
50 mg
100 mg
500 mg
1 g
$379.00
$1200.00
$1700.00
$3600.00
$7000.00
(0)

c-Met/RON Dual Kinase Inhibitor, a quinoline-based compound, showcases remarkable selectivity in kinase inhibition through its unique binding affinity to specific ATP sites. The presence of halogen substituents enhances its lipophilicity, promoting effective membrane permeability. Its planar structure allows for effective molecular recognition, while the compound's ability to form hydrogen bonds contributes to its stability in various chemical environments, influencing its reactivity and interaction dynamics.