LFQFP Programmable Logic Devices (PLD) 202

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Part RoHS Manufacturer Programmable IC Type Grading Of Temperature Form Of Terminal No. of Terminals Package Code Package Shape Package Body Material Propagation Delay No. of Logic Cells Surface Mount Maximum Supply Voltage No. of Macro Cells Technology Used Screening Level No. of Inputs Architecture Nominal Supply Voltage (V) Packing Method Power Supplies (V) Package Style (Meter) Package Equivalence Code Sub-Category In-System Programmable Output Function Minimum Supply Voltage No. of Product Terms Pitch Of Terminal Maximum Operating Temperature Organization No. of Dedicated Inputs Minimum Operating Temperature Finishing Of Terminal Used Position Of Terminal JESD-30 Code Moisture Sensitivity Level (MSL) Maximum Seated Height Width Qualification Additional Features JESD-609 Code Maximum Clock Frequency Maximum Time At Peak Reflow Temperature (s) No. of Outputs Peak Reflow Temperature (C) Length JTAG Boundary Scan Test No. of I/O Lines

M4A5-64/32-7VNI48

Lattice Semiconductor

EE PLD

Industrial

Gull Wing

48

LFQFP

Square

Plastic/Epoxy

7.5 ns

Yes

5.5 V

64

CMOS

34

PAL-TYPE

5

5 V

Flatpack, Low Profile, Fine Pitch

QFP48,.35SQ,20

Programmable Logic Devices

Yes

Macrocell

4.5 V

.5 mm

85 °C (185 °F)

0 Dedicated Inputs, 32 I/O

0

-40 °C (-40 °F)

Matte Tin

Quad

S-PQFP-G48

3

1.6 mm

7 mm

No

e3

76.9 MHz

40 s

32

260 °C (500 °F)

7 mm

Yes

32

ISPLSI1032E-70LTN

Lattice Semiconductor

EE PLD

Commercial

Gull Wing

100

LFQFP

Square

Plastic/Epoxy

17.5 ns

Yes

5.25 V

128

CMOS

66

PLA-TYPE

5

5 V

Flatpack, Low Profile, Fine Pitch

QFP100,.63SQ,20

Programmable Logic Devices

Yes

Macrocell

4.75 V

.5 mm

70 °C (158 °F)

2 Dedicated Inputs, 64 I/O

2

0 °C (32 °F)

Matte Tin

Quad

S-PQFP-G100

3

1.6 mm

14 mm

No

e3

56 MHz

40 s

64

260 °C (500 °F)

14 mm

No

64

ISPLSI2096A-100LTN128

Lattice Semiconductor

EE PLD

Commercial

Gull Wing

128

LFQFP

Square

Plastic/Epoxy

13 ns

Yes

5.25 V

96

CMOS

5

5 V

Flatpack, Low Profile, Fine Pitch

QFP128,.64SQ,16

Programmable Logic Devices

Yes

Macrocell

4.75 V

.4 mm

70 °C (158 °F)

3 Dedicated Inputs, 96 I/O

3

0 °C (32 °F)

Matte Tin

Quad

S-PQFP-G128

3

1.6 mm

14 mm

No

e3

77 MHz

40 s

260 °C (500 °F)

14 mm

No

96

M4A5-96/48-10VNC

Lattice Semiconductor

EE PLD

Commercial

Gull Wing

100

LFQFP

Square

Plastic/Epoxy

10 ns

Yes

5.25 V

96

CMOS

PAL-TYPE

5

5 V

Flatpack, Low Profile, Fine Pitch

QFP100,.63SQ,20

Programmable Logic Devices

Yes

Macrocell

4.75 V

.5 mm

70 °C (158 °F)

4 Dedicated Inputs, 48 I/O

4

0 °C (32 °F)

Matte Tin

Quad

S-PQFP-G100

3

1.6 mm

14 mm

No

e3

62.5 MHz

40 s

260 °C (500 °F)

14 mm

Yes

48

M4A5-96/48-10VNI

Lattice Semiconductor

EE PLD

Industrial

Gull Wing

100

LFQFP

Square

Plastic/Epoxy

10 ns

Yes

5.5 V

96

CMOS

PAL-TYPE

5

5 V

Flatpack, Low Profile, Fine Pitch

QFP100,.63SQ,20

Programmable Logic Devices

Yes

Macrocell

4.5 V

.5 mm

85 °C (185 °F)

4 Dedicated Inputs, 48 I/O

4

-40 °C (-40 °F)

Matte Tin

Quad

S-PQFP-G100

3

1.6 mm

14 mm

No

e3

62.5 MHz

40 s

260 °C (500 °F)

