

Why do you think it does?C2 quickly recharges to the original value given by Vbat and the ratio of the values of the two capacitors.
Hi K.The voltages on C1 and C2 cannot decrease with time because both capacitors are still connected to a constant DC voltage source.
The problem with that is, when the MOSFET is OFF the full battery voltage is connected to the ADC input through the 10k resistor. Current will flow from the battery through 10k and the upper protection diode into the 3.3V supply
It doesn't, if the values you gave for battery voltage are correct.Output voltage must not exceed 3.3V or damage to the MCU may occur.