Xilinx XC2C256-5FT256C
Xilinx XC2C256-5FT256C
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Xilinx XC2C256-5FT256C

1mm CPLD 256 Pin

Manufacturer No:

XC2C256-5FT256C

Manufacturer:

Xilinx

Utmel No:

2773-XC2C256-5FT256C

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-

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Description:

1mm PMIC 256 Pin 1.8V

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XC2C256-5FT256C information

Specifications
Product Details
Xilinx XC2C256-5FT256C technical specifications, attributes, parameters and parts with similar specifications to Xilinx XC2C256-5FT256C.
  • Type
    Parameter
  • Surface Mount

    having leads that are designed to be soldered on the side of a circuit board that the body of the component is mounted on.

    YES
  • Number of Pins
    256
  • Frequency(Max)
    268MHz
  • Number of I/Os
    184
  • JESD-609 Code

    The "JESD-609 Code" in electronic components refers to a standardized marking code that indicates the lead-free solder composition and finish of electronic components for compliance with environmental regulations.

    e0
  • Moisture Sensitivity Level (MSL)

    Moisture Sensitivity Level (MSL) is a standardized rating that indicates the susceptibility of electronic components, particularly semiconductors, to moisture-induced damage during storage and the soldering process, defining the allowable exposure time to ambient conditions before they require special handling or baking to prevent failures

    3 (168 Hours)
  • Number of Terminations
    256
  • Terminal Finish

    Terminal Finish refers to the surface treatment applied to the terminals or leads of electronic components to enhance their performance and longevity. It can improve solderability, corrosion resistance, and overall reliability of the connection in electronic assemblies. Common finishes include nickel, gold, and tin, each possessing distinct properties suitable for various applications. The choice of terminal finish can significantly impact the durability and effectiveness of electronic devices.

    Tin/Lead (Sn63Pb37)
  • Max Operating Temperature

    The Maximum Operating Temperature is the maximum body temperature at which the thermistor is designed to operate for extended periods of time with acceptable stability of its electrical characteristics.

    70°C
  • Min Operating Temperature

    The "Min Operating Temperature" parameter in electronic components refers to the lowest temperature at which the component is designed to operate effectively and reliably. This parameter is crucial for ensuring the proper functioning and longevity of the component, as operating below this temperature may lead to performance issues or even damage. Manufacturers specify the minimum operating temperature to provide guidance to users on the environmental conditions in which the component can safely operate. It is important to adhere to this parameter to prevent malfunctions and ensure the overall reliability of the electronic system.

    0°C
  • Terminal Position

    In electronic components, the term "Terminal Position" refers to the physical location of the connection points on the component where external electrical connections can be made. These connection points, known as terminals, are typically used to attach wires, leads, or other components to the main body of the electronic component. The terminal position is important for ensuring proper connectivity and functionality of the component within a circuit. It is often specified in technical datasheets or component specifications to help designers and engineers understand how to properly integrate the component into their circuit designs.

    BOTTOM
  • Terminal Form

    Occurring at or forming the end of a series, succession, or the like; closing; concluding.

    BALL
  • Peak Reflow Temperature (Cel)

    Peak Reflow Temperature (Cel) is a parameter that specifies the maximum temperature at which an electronic component can be exposed during the reflow soldering process. Reflow soldering is a common method used to attach electronic components to a circuit board. The Peak Reflow Temperature is crucial because it ensures that the component is not damaged or degraded during the soldering process. Exceeding the specified Peak Reflow Temperature can lead to issues such as component failure, reduced performance, or even permanent damage to the component. It is important for manufacturers and assemblers to adhere to the recommended Peak Reflow Temperature to ensure the reliability and functionality of the electronic components.

    240
  • Supply Voltage

    Supply voltage refers to the electrical potential difference provided to an electronic component or circuit. It is crucial for the proper operation of devices, as it powers their functions and determines performance characteristics. The supply voltage must be within specified limits to ensure reliability and prevent damage to components. Different electronic devices have specific supply voltage requirements, which can vary widely depending on their design and intended application.

    1.8V
  • Terminal Pitch

    The center distance from one pole to the next.

    1mm
  • Time@Peak Reflow Temperature-Max (s)

    Time@Peak Reflow Temperature-Max (s) refers to the maximum duration that an electronic component can be exposed to the peak reflow temperature during the soldering process, which is crucial for ensuring reliable solder joint formation without damaging the component.

    30
  • Pin Count

    a count of all of the component leads (or pins)

    256
  • Operating Supply Voltage

    The voltage level by which an electrical system is designated and to which certain operating characteristics of the system are related.

    1.8V
  • Supply Voltage-Max (Vsup)

    The parameter "Supply Voltage-Max (Vsup)" in electronic components refers to the maximum voltage that can be safely applied to the component without causing damage. It is an important specification to consider when designing or using electronic circuits to ensure the component operates within its safe operating limits. Exceeding the maximum supply voltage can lead to overheating, component failure, or even permanent damage. It is crucial to adhere to the specified maximum supply voltage to ensure the reliable and safe operation of the electronic component.

