Driver for slew-rate control of phase node in buck converter
A Buck converter includes: a first power switch coupled between a supply voltage node and a switching node, where the first power switch is configure to be controlled by a first control signal; a boot-strap capacitor, where a first terminal of the boot-strap capacitor is coupled to the switching node; a first buffer coupled between a first node and a control terminal of the first power switch; a first switch circuit coupled between the first node and a second terminal of the boot-strap capacitor, where the first switch circuit is controlled by the first control signal, and is configured to pass through a first charging current provided by the boot-strap capacitor when the first control signal is asserted; and a slew-rate control capacitor, where a first terminal of the slew-rate control capacitor is coupled to the first node.
1 . A switched-mode power supply (SMPS) comprising:
a high-side switch coupled between a supply voltage node and a switching node, wherein the high-side switch is configured to be controlled by a first control signal;
a low-side switch coupled between the switching node and a reference voltage node, wherein the low-side switch is configured to be controlled by a second control signal; and
a driver circuit for the high-side switch and the low-side switch, comprising:
a first buffer circuit coupled between a first node and a control terminal of the high-side switch;
a first switch circuit, wherein a control terminal of the first switch circuit is configured to receive the first control signal, an input terminal of the first switch circuit is coupled to a first power source, and an output terminal of the first switch circuit is coupled to the first node, wherein the first switch circuit is configured to output a first charging current provided by the first power source when the first control signal is asserted, wherein the first buffer circuit comprises a first transistor and a second transistor coupled in series between the input terminal of the first switch circuit and the switching node, wherein a control terminal of the first transistor is coupled to the first node, a control terminal of the second transistor is configured to receive the first control signal, and a node between the first transistor and the second transistor is coupled to the control terminal of the high-side switch;
a second buffer circuit coupled between a second node and a control terminal of the low-side switch;
a second switch circuit, wherein a control terminal of the second switch circuit is configured to receive the second control signal, an input terminal of the second switch circuit is coupled to a second power source, and an output terminal of the second switch circuit is coupled to the second node, wherein the second switch circuit is configured to output a second charging current provided by the second power source when the second control signal is asserted; and
a first slew-rate control capacitor, wherein a first terminal of the first slew-rate control capacitor is coupled to the first node.
2 . The SMPS of claim 1 , further comprising:
an inductor coupled between the switching node and an output terminal of the SMPS; and
a capacitor coupled between the output terminal of the SMPS and the reference voltage node.
3 . The SMPS of claim 1 , wherein the high-side switch and the low-side switch are N-type transistors, wherein the high-side switch and the low-side switch are configured to be switched ON and OFF alternately during operation of the SMPS.
4 . The SMPS of claim 3 , wherein a second terminal of the first slew-rate control capacitor is coupled to the second node.
5 . The SMPS of claim 4 , wherein a first ratio between a first value of the first charging current and a capacitance of the first slew-rate control capacitor is equal to a first pre-determined slew rate of a rising edge of a voltage of the switching node during switching of the SMPS, wherein a second ratio between a second value of the second charging current and the capacitance of the first slew-rate control capacitor is equal to a second pre-determined slew rate of a falling edge of the voltage of the switching node during the switching of the SMPS.
6 . The SMPS of claim 3 , wherein a second terminal of the first slew-rate control capacitor is coupled to the supply voltage node, wherein the driver circuit further comprises a second slew-rate control capacitor coupled between the second node and the switching node.
7 . The SMPS of claim 6 , wherein a first ratio between a first value of the first charging current and a capacitance of the first slew-rate control capacitor is equal to a first pre-determined slew rate of a rising edge of a voltage of the switching node during switching of the SMPS, wherein a second ratio between a second value of the second charging current and a capacitance of the second slew-rate control capacitor is equal to a second pre-determined slew rate of a falling edge of the voltage of the switching node during the switching of the SMPS.
8 . The SMPS of claim 3 , further comprising:
a first voltage divider coupled between the supply voltage node and the reference voltage node, wherein a second terminal of the first slew-rate control capacitor is coupled to an output terminal of the first voltage divider;
a second voltage divider coupled between the switching node and the reference voltage node; and
a second slew-rate control capacitor coupled between the second node and an output terminal of the second voltage divider.
