The effect of the specified change on the extent of hydrolysis of sodium nitrite is to be described. Concept introduction: Strong electrolyte ionizes completely in the solution when added to water. When an anion from a weak base is present in a solution, then it recombines with water to produce weak acid and hydroxide ions and forms a basic solution. This is known as ion hydrolysis. The reaction of the ion that takes place is: A − ( a q ) + H 2 O ( l ) ⇌ HA ( a q ) + OH − ( a q ) Here, A − is the ion thatforms the weak acid HA . The pH of this solution is determined by the OH − . According to Le Chatelier’s Principle, when a system at equilibrium is subjected to any change, then the system tries to undo the effect of that change by shifting its equilibrium in the desired direction.
The effect of the specified change on the extent of hydrolysis of sodium nitrite is to be described. Concept introduction: Strong electrolyte ionizes completely in the solution when added to water. When an anion from a weak base is present in a solution, then it recombines with water to produce weak acid and hydroxide ions and forms a basic solution. This is known as ion hydrolysis. The reaction of the ion that takes place is: A − ( a q ) + H 2 O ( l ) ⇌ HA ( a q ) + OH − ( a q ) Here, A − is the ion thatforms the weak acid HA . The pH of this solution is determined by the OH − . According to Le Chatelier’s Principle, when a system at equilibrium is subjected to any change, then the system tries to undo the effect of that change by shifting its equilibrium in the desired direction.
Solution Summary: The author describes the effect of the specified change on the extent of hydrolysis of sodium nitrite.
The effect of the specified change on the extent of hydrolysis of sodium nitrite is to be described.
Concept introduction:
Strong electrolyte ionizes completely in the solution when added to water.
When an anion from a weak base is present in a solution, then it recombines with water to produce weak acid and hydroxide ions and forms a basic solution. This is known as ion hydrolysis.
The reaction of the ion that takes place is:
A−(aq)+H2O(l)⇌HA(aq)+OH−(aq)
Here, A− is the ion thatforms the weak acid HA. The pH of this solution is determined by the OH−.
According to Le Chatelier’s Principle, when a system at equilibrium is subjected to any change, then the system tries to undo the effect of that change by shifting its equilibrium in the desired direction.
A common buffer for stabilizing antibodies is 100 mM Histidine at pH 7.0. Describe the preparation of this buffer beginning with L-Histidine monohydrochloride monohydrate and 1 M NaOH. Be certain to show the buffering reaction that includes the conjugate acid and base.
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Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell