The problem is not asking for the output voltage of the half wave rectifier.
It's asking for the reverse minimum voltage rating of the diode. The voltage rating of the diode is how much voltage it can be subjected to without failing or becoming damaged.
You have to calculate what the maximum voltage is across the diode during the entire period of the input AC voltage signal (from zero to +Vpeak, back to zero, to -Vpeak, and back to zero).
In order to use a diode in this circuit, the diode will have to be rated for a "minimum" of this value, meaning as long as the voltage rating of the diode is equal to, or greater than, the most voltage it will see during the entire period of the input signal, the diode can be used in the circuit without being damaged.
During the positive AC voltage input cycle, the diode is forward biased, closed, and the capacitor is charged to a voltage equal to the peak voltage of the AC voltage input.
During the negative AC voltage input cycle, the diode is reverse biased, open circuited, and the capacitor is now discharging a voltage amount equal to the same peak voltage value of the AC input signal that it was previously charged to.
During this time when the diode is reverse biased and open circuited, the voltage across the open circuit of the diode will be equal to the sum of the peak voltage of the AC input signal in series with the peak voltage discharge of the capacitor:
The peak voltage of the AC input signal is √2 times the RMS value.
The peak voltage discharge of the capacitor is equal to the same value because it was charged to the peak voltage of the AC input signal during the previous positive input cycle of the AC input when the diode was forward biased and closed.
The AC input shown on the left has the voltage polarity reversed with the negative reference on top and the positive reference on the bottom because the circuit it shown during the second half the AC input period when the voltage is going from zero, to the negative peak value, and back to zero which in turn results in the diode being reverse biased and the capacitor discharging.
This is the most voltage (in absolute value terms) that the diode will see during the course of one period of the AC input signal. After one period, the process just repeats itself.