9 . The SMPS of claim 1 , further comprising a boot-strap capacitor coupled between the switching node and the input terminal of the first switch circuit, wherein the boot-strap capacitor is the first power source, wherein the boot-strap capacitor is configured to provide the first charging current when the high-side switch is being turned ON, and is configured to be charged by a supply voltage when a voltage at the switching node is lower than the supply voltage.
10 . The SMPS of claim 9 , further comprising a supply generator configured to generate the supply voltage, wherein the supply generator is the second power source.
11 . The SMPS of claim 1 , wherein the second buffer circuit comprises a third transistor and a fourth transistor coupled in series between the input terminal of the second switch circuit and the reference voltage node, wherein a control terminal of the third transistor is coupled to the second node, a control terminal of the fourth transistor is configured to receive the second control signal, and a node between the third transistor and the fourth transistor is coupled to the control terminal of the low-side switch.
12 . A Buck converter comprising:
a high-side switch and a low-side switch coupled in series between a supply voltage node and a reference voltage node, wherein the high-side switch and the low-side switch are configured to be controlled by a first control signal and a second control signal, respectively;
a switching node between the high-side switch and the low-side switch;
a first buffer coupled between a first node and a control terminal of the high-side switch;
a first switch circuit, wherein a control terminal of the first switch circuit is configured to receive the first control signal, wherein when the first control signal is asserted, the first switch circuit is configured to pass through a first charging current provided by a first power source to the first node;
a second buffer coupled between a second node and a control terminal of the low-side switch;
a second switch circuit, wherein a control terminal of the second switch circuit is configured to receive the second control signal, wherein when the second control signal is asserted, the second switch circuit is configured to pass through a second charging current provided by a second power source to the second node;
a first slew-rate control capacitor, wherein a first terminal of the first slew-rate control capacitor is coupled to the first node, and a second terminal of the first slew-rate control capacitor is coupled to the supply voltage node; and
a second slew-rate control capacitor coupled between the second node and the switching node.
13 . The Buck converter of claim 12 , further comprising:
a boot-strap capacitor coupled between the switching node and the first switch circuit, wherein the boot-strap capacitor is the first power source, wherein the boot-strap capacitor is configured to be charged by a supply voltage when a voltage at the switching node is lower than the supply voltage; and
a supply generator configured to generate the supply voltage, wherein the supply generator is the second power source.
14 . A Buck converter comprising:
a first power switch coupled between a supply voltage node and a switching node, wherein the first power switch is configured to be controlled by a first control signal;
a second power switch coupled between the switching node and a reference voltage node, wherein the second power switch is configured to be controlled by a second control signal;
a boot-strap capacitor, wherein a first terminal of the boot-strap capacitor is coupled to the switching node;
a first buffer coupled between a first node and a control terminal of the first power switch;
a second buffer coupled between a second node and a control terminal of the second power switch;
a first switch circuit coupled between the first node and a second terminal of the boot-strap capacitor, wherein the first switch circuit is controlled by the first control signal, and is configured to pass through a first charging current provided by the boot-strap capacitor when the first control signal is asserted;
a first slew-rate control capacitor, wherein a first terminal of the first slew-rate control capacitor is coupled to the first node, and a second terminal of the first slew-rate control capacitor is coupled to the supply voltage node; and
a second slew-rate control capacitor coupled between the second node and the switching node.
15 . The Buck converter of claim 14 , further comprising:
a second switch circuit coupled between the second node and a power source, wherein the second switch circuit is controlled by the second control signal, and is configured to pass through a second charging current provided by the power source when the second control signal is asserted.
16 . The Buck converter of claim 15 , wherein the first buffer comprises a first transistor and a second transistor coupled in series between the second terminal of the boot-strap capacitor and the switching node, wherein a control terminal of the first transistor is coupled to the first node, a control terminal of the second transistor is configured to receive the first control signal, and a node between the first transistor and the second transistor is coupled to the control terminal of the first power switch.
17 . The Buck converter of claim 16 , wherein the second buffer comprises a third transistor and a fourth transistor coupled in series between the power source and the reference voltage node, wherein a control terminal of the third transistor is coupled to the second node, a control terminal of the fourth transistor is configured to receive the second control signal, and a node between the third transistor and the fourth transistor is coupled to the control terminal of the second power switch.