Linked from
The 42 pages that link to Green chemistry, each with the reason it gives.
Organic synthesisRelated: It evaluates synthetic routes by their environmental impact as well as their yield.
Organic chemistryRelated: It evaluates how organic synthesis can use safer reagents, solvents, and energy.
Chemical synthesisRelated: Its principles guide syntheses toward safer reagents, solvents, and waste profiles.
Chemical engineeringRelated: It shifts process design toward preventing pollution at its source.
Total synthesisRelated: It evaluates the environmental costs that can accompany elaborate synthetic routes.
Chemical industryRelated: It offers principles for reducing the sector’s environmental and health burdens at the design stage.
Chemical reactivityRelated: Controlling reactivity can reduce unwanted products, energy use, and hazardous reagents.
Chemical intermediateRelated: Choosing shorter routes and safer intermediates can reduce manufacturing hazards and waste.
TetrahydrofuranRelated: THF’s hazards and petroleum-derived supply motivate evaluation of safer solvents and renewable routes.
Enzyme engineeringRelated: Enzymes can enable selective reactions under milder, less wasteful conditions.
TerpenoidRelated: Sustainable terpenoid production must balance renewable feedstocks, yields, and processing impacts.
ChemistryRelated: It applies chemical knowledge to make synthesis and manufacturing less harmful.
FluorinationRelated: More selective, safer fluorination methods can reduce waste and hazardous reagent use.
Process intensificationRelated: Both approaches can reduce resource use, but green chemistry emphasizes chemical hazards and waste prevention.
Rare-earth separationRelated: It provides principles for reducing solvent use, energy demand, and toxic residues in separation.
Pollution preventionRelated: It applies prevention principles directly to chemical synthesis and product design.
Ryōji NoyoriRelated: Noyori emphasized catalytic efficiency and environmentally considerate synthesis in industrial chemistry.
Wacker processRelated: The process’s dependence on chlorinated salts and dilute aqueous streams raises process-efficiency questions.
Akira SuzukiRelated: Suzuki reactions often use relatively stable, less toxic organoboron reagents than several alternatives.
Paul SabatierRelated: Catalytic hydrogenation can improve material efficiency, though its benefits depend on energy and feedstocks.
ManganateRelated: Manganate chemistry offers routes to oxidation that can avoid some conventional reagents.
Potassium manganateRelated: Permanganate manufacture raises questions about manganese waste and process efficiency.
Yves ChauvinRelated: Metathesis can shorten synthetic routes and improve material efficiency, though its environmental impact depends on the process.
Divergent synthesisRelated: Shared intermediates may avoid repeated steps, although branching alone does not guarantee greener synthesis.
Frances ArnoldRelated: Engineered enzymes can enable selective reactions under milder conditions than many conventional processes.
Pharmaceutical engineeringRelated: Process choices can reduce solvent use, energy demand, and manufacturing waste.
Selenium dioxideRelated: SeO₂'s toxicity and selenium waste motivate safer oxidants and improved reaction design.
Appeal to natureRelated: It evaluates environmental and health impacts rather than assuming natural substances are preferable.
History of chemical engineeringRelated: Environmental pressures pushed the profession to prevent pollution at the process-design stage.
Propylene carbonateRelated: Propylene carbonate is considered in some formulations as a lower-volatility alternative to traditional solvents.
Solid acidRelated: Reusable solid acids can reduce corrosive liquid-acid handling and neutralization waste, though benefits depend on the process.
tert-Butyl alcoholRelated: Its use as a solvent can be assessed through solvent-selection principles and process impacts.