Date published: 2025-9-5

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Catalysis

Santa Cruz Biotechnology now offers a broad range of catalysis products for use in various applications. Catalysis involves substances known as catalysts that accelerate chemical reactions without being consumed in the process, playing a pivotal role in both industrial and laboratory settings. These catalysts are crucial in scientific research for their ability to facilitate complex chemical transformations efficiently and selectively. Researchers utilize catalysis products to explore reaction mechanisms, develop new synthetic pathways, and improve the sustainability of chemical processes by reducing energy consumption and waste generation. In the scientific community, catalysis is fundamental to advancements in organic synthesis, material science, and environmental chemistry. Catalysts enable the production of fine chemicals, polymers, and fuels, and they are essential in the study of green chemistry practices aimed at minimizing environmental impact. Catalysis products also support the development of innovative technologies such as renewable energy systems and advanced materials with specific properties. By providing a comprehensive selection of high-quality catalysis products, Santa Cruz Biotechnology empowers scientists to push the boundaries of chemical research, leading to the discovery of new reactions and the optimization of existing processes. These products facilitate precise control over reaction conditions, enhancing reproducibility and efficiency in experimental outcomes. View detailed information on our available catalysis products by clicking on the product name.

Items 1 to 10 of 481 total

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Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Sodium azide

26628-22-8sc-208393
sc-208393B
sc-208393C
sc-208393D
sc-208393A
25 g
250 g
1 kg
2.5 kg
100 g
$42.00
$152.00
$385.00
$845.00
$88.00
8
(2)

Sodium azide serves as a potent catalyst in various chemical reactions, particularly in the formation of azides from alkyl halides. Its unique ability to stabilize transition states through specific molecular interactions enhances reaction kinetics, facilitating rapid nucleophilic substitutions. The compound's distinct electronic properties allow it to engage effectively with electrophiles, promoting diverse pathways in organic synthesis. This catalytic behavior underscores its role in advancing synthetic methodologies.

Tris(2,4,6-trimethoxyphenyl)phosphine

91608-15-0sc-255706
2 g
$91.00
(1)

Tris(2,4,6-trimethoxyphenyl)phosphine acts as a versatile catalyst, particularly in facilitating phosphine-mediated transformations. Its bulky trimethoxyphenyl groups enhance steric hindrance, promoting selectivity in reactions. The electron-donating nature of the methoxy groups increases nucleophilicity, allowing for efficient interactions with electrophiles. This compound's unique structural features enable it to stabilize reactive intermediates, thereby influencing reaction pathways and improving overall yields in various synthetic processes.

Molybdenum(V) chloride

10241-05-1sc-253052
25 g
$85.00
(0)

Molybdenum(V) chloride serves as a potent catalyst through its ability to form stable coordination complexes with various substrates. Its unique d-orbital electron configuration facilitates the activation of reactants via oxidative addition and reductive elimination pathways. The compound's Lewis acidity enhances electrophilic character, promoting rapid reaction kinetics. Additionally, its ability to engage in ligand exchange reactions allows for fine-tuning of catalytic activity, making it adaptable for diverse chemical transformations.

Neodymium(III) chloride hexahydrate

13477-89-9sc-228819
25 g
$81.00
(0)

Neodymium(III) chloride hexahydrate serves as an effective catalyst through its ability to form stable complexes with various substrates. The presence of neodymium ions enhances Lewis acidity, facilitating electrophilic activation of reactants. Its hydrated form provides a unique environment for solvation, promoting efficient ion exchange and reaction kinetics. The distinct coordination geometry of neodymium allows for selective pathways in catalytic cycles, optimizing reaction rates and yields.

Bis(3,5-di-tert-butyl-4-methoxyphenyl)phosphine

1173023-24-9sc-300232
100 mg
$111.00
(0)

Bis(3,5-di-tert-butyl-4-methoxyphenyl)phosphine acts as a versatile catalyst by engaging in strong π-π stacking interactions and hydrogen bonding with substrates. Its bulky tert-butyl groups enhance steric hindrance, allowing for selective activation of electrophiles while minimizing side reactions. The phosphine moiety exhibits unique electronic properties, promoting efficient electron transfer and stabilizing transition states, which accelerates reaction kinetics and improves overall catalytic efficiency.

(1E,2E)-1,2-Bis(2,6-Diisopropylphenylimino)ethane

74663-75-5sc-224988
1 g
$84.00
(0)

(1E,2E)-1,2-Bis(2,6-Diisopropylphenylimino)ethane serves as an effective catalyst through its unique bidentate coordination, which enhances metal complex stability. The sterically demanding diisopropylphenyl groups create a favorable environment for substrate orientation, promoting regioselectivity. Its imino functionalities facilitate strong π-π stacking interactions, influencing reaction kinetics and enabling efficient electron transfer processes, ultimately optimizing catalytic performance in diverse reactions.

Poly(2-vinylpyridine) 200,000 MW Average

25014-15-7sc-360986
1 g
$59.00
(0)

Poly(2-vinylpyridine) exhibits remarkable catalytic properties due to its high molecular weight and unique polymeric structure. The nitrogen atoms in the pyridine rings facilitate strong interactions with metal ions, enhancing coordination and promoting catalytic activity. Its amphiphilic nature allows for effective solvation of reactants, while the polymer backbone provides a flexible framework that can adapt to various substrates, optimizing reaction pathways and improving overall efficiency in catalytic processes.

Zirconium(IV) propoxide solution

23519-77-9sc-253855
sc-253855A
100 ml
500 ml
$61.00
$167.00
(1)

Zirconium(IV) propoxide solution acts as an effective catalyst by promoting the formation of reactive intermediates through its strong Lewis acidity. This compound can facilitate the activation of substrates via coordination, leading to enhanced reaction rates. Its unique ability to stabilize transition states allows for efficient pathways in polymerization and cross-coupling reactions. The solution's solubility in organic solvents further aids in its versatility, enabling a wide range of catalytic applications.

Endoproteinase Lys-C

72561-05-8sc-360250
sc-360250C
sc-360250A
sc-360250B
sc-360250D
5 µg
20 µg
100 µg
660 µg
3 mg
$85.00
$230.00
$440.00
$700.00
$1100.00
2
(1)

Endoproteinase Lys-C is a serine protease that catalyzes the cleavage of peptide bonds specifically at the carboxyl side of lysine residues. Its unique substrate specificity allows for precise protein digestion, facilitating the generation of distinct peptide fragments. The enzyme exhibits a high turnover number, reflecting its efficiency in hydrolyzing peptide bonds. Additionally, its structural conformation enables optimal interactions with substrates, enhancing reaction kinetics and selectivity in proteolytic processes.

Tris(diethylamino)phosphine

2283-11-6sc-251400
5 g
$82.00
(0)

Tris(diethylamino)phosphine serves as a versatile catalyst in various organic transformations, particularly in facilitating nucleophilic substitutions. Its unique triethylamino groups enhance electron density on the phosphorus atom, promoting reactivity. The steric bulk of the diethylamino substituents influences reaction pathways, allowing for selective activation of substrates. This compound exhibits remarkable stability under diverse conditions, making it a reliable choice for catalyzing complex reactions with high efficiency.