Date published: 2025-12-19

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Alcohols

Santa Cruz Biotechnology now offers a broad range of alcohols for use in various applications. Alcohols, characterized by the presence of one or more hydroxyl (-OH) groups attached to a carbon atom, are versatile compounds widely used in both organic and inorganic chemistry. Their unique properties, such as their ability to participate in hydrogen bonding and act as solvents, make them indispensable in scientific research. Alcohols play a critical role in various chemical reactions, including oxidation, reduction, and esterification, serving as key intermediates in the synthesis of a vast array of chemical compounds. In organic synthesis, alcohols are used to produce esters, ethers, and other derivatives, facilitating the construction of complex molecular structures. Methanol, ethanol, and isopropanol are commonly used as solvents in laboratory settings, owing to their ability to dissolve a wide range of substances and their relatively low toxicity. Additionally, alcohols are crucial in biochemical research, where they are used to study enzyme kinetics, protein folding, and metabolic pathways. In materials science, alcohols are employed in the preparation and modification of polymers and nanomaterials, enhancing their properties and functionalities. They also play a role in environmental science, where they are used to investigate the biodegradation of organic pollutants and the development of sustainable energy sources. By offering a diverse selection of alcohols, Santa Cruz Biotechnology supports a wide range of scientific endeavors, enabling researchers to select the appropriate alcohol for their specific experimental needs. This extensive range of alcohols facilitates innovation and discovery across multiple scientific disciplines, including chemistry, biology, and materials science. View detailed information on our available alcohols by clicking on the product name.

Items 11 to 20 of 412 total

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Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

PPH hydrochloride

sc-396779
10 mg
$104.00
(0)

PPH hydrochloride is characterized by its ability to engage in hydrogen bonding, enhancing its solubility in polar solvents. This compound exhibits unique reactivity as an acid halide, facilitating nucleophilic attacks that lead to the formation of diverse derivatives. Its electron-rich aromatic system allows for resonance stabilization, influencing reaction rates and pathways. Additionally, the compound's stability under various conditions makes it a valuable tool for studying reaction mechanisms in organic synthesis.

Piericidin A

2738-64-9sc-202287
2 mg
$285.00
24
(1)

Piericidin A, a potent inhibitor of mitochondrial respiration, uniquely interacts with the electron transport chain, specifically targeting complex I. Its structure allows for tight binding, disrupting proton translocation and altering energy production pathways. This compound exhibits distinct reaction kinetics, leading to a decrease in ATP synthesis and an increase in reactive oxygen species. Additionally, its hydrophobic characteristics enhance its affinity for lipid membranes, influencing membrane dynamics and integrity.

KN-93

139298-40-1sc-202199
1 mg
$178.00
25
(1)

KN-93, classified as an alcohol, exhibits intriguing properties due to its unique molecular structure. It features a hydroxyl group that enhances its solubility in polar solvents, facilitating interactions with various biomolecules. This compound can participate in hydrogen bonding, influencing molecular stability and reactivity. Its distinct configuration allows for selective interactions with specific enzymes, potentially altering reaction pathways and kinetics in biochemical processes.

β-Glycerophosphate disodium salt pentahydrate

13408-09-8sc-203323
sc-203323A
sc-203323B
50 g
100 g
250 g
$87.00
$173.00
$265.00
36
(2)

β-Glycerophosphate disodium salt pentahydrate, as an alcohol, showcases remarkable hygroscopic properties, allowing it to absorb moisture from the environment. Its dual ionic and hydroxyl groups enable strong electrostatic interactions, enhancing its solubility in aqueous solutions. This compound can act as a buffer, stabilizing pH levels in various environments. Additionally, its unique structure promotes specific interactions with metal ions, influencing coordination chemistry and reactivity in complex systems.

Geranylgeraniol

24034-73-9sc-200858
sc-200858A
20 mg
100 mg
$159.00
$465.00
14
(1)

Geranylgeraniol, as an alcohol, features a long hydrocarbon chain that enhances its lipophilicity, facilitating interactions with lipid membranes. Its multiple hydroxyl groups enable hydrogen bonding, which can influence solubility and reactivity in organic solvents. This compound participates in unique metabolic pathways, acting as a precursor in the biosynthesis of terpenes. Its structural flexibility allows for diverse conformations, impacting its reactivity and interactions in biochemical systems.

(Z)-Pugnac

132489-69-1sc-204415A
sc-204415
5 mg
10 mg
$220.00
$373.00
3
(1)

(Z)-Pugnac, classified as an alcohol, exhibits a unique stereochemistry that influences its reactivity and interaction with other molecules. The presence of a double bond in its structure enhances its electrophilic character, allowing it to participate in various addition reactions. Its ability to form stable hydrogen bonds contributes to its solubility in polar solvents, while its distinct spatial arrangement can lead to selective reactivity in synthetic pathways, making it a versatile compound in organic chemistry.

Isopropanol-d7

19214-96-1sc-358260
1 ml
$115.00
(0)

Isopropanol-d7, a deuterated alcohol, features a unique isotopic composition that alters its physical properties and reaction dynamics. The presence of deuterium enhances its stability in certain reactions, influencing kinetic isotope effects. This compound exhibits strong hydrogen bonding capabilities, which can modify solvation dynamics and reactivity profiles in various chemical environments. Its distinct isotopic labeling allows for precise tracking in mechanistic studies, providing insights into reaction pathways and molecular interactions.

3-Hydroxycyclohexanecarboxylic Acid (cis- and trans- mixture)

606488-94-2sc-487354
sc-487354A
1 g
5 g
$520.00
$1900.00
(0)

3-Hydroxycyclohexanecarboxylic Acid, existing as a mixture of cis and trans isomers, exhibits intriguing properties due to its dual functional groups. The hydroxyl group enhances hydrogen bonding capabilities, while the carboxylic acid moiety contributes to acid-base interactions. This compound's cyclic structure introduces unique conformational dynamics, affecting solubility and reactivity. Its isomeric forms can engage in selective reactions, allowing for tailored synthesis in complex organic transformations.

Ursodeoxycholic Acid, Sodium Salt

2898-95-5sc-222407A
sc-222407B
sc-222407
sc-222407C
250 mg
500 mg
1 g
5 g
$132.00
$234.00
$418.00
$1390.00
10
(1)

Ursodeoxycholic Acid, Sodium Salt exhibits unique amphiphilic properties, allowing it to interact effectively with both hydrophilic and hydrophobic environments. Its molecular structure facilitates the formation of micelles, enhancing solubilization of lipids. The compound engages in specific ionic interactions, influencing its stability and reactivity in various conditions. Additionally, its ability to modulate membrane fluidity plays a crucial role in cellular dynamics, impacting lipid bilayer interactions.

3-[4-(4,4,5,5-Tetramethyl-[1,3,2]dioxaborolan-2-yl)-phenyl]-propan-1-ol

651030-57-8sc-481883A
sc-481883
sc-481883B
300 mg
1 g
5 g
$75.00
$202.00
$500.00
(0)

3-[4-(4,4,5,5-Tetramethyl-[1,3,2]dioxaborolan-2-yl)-phenyl]-propan-1-ol exhibits unique characteristics as a multifunctional alcohol, particularly through its ability to engage in hydrogen bonding due to the hydroxyl group. This interaction can enhance its solubility in polar solvents. The presence of the bulky dioxaborolane moiety not only modulates steric effects but also facilitates regioselective reactions, making it a valuable intermediate in synthetic pathways. Its structural rigidity contributes to its stability, influencing reaction kinetics and selectivity in various chemical processes.