如图,\(∠C=90°\),\(AC=BC\),\(M\),\(N\)分别为\(BC\)和\(AB\)的中点,沿直线\(MN\)将\(\triangle BMN\)折起,使二面角\(B{'}-MN-B\)为\(60°\),则斜线\(B{'}A\)与平面\(ABC\)所成角的正切值为\((\:\:\:\:)\)
A. \( \dfrac { \sqrt {2}}{5}\)
B. \( \dfrac { \sqrt {3}}{5}\) C. \( \dfrac {4}{5}\) D. \( \dfrac {3}{5}\)
