1.A natural number has prime factorization given by n=2y⋅35⋅5zn = 2^y \cdot 3^5 \cdot 5^zn=2y⋅35⋅5z, where yyy and zzz are such that y+z=5y + z = 5y+z=5 and y2+z2=17y^2 + z^2 = 17y2+z2=17, y>zy > zy>z. Then the number of odd divisors of nnn, including 1, is:a.12b.6c.11d.60Login to continueOnly logged in users canattempt or see the solution.