Programmable gate voltage for on resistance control of power module
Semiconductor devices, systems and methods are described. A semiconductor device can include a driver configured to output a gate current to drive a power module. The semiconductor device can further include a buffer configured to buffer a reference voltage that is less than a supply voltage being provided to the driver. The semiconductor device can further include a controller configured to determine a gate voltage of the power module is equivalent to the reference voltage. The controller can, in response to determination that the gate voltage is equivalent to the reference voltage, disable the driver to cause the driver to stop providing the gate current to the power module and enable the buffer to supply the reference voltage to the power module.
1 . A semiconductor device comprising:
a driver configured to output a gate voltage to drive a power module;
a buffer configured to buffer a reference voltage that is less than a supply voltage being provided to the driver; and
a controller configured to:
determine the gate voltage is equivalent to the reference voltage; and
in response to determination that the gate voltage is equivalent to the reference voltage:
disable the driver to cause the driver to stop providing the gate voltage to the power module; and
enable the buffer to supply the reference voltage to the power module to maintain the gate voltage of the power module at the reference voltage while the driver is disabled.
2 . The semiconductor device of claim 1 , further comprising a reference voltage generator configured to:
generate the reference voltage; and
provide the reference voltage to the buffer.
3 . The semiconductor device of claim 1 , further comprising a comparator configured to:
compare the gate voltage with the reference voltage; and
output a voltage difference between the gate voltage and the reference voltage to the controller,
wherein the controller is configured to use the voltage difference to determine the gate voltage is equivalent to the reference voltage.
4 . The semiconductor device of claim 1 , wherein the controller is configured to determine that the gate voltage is equivalent to the reference voltage during a transition from an off state of the power module to an on state of the power module.
5 . The semiconductor device of claim 1 , wherein the controller is configured to:
detect a fault condition;
determine that the power module is in an off state;
in response to detection of the fault condition and determination that the power module is in the off state:
control the driver to increase the gate voltage;
determine the gate voltage is increased to the reference voltage;
in response to determination that the gate voltage is increased to the reference voltage:
disable the driver to cause the driver to stop providing the gate voltage to the power module; and
enable the buffer to supply the reference voltage to the power module to turn on the power module.
6 . The semiconductor device of claim 1 , wherein the controller is configured to:
detect a fault condition;
determine that the power module is in an on state;
in response to detection of the fault condition and determination that the power module is in the on state:
control the driver to decrease the gate voltage;
determine the gate voltage is decreased to the reference voltage;
in response to determination that the gate voltage is decreased to the reference voltage:
disable the driver to cause the driver to stop providing the gate voltage to the power module; and
enable the buffer to supply the reference voltage to the power module to maintain the power module in the on state.
7 . The semiconductor device of claim 1 , wherein the reference voltage is greater than a threshold voltage of the power module.
8 . The semiconductor device of claim 1 , wherein the reference voltage is programmable based on a target on resistance of the power module.
9 . A system comprising:
a first controller configured to generate a control signal;
a power module;
a gate driver configured to drive the power module according to the control signal, the gate driver comprising:
a driver configured to output a gate voltage to drive the power module;
a buffer configured to buffer a reference voltage that is less than a supply voltage being provided to the driver; and
a second controller configured to:
determine the gate voltage is equivalent to the reference voltage; and
in response to determination that the gate voltage is equivalent to the reference voltage:
disable the driver to cause the driver to stop providing the gate voltage to the power module; and
enable the buffer to supply the reference voltage to the power module to maintain the gate voltage of the power module at the reference voltage while the driver is disabled.
10 . The system of claim 9 , wherein the gate driver further comprises a reference voltage generator configured to:
generate the reference voltage; and
provide the reference voltage to the buffer.
11 . The system of claim 9 , wherein the gate driver further comprises a comparator configured to:
compare the gate voltage with the reference voltage; and
output a voltage difference between the gate voltage and the reference voltage to the second controller,
wherein the second controller is configured to use the voltage difference to determine the gate voltage is equivalent to the reference voltage.
12 . The system of claim 9 , wherein the second controller is configured to determine that the gate voltage is equivalent to the reference voltage during a transition from an off state of the power module to an on state of the power module.
13 . The system of claim 9 , wherein the second controller is configured to:
detect a fault condition of the system;
determine that the power module is in an off state;
in response to detection of the fault condition and determination that the power module is in the off state:
control the driver to increase the gate voltage;
determine the gate voltage is increased to the reference voltage;
in response to determination that the gate voltage is increased to the reference voltage:
disable the driver to cause the driver to stop providing the gate voltage to the power module; and
enable the buffer to supply the reference voltage to the power module to turn on the power module.
14 . The system of claim 9 , wherein the second controller is configured to:
detect a fault condition of the system;
determine that the power module is in an on state;
in response to detection of the fault condition and determination that the power module is in the on state:
control the driver to decrease the gate voltage;
determine the gate voltage is decreased to the reference voltage;
in response to determination that the gate voltage is decreased to the reference voltage:
disable the driver to cause the driver to stop providing the gate voltage to the power module; and
enable the buffer to supply the reference voltage to the power module to maintain the power module in the on state.
15 . The system of claim 9 , wherein the reference voltage is greater than a threshold voltage of the power module.
16 . The system of claim 9 , wherein the reference voltage is programmable based on a target on resistance of the power module.
17 . A method comprising:
outputting, by a gate driver, a gate voltage to drive a power module;
determining, by the gate driver, the gate voltage is equivalent to a reference voltage that is less than a supply voltage being provided to the gate driver; and
in response to determining that the gate voltage is equivalent to the reference voltage:
disabling, by the gate driver, the output of the gate voltage to the power module; and
supplying, by the gate driver, the reference voltage to the power module to maintain the gate voltage of the power module at the reference voltage while the output of the gate voltage is disabled.
18 . The method of claim 17 , wherein determining the gate voltage is equivalent to the reference voltage comprises:
comparing, by the gate driver, the gate voltage with the reference voltage; and
generating, by the gate driver, a voltage difference between the gate voltage and the reference voltage; and
using, by the gate driver, the voltage difference to determine the gate voltage is equivalent to the reference voltage.
19 . The method of claim 17 , wherein the reference voltage is greater than a threshold voltage of the power module.
20 . The method of claim 17 , wherein the reference voltage is programmable based on a target on resistance of the power module.