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Lorico [155]
3 years ago
11

The standard gibbs free energy of formation of ________ is zero. (a) h2o (l) (b) fe (s) (c) i2 (s) a (a) only b (b) only c (c) o

nly d (b) and (c) e (a), (b), and (c)
Chemistry
1 answer:
Makovka662 [10]3 years ago
8 0
A is the answer to this question
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In an aqueous solution containing Mn(II) and Mn (IV) salts, which cation would you expect to be the more strongly hydrated
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In an aqueous solution containing Mn(II) and Mn (IV) salts, Mn (IV) cation is expected to be the more strongly hydrated.

A chemical event called hydration occurs when two substances interact with water. Since Mn (IV) has a stronger cation with a +4 charge than Mn (II), it will draw more oxygen ions from the Mn(II) in aqueous solution. Mn(IV) will consequently be more intensely hydrated.

Another reason for this is that Mn(IV) ions are often smaller than ions. Now, if we take a look at the element that significantly influences hydration, it is ion size. Therefore, the ion will be more hydrated if it is smaller.

So, In an aqueous solution containing Mn(II) and Mn (IV) salts, Mn (IV) cation is expected to be the more strongly hydrated.

Learn more about hydration here;

brainly.com/question/15724859

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