Linked from
The 108 pages that link to Hydrolysis, each with the reason it gives.
Calcium sulfideRelated: Moisture can convert calcium sulfide into calcium-containing products while releasing hydrogen sulfide.
Ellagic acidRelated: Hydrolysis of ellagitannins can release ellagic acid from plant material.
FormamideRelated: Acidic or basic hydrolysis converts formamide into formic acid or formate and ammonia or ammonium.
Gold(III) chlorideRelated: Water converts AuCl₃ into hydrolyzed gold species and can produce hydrochloric acid.
Isocyanic acidRelated: Water converts HNCO into products including ammonia and carbon dioxide.
Lithium hydrideRelated: Water reacts with LiH to produce lithium hydroxide and hydrogen gas.
Methyl acetateRelated: Water can split methyl acetate into methanol and acetic acid.
Methyl formateRelated: Water can split methyl formate into methanol and formic acid.
Methyl isocyanateRelated: Water can react with methyl isocyanate, affecting its fate in spills and biological tissues.
Tin(II) chlorideRelated: Water can hydrolyze tin(II) chloride, producing basic tin salts unless the solution is acidified.
Titanium tetrachlorideRelated: Moisture rapidly hydrolyzes TiCl₄, releasing hydrogen chloride and forming hydrated titanium oxides.
Antimony trichlorideRelated: Water hydrolyzes SbCl₃, producing antimony oxychloride and hydrogen chloride.
Beryllium chlorideRelated: Water reacts readily with BeCl₂, making the compound moisture-sensitive.
Beryllium hydroxideRelated: Beryllium ions interact strongly with water, influencing aqueous acidity and speciation.
Iron(III) nitrateRelated: Hydrated Fe³⁺ ions acidify water through hydrolysis.
Oxygen difluorideRelated: Water rapidly consumes OF₂, forming hydrogen fluoride and oxygen.
Potassium alumRelated: Aluminum ions hydrolyze in water, producing species involved in particle removal.
Silicon tetrachlorideRelated: Moisture rapidly converts SiCl₄ into silica and hydrogen chloride.
Sodium sulfideRelated: Sulfide ions react with water, making sodium sulfide solutions strongly alkaline.
Tin(IV) chlorideRelated: Water converts tin(IV) chloride into hydrolyzed tin species and hydrogen chloride.
Aluminium carbideRelated: Water decomposes aluminium carbide, forming methane and aluminium hydroxide.
Aluminium nitrateRelated: Hydrated Al³⁺ acidifies aqueous solutions by transferring protons to water.
Aluminium phosphideRelated: Moisture hydrolyzes aluminium phosphide and produces phosphine.
Aluminium triacetateRelated: Aluminium ions react with water, affecting the salt’s aqueous speciation and acidity.
Ammonium acetateRelated: Ammonium and acetate can each react with water after dissolution.
Carbonyl sulfideRelated: Reaction with water converts carbonyl sulfide into hydrogen sulfide and carbon dioxide.
Chlorosulfuric acidRelated: Moisture rapidly hydrolyzes chlorosulfuric acid, releasing heat and corrosive products.
Dichlorine monoxideRelated: Water converts Cl₂O into hypochlorous acid, linking the oxide to aqueous chlorine chemistry.
DiphosphaneRelated: Hydrolysis of phosphide materials is one route by which diphosphane-containing mixtures arise.
Lithium borohydrideRelated: Water reacts with LiBH₄, consuming the salt and generating hydrogen-containing products.
Magnesium sulfideRelated: MgS reacts with water to produce magnesium hydroxide and hydrogen sulfide.
Sodium metaborateRelated: Borate species in aqueous solution exchange protons with water and establish pH-dependent equilibria.
Sodium metasilicateRelated: Dissolved metasilicate forms alkaline solutions through reactions involving water.
Sulfur dichlorideRelated: Moisture rapidly reacts with sulfur dichloride, producing sulfur-containing and hydrogen chloride products.
ThermolabileRelated: Heat can accelerate hydrolysis, one route by which susceptible substances are altered.