The correct option is B (−∞,0)∪(12,∞)
x<2⇒x∈(−∞,2)
→1/x is not defined for x=0
∴ whenever 0 lies in the interval while taking the reciprocal, we break it into two parts such that 0 can be excluded.
∴1x only defined for (−∞,2)−{0}=(−∞,0)∪(0,2)
→x∈(−∞,0)⇒1x∈(−∞,0)
→x∈(0,2)⇒1x∈(12,∞)
⇒1x∈(−∞,0)∪(12,∞)