Vendor: V-Trans Microelectronics Category: PLL

PLL general purpose / DDR memory, 50-500Mhz, 4 phases (0/90/180/270)

The VT18PLL500 is a macro cell for clock generation.

Overview

The VT18PLL500 is a macro cell for clock generation.
The output frequency is adjustable from 50 to 500MHz.
It is a fully integrated PLL based clock generator with a phase frequency detector (PFD), a low pass filter (LPF), a voltage controlled oscillator (VCO), and supporting circuitry such as fully programmable dividers. It is used for multiplication of stable clock source such as crystal oscillators.
Layout structure uses 1P4M (1poly and 4metal layers)
Layout does not use any special mask layer. (MIM or deep-Nwell layers are not required).

Key features

  • 50 to 500Mhz output frequency
  • 4 phases 0,90,180 &270 even in bypass mode
  • 1P4M layout structure based on 0.18um 1P5M or 1P6M 1.8V logic process
  • Single power supply 1.8V±10%, -40/+125°C
  • Compact Die Size: [contact us]
  • 50% duty cycle output.
  • Low jitter
  • Antenna diodes on each digital input.

What’s Included?

  • Design Kit includes:
    • LEF view and abstract gdsII
    • Verilog HDL behavioral model
    • Liberty (.lib) timing constraints for typical, worse and best corner case
    • Full Datasheet /Application Note with integration guidelines document
    • Silicon characterization report when available
  • Tapeout kit includes the design kit plus plysical view:
    • gdsII
    • LVS netlist and report
    • DRC/ERC/ESD/ANT report

Specifications

Identity

Part Number
VT18PLL500
Vendor
V-Trans Microelectronics
Type
Silicon IP

Provider

Learn more about PLL IP core

Creating a Frequency Plan for a System using a PLL

How do you ensure that every part of a system receives the clock it needs—without wasting power or sacrificing performance? The answer lies in creating a well-structured frequency plan built around a PLL.

Specifying a PLL Part 3: Jitter Budgeting for Synthesis

This white paper is aimed at system architects and physical implementation leaders working on the design of SoCs. It can be confusing to understand the impact of different jitter sources and how to calculate a jitter budget when specifying a digital system. This white paper explains how jitter changes the period of a clock and how to ensure that jitter has correctly been accounted for in the calculations for timing closure.

Specifying a PLL Part 2: Jitter Basics

This article explains a some of the key terminology and parameters commonly used to describe jitter. It will also help clarify the most important parameters for a some PLL applications, allowing the designer to better understand what is required from a PLL.

Specifying a PLL Part 1: Calculating PLL Clock Spur Requirements from ADC or DAC SFDR

In high end RF systems, such as 5G radios, the requirements are so stringent that the source of this strongest unwanted tone can be the PLL. This article outlines how spurs in the input clock to the ADC or DAC may limit the SFDR. This in turn will set the requirements for the spurs for the input clock (from a PLL), in order to achieve a specific SFDR.

Achieving Groundbreaking Performance with a Digital PLL

This article compares analog, first-generation digital, and second-generation digital PLLs. It evaluates which type of PLL may be best in which situation. It further discloses a roadmap into other application areas, including general purpose / logic clocking, and regular low-jitter PLLs.

Frequently asked questions about PLL IP cores

What is PLL general purpose / DDR memory, 50-500Mhz, 4 phases (0/90/180/270)?

PLL general purpose / DDR memory, 50-500Mhz, 4 phases (0/90/180/270) is a PLL IP core from V-Trans Microelectronics listed on Semi IP Hub.

How should engineers evaluate this PLL?

Engineers should review the overview, key features, supported foundries and nodes, maturity, deliverables, and provider information before shortlisting this PLL 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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