The correct option is C (0,125]
Let log0.2x=t, x>0⋯(1)
For f(x) to be defined,
(log0.2x)3+(3log0.2x)(log0.2(0.2)4+log0.2x)+36≥0⇒t3+3t(t+4)+36≥0⇒t3+3t2+12t+36≥0⇒(t+3)(t2+12)≥0⇒t≥−3 (∵t2+12>0)⇒log0.2x≥−3⇒x≤(0.2)−3⇒x≤125⋯(2)
From (1) and (2), we get
x∈(0,125]