‎Results Filter

Showing results 1561-1620 / 1650

Pd-205

[HJohnPhos]₂[Pd₂Cl₆] | CAS Number: 2548904-06-7

Explore

Pd-172

SPhos Pd(crotyl)Cl | CAS Number: 1798781-99-3

Explore

Pd-171

RuPhos Pd(crotyl)Cl | CAS Number: 1798781-96-0

Explore

Pd-192

[HXPhos]₂[Pd₂Cl₆] | CAS Number: 2548904-04-5

Explore

Pd-193

[HRuPhos]₂[Pd₂Cl₆] | CAS Number: 2548904-00-1

Explore

Pd-194

[HSPhos]₂[Pd₂Cl₆] | CAS Number: 2548904-02-3

Explore

Pd-195

[HBrettPhos]₂[Pd₂Cl₆] | CAS Number: 2548904-08-9

Explore

Pd-196

[HtBuXPhos]₂[Pd₂Cl₆] | CAS Number: 2548904-05-6

Explore

Pd-197

[HtBuBrettPhos]₂[Pd₂Cl₆] | CAS Number: 2548904-09-0

Explore

Pd-173

[BrettPhos Pd(crotyl)]OTf | CAS Number: 1798782-11-2

Explore

Pd-174

[tBuXPhos Pd(allyl)]OTf | CAS number: 1798782-25-8

Explore

Pi-allyl palladium catalyst kit

Our range of pi-allyl palladium catalysts are highly active, across a range of challenging cross-coupling reactions.

Explore

Pd-183

AmPhos Palladacycle 2nd Gen | CAS number: 2169976-34-3

Explore

Pd-184

APhos Pd G3 | CAS Number: 1820817-64-8

Explore

Pd-185

(PCy₃) Pd G2 | CAS Number: 1353658-81-7

Explore

Pd-187

XantPhos Pd G3 | CAS Number: 1445085-97-1

Explore

Pd-189

JohnPhos Pd(crotyl)Cl | CAS Number: 1798782-05-4

Explore

Pd-188

CyJohnPhos Pd(crotyl)Cl | CAS Number: 692782-19-7

Explore

Pt-114

CAS Number: 68478–92–2

Explore

Pd-215

[RockPhos Pd(allyl)]OTf | CAS Number: 1798782-31-6

Explore

Pd-166

PdCl₂ [P(tBu)(Cy)₂]₂ | CAS Number: 104889-13-6

Explore

Pd-168

[P(tBu)₃] Palladacycle 2nd Gen | GenCAS Number: 1375325-71-5

Explore

Pd-161

AmPhos Pd(crotyl)Cl | CAS Number: 1334497-06-1

Explore

Pd-162

[P(tBu₃)] Pd(crotyl)Cl | CAS Number: 1334497-00-5

Explore

Pd-164

[PdCl (crotyl)]₂ | CAS Number: 12081-22-0

Explore

Pd-170

XPhos Pd(crotyl)Cl | CAS Number: 1798782-02-1

Explore

RTA-194: R-transaminase

Aromatic and aliphatic primary amines can be obtained using our Transaminases

Explore

Ru-137

[(S)-Binap RuCl p-cymene]Cl | CAS Number: 14284-93-6

Explore

Ru-139

Tris(2,2′-bipyridyl)dichlororuthenium(II) hexahydrate | CAS Number: 50525-27-4

Explore

C301099-5

Explore

D9-5302011

5% Ruthenium on alumina

Explore

5R122

2.5% Pd, 2.5% Pt on carbon

Explore

5R430

Explore

5R122

5% Ru, 0.5% Pd on carbon

Explore

Cataflo Pt2

Pt on alumina catalyst for flow chemistry

Explore

Cataflo Pt1

Pt on carbon catalyst for flow chemistry

Explore

QuadraSil MP (I)

Irregular silica for metal impurity removal and value recovery

Explore

Amination technology

Amines are compounds derived from ammonia and contain a nitrogen atom with a lone electron pair. Amination is the process by which an amine group is added to an organic compound.

Explore

Amination catalysts

Our amination catalysts are used for a variety of speciality amines production and downstream of our oxo-alcohol catalysts.

Explore

Biorenewable catalysts

Following recent environmental legislation and an increasing awareness on the part of product manufacturers for sustainable products, the need to replace non-renewable fossil raw materials is more apparent than ever.

Explore

Pyrolysis gasoline hydrogenation catalysts

Explore

Formaldehyde plant range

The latest FORMOX™ plant design is a step further in the evolution of our plant technology.

Explore

Hydrogenation catalysts

Explore Johnson Matthey's hydrogenation catalysts, offering base metal and precious metal solutions for selective and total hydrogenation applications.

Explore

Dehydrogenation catalysts

Johnson Matthey offers a variety of different dehydrogenation catalysts for different markets, including the manufacture of caprolactam and olefins.

Explore

Fluorination catalysts

Johnson Matthey's fluorination catalysts are based on chromia for the vapour phase fluorination of alkenes and halocarbons with HF for the production of a wide range of fluorochemicals.

Explore

FORMOX 2.0

High pressure plants and catalysts - get 30% higher capacity with FORMOX 2.0

Explore

Choline chloride process

Our DAVY™ choline chloride technology includes a continuous single-stream process in which ethylene oxide, hydrochloric acid, trimethylamine (TMA) are reacted under moderate conditions to produce choline chloride.

Explore

Dehydrogenation technology

While various dehydrogenation pathways exist for different compounds, Johnson Matthey's DAVY™ technology focusses on alcohol dehydrogenation to yield an ester product.

Explore

Propylene glycol process

Our DAVY™ glycerol to propylene glycol (GPG) process is a perfect fit for our DAVY biodiesel process as the by-product, glycerol, can be fed to an adjoining GPG plant.

Explore

Oxo alcohols process

Johnson Matthey offers oxo-alcohol processes and a complete range of catalysts suitable for oxo-alcohol manufacture. The LP OxoSM technology is the world’s leading technology for use in the manufacture of oxo alcohols from olefins.

Explore

Ammonia synthesis catalysts

Johnson Matthey offers high-performance ammonia synthesis catalysts, including KATALCO™ series, ensuring long lifetimes and efficient ammonia production.

Explore

Secondary reforming catalysts

The range of KATALCO QUADRALOBE secondary reforming catalysts provide both high stability and high activity, allowing us to offer the best mix of activity, pressure drop and high temperature stability for your application.

Explore

CATACEL SSR catalyst for steam reforming

Johnson Matthey’s CATACEL SSR tailored catalyst technology is a proven high performance, direct replacement catalytic solution for producing hydrogen from natural gas through the steam reforming process.

Explore

High temperature shift catalysts

Read about our high temperature shift catalysts. Our latest high activity products are the result of extensive catalyst development in high temperature duties.

Explore

Low temperature shift catalysts

The latest products in our low temperature shift range combine high activity and poisons resistance with excellent selectivity to give low methanol by-product formation.

Explore

Methanation catalysts

Methanation is the reaction by which carbon oxides and hydrogen are converted to methane and water. The reaction is catalysed by nickel catalysts. In industry, there are two main uses for methanation, to purify synthesis gas (i.e. remove traces of carbon oxides) and to manufacture methane.

Explore

Other shift catalysts

Medium temperature shift (MTS) and isothermal shift (ITS) catalysts are becoming more common in use.

Explore

Pre-reforming catalysts

Johnson Matthey has a long legacy in pre-reforming catalysts dating back to the 1960s and offers the CRG series of catalysts.

Explore