No, HI is very strong. In solution it will undergo complete dissociation, so it will only consist of H+ ions and I- ions. This makes it very electrolytic, and therefore a strong acid.
Weak electrolytes in a solution can be identified by observing their low conductivity compared to strong electrolytes. Weak electrolytes only partially dissociate into ions in solution, resulting in lower conductivity. Conductivity measurements or observing the degree of dissociation can help identify weak electrolytes.
Strong electrolytes completely dissociate into ions in solution, resulting in a high conductivity, while weak electrolytes only partially dissociate, leading to lower conductivity. Conductivity measurements or observing the extent of dissociation can help differentiate between strong and weak electrolytes.
One can determine the difference between strong and weak electrolytes based on their ability to conduct electricity in a solution. Strong electrolytes completely dissociate into ions, leading to high conductivity, while weak electrolytes only partially dissociate, resulting in lower conductivity.
Strong electrolytes completely dissociate into ions in solution, allowing them to conduct electricity very well. Weak electrolytes only partially dissociate into ions, resulting in lower conductivity compared to strong electrolytes.
Ammonium hydroxide is a weak base and can dissociate into ammonium ions (NH4+) and hydroxide ions (OH-) in solution, making it a weak electrolyte. It conducts electricity to a limited extent compared to strong electrolytes like strong acids and bases.
Weak electrolytes in a solution can be identified by observing their low conductivity compared to strong electrolytes. Weak electrolytes only partially dissociate into ions in solution, resulting in lower conductivity. Conductivity measurements or observing the degree of dissociation can help identify weak electrolytes.
weak acids/bases.
Weak electrolyte
Weak electrolytes are substances that partially dissociate into ions in water, resulting in a low conductivity compared to strong electrolytes. They include weak acids, weak bases, and some salts. Weak electrolytes do not completely ionize in solution, leading to a reversible reaction dynamic.
weak electrolytes gives weak value of pH scale.
Strong electrolytes completely dissociate into ions in solution, resulting in a high conductivity, while weak electrolytes only partially dissociate, leading to lower conductivity. Conductivity measurements or observing the extent of dissociation can help differentiate between strong and weak electrolytes.
One can determine the difference between strong and weak electrolytes based on their ability to conduct electricity in a solution. Strong electrolytes completely dissociate into ions, leading to high conductivity, while weak electrolytes only partially dissociate, resulting in lower conductivity.
Strong electrolytes completely dissociate into ions in solution, allowing them to conduct electricity very well. Weak electrolytes only partially dissociate into ions, resulting in lower conductivity compared to strong electrolytes.
They do not completely dissociate in water.
Ammonium hydroxide is a weak base and can dissociate into ammonium ions (NH4+) and hydroxide ions (OH-) in solution, making it a weak electrolyte. It conducts electricity to a limited extent compared to strong electrolytes like strong acids and bases.
Strong electrolytes completely dissociate into ions in solution, leading to high conductivity, while weak electrolytes only partially dissociate, resulting in lower conductivity.
Strong electrolytes completely dissociate into ions in solution and are good conductors of electricity, while weak electrolytes only partially dissociate and are poor conductors of electricity.