Linked from
The 68 pages that link to Catalysis, each with the reason it gives.
Chemical bondRelated: Catalysts alter the pathways and energetic costs of breaking and forming bonds.
Chemical kineticsRelated: Catalysts change reaction pathways and lower kinetic barriers without changing equilibrium.
Thermal decompositionCompared with: A catalyst can lower the energy barrier, while heat is the defining trigger here.
Chemical reactionRelated: Catalysts provide alternative pathways with lower activation barriers.
Transition stateRelated: Catalysts accelerate reactions by providing pathways with lower-energy transition states.
Organic synthesisRelated: Catalysts can improve reaction rates, selectivity, and resource efficiency.
Transition metalRelated: Transition metals can bind reactants and access changing oxidation states along reaction pathways.
Organic chemistryRelated: Catalysts make many organic reactions faster, more selective, or possible under milder conditions.
Activation energyRelated: Catalysts provide pathways with lower activation barriers.
Green chemistryRelated: Catalysts can improve selectivity and reduce reagent, energy, and waste demands.
Density functional theoryRelated: Surface calculations use density functional theory to compare catalytic reaction steps and binding energies.
Le Chatelier's principleCompared with: A common misconception: catalysts speed both directions equally and never shift an equilibrium.
Heterogeneous catalysisNarrower topic: Heterogeneous catalysis is one broad mode of the general catalytic phenomenon.
Reaction mechanismRelated: A catalyst changes the available mechanism by providing a pathway with a lower activation barrier.
AbiogenesisRelated: Catalysts could make prebiotic reaction networks fast and selective enough to persist.
NickelNarrower topic: Nickel surfaces catalyze hydrogenation and other reactions by binding and activating reactants.
BASFRelated: BASF makes catalysts for chemical manufacturing and emissions control.
Jöns Jacob BerzeliusRelated: Berzelius coined the term for the action he called catalytic force.
ChemoselectivityNarrower topic: Catalysts can alter relative reaction rates and redirect chemoselectivity.
Surface scienceNarrower topic: Surface science supplies molecular explanations for how solid catalysts bind and transform reactants.
Chemical industryRelated: Catalysts make many industrial reactions faster, more selective, and less energy-intensive.
Chemical reactivityRelated: Catalysts change reaction pathways and rates without changing the reactants’ identities.
Chemical recyclingRelated: Catalysts can steer breakdown reactions toward chosen products and milder conditions.
Asymmetric catalysisNarrower topic: Asymmetric catalysis is a selective form of this broader process.
Manganese dioxideNarrower topic: Manganese dioxide catalyzes reactions including hydrogen peroxide decomposition and oxidation.
Contact processNarrower topic: The process depends on a catalyst to make sulfur dioxide oxidation practical.
PeroxidesRelated: Metal ions and enzymes can accelerate peroxide decomposition or redirect its reactions.
Surface-area-to-volume ratioRelated: Porous catalysts expose large active surface areas relative to the amount of material.
Wilhelm OstwaldRelated: Ostwald investigated catalysts and helped give catalysis a quantitative foundation.
Chemical decompositionRelated: Catalysts can accelerate decomposition without being consumed in the overall reaction.
Chemical inertnessRelated: Catalysts can make reactions proceed even when uncatalyzed pathways are too slow to detect.
ChemistryRelated: Catalysts change reaction pathways and rates without being consumed overall.
IsomerizationNarrower topic: Catalysts lower barriers for many isomerizations without changing their equilibrium.
RhodiumNarrower topic: Rhodium surfaces and complexes speed reactions by providing alternative pathways.
AcrylonitrileNarrower topic: Catalysts enable selective, efficient conversion of propylene into acrylonitrile.
Atom economyRelated: Catalysis can enable pathways with fewer unwanted products and improved material efficiency.
Collision theoryNarrower topic: Catalysts provide pathways with lower energy barriers, making more collisions effective.
d-blockNarrower topic: Accessible oxidation states and binding sites make many d-block elements effective catalysts.
ChemisorptionRelated: Chemisorption can bind reactants to catalytic surfaces and alter reaction rates.
PhysisorptionRelated: Catalytic surface reactions often involve chemisorption, unlike adsorption that remains purely physical.
Rate-determining stepRelated: Catalysts change pathway barriers and can shift which step controls turnover.
Noble metalRelated: Gold, platinum, and palladium catalyze reactions while resisting destructive chemical change.
Organic reactionRelated: Catalysts offer alternative pathways that can change rates and product selectivity.
Reversible reactionRelated: A catalyst speeds both directions and does not change the equilibrium composition.
Wacker processNarrower topic: Palladium and copper are regenerated through linked catalytic cycles.
Carborane acidNarrower topic: Strong, minimally coordinating proton donors can initiate or promote acid-catalyzed transformations.
Karl ZieglerNarrower topic: Metal-containing catalysts enabled Ziegler’s selective polymer-forming reactions.
Paul SabatierNarrower topic: Sabatier’s work helped make catalytic methods central to modern chemical synthesis.
Group 10 elementRelated: Nickel, palladium, and platinum surfaces and compounds catalyze many industrial reactions.
NanostructuresRelated: Nanostructures can expose many reactive surface sites per unit mass.