Vendor: VeriSilicon Microelectronics (Shanghai) Co., Ltd. Category: LDO Voltage Regulator

SMIC 0.18µm 5v-3.3v/1.8v Power Regulator

Based on SMIC 0.18μm 3.3v/1.8v Logic process, this design of Low-Dropout (LDO) regulator is to provide both 3.3V and 1.8V supplie…

SMIC 180nm G Pre-Silicon View all specifications

Overview

Based on SMIC 0.18μm 3.3v/1.8v Logic process, this design of Low-Dropout (LDO) regulator is to provide both 3.3V and 1.8V supplies that are regulated from the single 5V input. The maximum output currents are both 200mA for 3.3v and 1.8v outputs.

Key features

  • Process: SMIC 0.18μm 3.3V/1.8V 1P5M/6M Logic process
  • (This IP can work in both generic 0.18um process & 0.153um shrink process without any design change.)
  • Input voltage: 2.7~5.5V
  • Regulated output voltage: 3.3V±8% (in regulation region); 1.8V±8%
  • Dropout voltage: max 250mV when IV33=200mA@VIN=2.7V Maximum output current: IV18max=200mA; IV33max =200mA
  • Standby current: ISB<120uA
  • Operating junction temperature: -40°C~+25°C~+125°C

Silicon Options

Foundry Node Process Maturity
SMIC 180nm G Pre-Silicon

Specifications

Identity

Part Number
SMIC18_PRG_15
Vendor
VeriSilicon Microelectronics (Shanghai) Co., Ltd.
Type
Silicon IP

Provider

Learn more about LDO Voltage Regulator IP core

The Tradeoffs of Low Dropout (LDO) Voltage Regulator Architectures and the Advantages of "Capless" LDOs

Power management of battery-powered electronic devices is becoming increasingly more important for the microelectronics industry. This white paper details the difference between low dropout (LDO) voltage regulators that use external output capacitors and those that do not, and how your system designs can benefit from not using an output capacitor. Well-designed capless LDO voltage regulators can have multiple benefits, and they are presented here.

Power Management for Internet of Things (IoT) System on a Chip (SoC) Development

There are many factors that must be considered when developing a custom System on a Chip (SoC) for Internet of Things (IoT) applications. Chief among these are the power management circuits on the die. Vidatronic offers this white paper to discuss these considerations and all of the various circuit blocks that can be found in this application. Vidatronic IP solutions are discussed and the benefits they bring to IoT SoC designers.

Tradeoffs of LDO Architectures and the Advantages of Advanced Architecture "Capless" LDOs

Power management of battery-powered electronic devices is becoming increasingly more important for the present and future microelectronics industry. This application note details the difference between low dropout (LDO) voltage regulators that use output capacitance and those that do not and how your system designs can benefit from or be improved by not using an output capacitor.

Introduction to Low Dropout (LDO) Linear Voltage Regulators

Linear voltage regulators are key components in any power-management system that requires a stable and ripple-free power supply. A subset of linear voltage regulators is a class of circuits known as low dropout (LDO) regulators. This paper explains the fundamentals of LDOs and introduces Vidatronic’s LDO technology which solves many of the known shortcomings of LDO circuits.

Frequently asked questions about LDO Voltage Regulator IP cores

What is SMIC 0.18µm 5v-3.3v/1.8v Power Regulator?

SMIC 0.18µm 5v-3.3v/1.8v Power Regulator is a LDO Voltage Regulator IP core from VeriSilicon Microelectronics (Shanghai) Co., Ltd. listed on Semi IP Hub. It is listed with support for smic Pre-Silicon.

How should engineers evaluate this LDO Voltage Regulator?

Engineers should review the overview, key features, supported foundries and nodes, maturity, deliverables, and provider information before shortlisting this LDO Voltage Regulator IP.

Can this semiconductor IP be compared with similar products?

Yes. Buyers can compare this product with similar semiconductor IP cores or IP families based on category, provider, process options, and structured technical specifications.

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