14 mm

Yes

48

M4A5-96/48-55VNC

Lattice Semiconductor

EE PLD

Commercial

Gull Wing

100

LFQFP

Square

Plastic/Epoxy

5.5 ns

Yes

5.25 V

96

CMOS

PAL-TYPE

5

5 V

Flatpack, Low Profile, Fine Pitch

QFP100,.63SQ,20

Programmable Logic Devices

Yes

Macrocell

4.75 V

.5 mm

70 °C (158 °F)

4 Dedicated Inputs, 48 I/O

4

0 °C (32 °F)

Matte Tin

Quad

S-PQFP-G100

3

1.6 mm

14 mm

No

e3

105 MHz

40 s

260 °C (500 °F)

14 mm

Yes

48

M4A5-96/48-7VNC

Lattice Semiconductor

EE PLD

Commercial

Gull Wing

100

LFQFP

Square

Plastic/Epoxy

7.5 ns

Yes

5.25 V

96

CMOS

PAL-TYPE

5

5 V

Flatpack, Low Profile, Fine Pitch

QFP100,.63SQ,20

Programmable Logic Devices

Yes

Macrocell

4.75 V

.5 mm

70 °C (158 °F)

4 Dedicated Inputs, 48 I/O

4

0 °C (32 °F)

Matte Tin

Quad

S-PQFP-G100

3

1.6 mm

14 mm

No

e3

76.9 MHz

40 s

260 °C (500 °F)

14 mm

Yes

48

XA2C256-7TQG144I

Xilinx

Flash PLD

Industrial

Gull Wing

144

LFQFP

Square

Plastic/Epoxy

7.5 ns

Yes

1.9 V

256

CMOS

AEC-Q100

1.8

1.5/3.3,1.8 V

Flatpack, Low Profile, Fine Pitch

QFP144,.87SQ,20

Programmable Logic Devices

Yes

Macrocell

1.7 V

.5 mm

85 °C (185 °F)

0 Dedicated Inputs, 118 I/O

0

-40 °C (-40 °F)

Matte Tin

Quad

S-PQFP-G144

3

1.6 mm

20 mm

No

Real digital design technology, XILIK00255-1

e3

141 MHz

30 s

260 °C (500 °F)

20 mm

Yes

118

XA2C256-8TQG144Q

Xilinx

Flash PLD

Automotive

Gull Wing

144

LFQFP

Square

Plastic/Epoxy

7.5 ns

Yes

1.9 V

256

CMOS

AEC-Q100

1.8

1.5/3.3,1.8 V

Flatpack, Low Profile, Fine Pitch

QFP144,.87SQ,20

Programmable Logic Devices

Yes

Macrocell

1.7 V

.5 mm

125 °C (257 °F)

0 Dedicated Inputs, 118 I/O

0

-40 °C (-40 °F)

Matte Tin

Quad

S-PQFP-G144

3

1.6 mm

20 mm

No

Real digital design technology, XILIK00255-1

e3

130 MHz

30 s

260 °C (500 °F)

20 mm

Yes

118

XA2C384-10TQG144I

Xilinx

Flash PLD

Industrial

Gull Wing

144

LFQFP

Square

Plastic/Epoxy

10 ns

Yes

1.9 V

384

CMOS

AEC-Q100

118

PLA-TYPE

1.8

1.5/3.3,1.8 V

Flatpack, Low Profile, Fine Pitch

QFP144,.87SQ,20

Programmable Logic Devices

Yes

Macrocell

1.7 V

.5 mm

85 °C (185 °F)

0 Dedicated Inputs, 118 I/O

0

-40 °C (-40 °F)

Matte Tin

Quad

S-PQFP-G144

3

1.6 mm

20 mm

No

e3

166 MHz

30 s

118

260 °C (500 °F)

20 mm

Yes

118

Programmable Logic Devices (PLD)

Programmable Logic Devices (PLDs) are digital circuits that are designed to be programmed by the user to perform specific logic functions. They consist of an array of configurable logic blocks (CLBs) that can be programmed to perform any digital function, as well as programmable interconnects that allow these blocks to be connected in any way the designer wishes. This makes PLDs highly versatile and customizable, and they are often used in applications where a high degree of flexibility and performance is required.

PLDs are programmed using specialized software tools that allow the designer to specify the logic functions and interconnects that are required for a particular application. This process is known as synthesis and involves translating the high-level design into a format that can be implemented on the PLD hardware. The resulting configuration data is then loaded onto the PLD, allowing it to perform the desired logic functions.

PLDs are used in a wide range of applications, including digital signal processing, computer networking, and high-performance computing. They offer a number of advantages over traditional fixed-function digital circuits, including the ability to be reprogrammed in the field, lower development costs, and faster time-to-market. However, they also have some disadvantages, including higher power consumption and lower performance compared to custom-designed digital circuits.