Active bootstrapped-supply generator
US-2024429816-A1 · Dec 26, 2024 · US
US2017054372A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2017054372-A1 |
| Application number | US-201615221902-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jul 28, 2016 |
| Priority date | Aug 20, 2015 |
| Publication date | Feb 23, 2017 |
| Grant date | — |
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An internal voltage trimming device and a semiconductor integrated circuit including the same are provided. The internal voltage trimming device includes a voltage dividing circuit configured to generate a feedback voltage based on a resistance of the voltage dividing circuit and a target voltage that is received in a trimming mode, and a comparator configured to compare a reference voltage and the feedback voltage to generate a comparison signal. The internal voltage trimming device further includes a direct current to direct current (DC-DC) converter configured to generate an internal voltage based on an input voltage and the comparison signal, and be disabled in the trimming mode, and an automatic trimming circuit configured to generate, in the trimming mode, a trimming signal based on the comparison signal. The voltage dividing circuit is further configured to adjust the resistance based on the trimming signal.
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What is claimed is: 1 . An internal voltage trimming device comprising: a voltage dividing circuit configured to generate a feedback voltage based on a voltage dividing ratio of the voltage dividing circuit and a target voltage of an output pad, the voltage dividing circuit comprising resistance devices that are configured to set the voltage dividing ratio; a comparator configured to compare a reference voltage and the feedback voltage, and generate a comparison signal based on the comparison; a direct current to direct current (DC-DC) converter configured to generate an internal voltage based on an input voltage and the comparison signal, and output the internal voltage to the output pad; and an automatic trimming circuit configured to generate, in a trimming mode, a trimming signal for reducing a difference between the reference voltage and the feedback voltage, based on the comparison signal, wherein, in the trimming mode, the DC-DC converter is further configured to be disabled, the target voltage is applied to the output pad, and the voltage dividing circuit is further configured to adjust the voltage dividing ratio based on the trimming signal. 2 . The internal voltage trimming device of claim 1 , wherein, in the trimming mode, the target voltage is generated and applied to the output pad by an external tester. 3 . The internal voltage trimming device of claim 1 , wherein the comparator comprises: a first input terminal configured to receive the reference voltage; a second input terminal connected to a feedback node, the second input terminal being configured to receive the feedback voltage; and an operation amplifier configured to generate the comparison signal based on a voltage difference between the first input terminal and the second input terminal. 4 . The internal voltage trimming device of claim 1 , wherein the resistance devices of the voltage dividing circuit are connected in a serial string between the output pad and a ground terminal, and the voltage dividing circuit further comprises switches respectively connected between nodes of the serial string and a feedback node, the switches being configured to be turned on based on the trimming signal. 5 . The internal voltage trimming device of claim 1 , wherein the resistance devices of the voltage dividing circuit are connected in a serial string between the output pad and a ground terminal, and the voltage dividing circuit further comprises a switch connected to one among the resistance devices in parallel, the switch being configured to be turned on based on the trimming signal. 6 . The internal voltage trimming device of claim 1 , wherein the DC-DC converter is further configured to set the internal voltage to be lower or higher than the input voltage based on the comparison signal. 7 . The internal voltage trimming device of claim 1 , wherein the DC-DC converter comprises: an oscillator configured to generate a pulse signal, and change at least one among a frequency and a duty cycle of the pulse signal based on the comparison signal; and a voltage pump circuit configured to boost the input voltage in response to the pulse signal to generate the internal voltage. 8 . The internal voltage trimming device of claim 1 , wherein the automatic trimming circuit is further configured to determine a final voltage dividing ratio of the voltage dividing circuit to be the voltage dividing ratio corresponding to the trimming signal in response to a change in a logic state of the comparison signal. 9 . The internal voltage trimming device of claim 1 , wherein the automatic trimming circuit comprises: a logical circuit configured to generate the trimming signal based on a logic state of the comparison signal; and a trimming determiner configured to determine a final voltage dividing ratio of the voltage dividing circuit to be the voltage dividing ratio corresponding to the trimming signal in response to the comparison signal changing from a first logic state to a second logic state. 10 . The internal voltage trimming device of claim 9 , wherein the trimming determiner is further configured to determine the final voltage dividing ratio to be a voltage dividing ratio corresponding to an (N−1)th trimming signal in response to the comparison signal changing from the second logic state to the first logic state, the trimming signal being an Nth trimming signal, and N being an integer of one or more. 11 . The internal voltage trimming device of claim 1 , further comprising a verifier configured to, in a verification mode, block the target voltage applied to the output pad, and determine at least one among the voltage dividing circuit, the comparator, and the DC-DC converter as defective in response to a change in a logical state of the comparison signal not occurring during an initial set time period during which the DC-DC converter is enabled. 12 . A semiconductor integrated circuit comprising: an internal voltage generating circuit configured to: generate, using a comparator, a comparison signal based on a difference between a reference voltage and a feedback voltage that is received from an output pad via a voltage dividing circuit; generate, using a direct current to direct current (DC-DC) converter, an internal voltage based on the comparison signal; and output the internal voltage to the output pad; an automatic trimming circuit configured to generate a trimming signal for adjusting a voltage dividing ratio of the voltage dividing circuit to reduce the difference between the reference voltage and the feedback voltage, based on the comparison signal; and a processor configured to: enable the automatic trimming circuit and disable the DC-DC converter in a trimming mode; and enable the DC-DC converter and disable the automatic trimming circuit in an operating mode, wherein the semiconductor integrated circuit applies a target voltage to the output pad in the trimming mode. 13 . The semiconductor integrated circuit of claim 12 , wherein the voltage dividing circuit comprises: a serial string of resistance devices connected between the output pad and a ground terminal; and switches respectively connected between nodes of the serial string and a feedback node, the switches being configured to be turned on based on the trimming signal, and the comparator comprises: a first input terminal configured to receive the reference voltage; a second input terminal connected to a feedback node, the second input terminal being configured to receive the feedback voltage; and an operation amplifier configured to generate the comparison signal based on a voltage difference between the first input terminal and the second input terminal. 14 . The semiconductor integrated circuit of claim 12 , wherein the automatic trimming circuit is further configured to: determine a final voltage dividing ratio of the voltage dividing circuit to be the voltage dividing ratio corresponding to the trimming signal in response to the comparison signal changing from a first logic state to a second logic state; and determine the final voltage dividing ratio to be a voltage dividing ratio corresponding to an (N−1)th trimming signal in response to the comparison signal changing from the second logic state to the first logic state, the trimming signal being an Nth trimming signal, and N being an integer of one or more. 15 . The semiconductor integrated circuit of claim 12 , wherein the processor is further configured to: enable the DC-DC converter and disable the automatic trimming circuit in a verification mode; and detect whether the i
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