    1.9V
  • Temperature Grade

    Temperature grades represent a tire's resistance to heat and its ability to dissipate heat when tested under controlled laboratory test conditions.

    COMMERCIAL
  • Propagation Delay

    the flight time of packets over the transmission link and is limited by the speed of light.

    5 ns
  • Turn On Delay Time

    Turn-on delay, td(on), is the time taken to charge the input capacitance of the device before drain current conduction can start.

    5 ns
  • Organization

    In the context of electronic components, the parameter "Organization" typically refers to the arrangement or structure of the internal components within a device or system. It can describe how various elements such as transistors, resistors, capacitors, and other components are physically arranged and interconnected on a circuit board or within a semiconductor chip.The organization of electronic components plays a crucial role in determining the functionality, performance, and efficiency of a device. It can impact factors such as signal propagation, power consumption, thermal management, and overall system complexity. Engineers carefully design the organization of components to optimize the operation of electronic devices and ensure reliable performance.Different types of electronic components may have specific organizational requirements based on the intended application and design considerations. For example, integrated circuits may have a highly compact and intricate organization to maximize functionality within a small footprint, while larger electronic systems may have a more modular and distributed organization to facilitate maintenance and scalability.

    0 DEDICATED INPUTS, 184 I/O
  • Programmable Logic Type

    Generally, programmable logic devices can be described as being one of three different types: Simple programmable logic devices (SPLD) Complex programmable logic devices (CPLD) Field programmable logic devices (FPGA).

    FLASH PLD
  • Number of Logic Blocks (LABs)
    16
  • Speed Grade

    Speed grade is a specification in electronic components that indicates the maximum operating speed at which the component can reliably function. It is commonly used for integrated circuits, particularly in digital logic devices and programmable logic devices. The speed grade is typically denoted by a number or letter code that correlates to the maximum frequency or propagation delay of the device, influencing its performance in high-speed applications. Components with higher speed grades are capable of faster processing and lower signal delay compared to those with lower grades.

    5
  • Output Function

    An output function is a function that an optimization function calls at each iteration of its algorithm. Typically, you use an output function to generate graphical output, record the history of the data the algorithm generates, or halt the algorithm based on the data at the current iteration.

    MACROCELL
  • Number of Macro Cells
    256
  • JTAG BST

    JTAG BST stands for Joint Test Action Group Boundary Scan Test. It is a testing technique used in electronic components to verify the functionality of integrated circuits on a printed circuit board. The JTAG BST method allows for testing of individual components without the need for physical access to the pins of the component, making it a valuable tool for debugging and testing complex electronic systems. By using a standardized test access port and a set of test logic, JTAG BST can help identify faults, shorts, and other issues in electronic components quickly and efficiently.

    YES
  • In-System Programmable

    In-System Programmable refers to the capability of electronic components, such as microcontrollers or FPGAs, to be programmed or reprogrammed while they are already installed in a system or device. This feature allows for flexibility and ease of updating the functionality of the component without the need for physical removal or replacement. In-System Programmable components typically have built-in programming interfaces or communication protocols that enable users to update the firmware or configuration data directly within the system, saving time and effort in the development and maintenance process. This feature is particularly useful in applications where frequent updates or customization of the component's functionality are required.

    YES
  • Length
    17mm
  • Width
    17mm
  • Radiation Hardening

    Radiation hardening is the process of making electronic components and circuits resistant to damage or malfunction caused by high levels of ionizing radiation, especially for environments in outer space (especially beyond the low Earth orbit), around nuclear reactors and particle accelerators, or during nuclear accidents or nuclear warfare.

    No
  • RoHS Status

    RoHS means “Restriction of Certain Hazardous Substances” in the “Hazardous Substances Directive” in electrical and electronic equipment.

    RoHS Compliant
0 Similar Products Remaining

XC2C256-5FT256C Overview

There are 256 macro cells, which are cells in a mobile phone network that provides radio coverage served by a high-power cell site (tower, antenna or mast).There are 256 terminations, which are the practice of ending a transmission line with a device that matches the characteristic impedance of the line.The terminal position of this electrical part is BOTTOM, which serves as an important access point for passengers or freight.It is powered from a supply voltage of 1.8V.It is equipped with 256 pin count.The supply voltage should be maintained at 1.8V for high efficiency.It is designed with 256 pins.The maximal supply voltage (Vsup) reaches 1.9V.The operating temperature should be higher than 0°C.The operating temperature should be lower than 70°C.Its basic building block is composed of 16 logic blocks (LABs).This kind of FPGA is composed of FLASH PLD.

XC2C256-5FT256C Features

256 pin count
256 pins
16 logic blocks (LABs)

XC2C256-5FT256C Applications

There are a lot of Xilinx
XC2C256-5FT256C CPLDs applications.


  • Power up sequencing
  • Voltage level translation
  • Timing control
  • Interface bridging
  • I/O expansion
  • Discrete logic functions
  • Bootloaders for FPGAs
  • Address decoders
  • Custom state machines
  • Digital systems