For any set $A\subset \Bbb R$ ,if $\{E_i\}$ is a sequence of disjoint measurable sets then show that $m^*(A\cap (\cup_{i=1}^\infty E_i))=\sum _{i=1}^\infty (m^*(A\cap E_i))$ where $m^*$ denotes Lebesgue Outer Measure.
I know that $m^*(A\cap (\cup _{i=1}^n E_i))=\sum_{i=1}^n m^*(A\cap E_i)$
Now $m^*(A\cap (\cup_{i=1}^\infty E_i))$
$=m^*(\cup_{i=1}^\infty (E_i\cap A))$
$=\underline{m^*(\lim _{n\to \infty } \cup_{i=1}^n(A\cap E_i))=\lim _{n\to \infty }(m^* \cup_{i=1}^n(A\cap E_i))}$
$=\lim _{n\to \infty } \sum_{i=1}^nm^*(A\cap E_i)=\sum _{i=1}^\infty (m^*(A\cap E_i))$
I don't know whether the underlined part is true or not as I have never come across such a result ,Kindly please check.
Please help.
First by countable subadditivity you have $$m^* \left( A \cap \bigcup_{i=1}^\infty E_i \right) = m^* \left( \bigcup_{i=1}^\infty (A \cap E_i) \right) \le \sum_{i=1}^\infty m^*(A \cap E_i).$$
Next observe that if $E$ and $F$ are disjoint and measurable, then for any set $A$ you have $$m^*(A \cap (E \cup F)) = m^*(A \cap (E \cup F) \cap E) + m^*(A \cap (E \cup F) \setminus E) = m^*(A \cap E) + m^*(A \cap F).$$ An induction argument extends this to any finite number of measurable sets. In particular $$ m^*\left(A \cap \bigcup_{i=1}^k E_i \right) =\sum_{i=i}^k m^*(A \cap E_i)$$ for every $k$ since the $E_i$ are measurable. By monotonicity you get $$\sum_{i=i}^k m^*(A \cap E_i)\le m^*\left(A \cap \bigcup_{i=1}^\infty E_i \right) $$ for all $k$. Now let $k \to \infty$ to find $$\sum_{i=i}^\infty m^*(A \cap E_i) \le m^*\left(A \cap \bigcup_{i=1}^\infty E_i \right).$$