How does chloride ion concentration compare given $1molL^-1$ solutions EACH of $NaCl$ , and $CaCl_2$ ?

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How does chloride ion concentration compare given $1molL^-1$ solutions EACH of $NaCl$ , and $CaCl_2$ ?

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Answer 1 · 2016-03-05T08:29:48

$"Concentration"$ $=$ $("Moles of Solute")/("Volume of Solution")$

Explanation:

Quite clearly, if I have 2 solutions, EACH WITH EQUAL CONCENTRATIONS of REAGENT, say $1$ $mol$ $L^-1$ , the solution of calcium chloride will have greater ionic strength than that of sodium chloride, in that $[NaCl]$ is $1$ $mol$ $L^-1$ with respect to $[Na^+]$ and $[Cl^-]$ , whereas $[CaCl_2]$ is $1$ $mol$ $L^-1$ with respect to $[Na^+]$ , BUT $2$ $mol$ $L^-1$ with respect to chloride $[Cl^-]$ . We deal with the number of solute particles.

I don't know how this relates to the tonicity of the spud. But if I report that the concentration of $CaCl_2$ is $1$ $mol$ $L^-1$ ; the $[Cl^-]$ concentration is $2$ $mol$ $L^-1$ .

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How does chloride ion concentration compare given $1molL^-1$ solutions EACH of $NaCl$ , and $CaCl_2$ ?

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How does chloride ion concentration compare given $1molL^-1$ solutions EACH of $NaCl$ , and $CaCl_2$ ?