BCC Logic Gates 8

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Part RoHS Manufacturer Logic IC Type Temperature Grade Terminal Form No. of Terminals Package Code Package Shape Total Dose (V) Package Body Material Schmitt Trigger Surface Mount No. of Functions Technology Screening Level No. of Inputs No. of Bits Translation Packing Method Nominal Supply Voltage / Vsup (V) Power Supplies (V) Load Capacitance (CL) Package Style (Meter) Package Equivalence Code Propagation Delay (tpd) Maximum I (ol) Sub-Category Terminal Pitch Maximum Operating Temperature Output Characteristics Minimum Operating Temperature Terminal Finish Terminal Position Control Type Minimum fmax JESD-30 Code Moisture Sensitivity Level (MSL) Maximum Supply Voltage (Vsup) Maximum Seated Height Width Qualification Output Polarity Minimum Supply Voltage (Vsup) Maximum Power Supply Current (ICC) Additional Features JESD-609 Code Maximum Time At Peak Reflow Temperature (s) Peak Reflow Temperature (C) Length Family

NC7NP04L8X

Onsemi

INVERTER

INDUSTRIAL

NO LEAD

8

BCC

SQUARE

UNSPECIFIED

YES

3

CMOS

1

1.2

CHIP CARRIER

46.3 ns

85 Cel

-40 Cel

QUAD

S-XQCC-N8

3.6 V

.55 mm

1.6 mm

.9 V

1.6 mm

P

NC7NZU04L8X

Onsemi

INVERTER

INDUSTRIAL

NO LEAD

8

BCC

SQUARE

UNSPECIFIED

YES

3

CMOS

1

1.8

CHIP CARRIER

9 ns

85 Cel

-40 Cel

QUAD

S-XQCC-N8

5.5 V

.55 mm

1.6 mm

1.65 V

NOT SPECIFIED

NOT SPECIFIED

1.6 mm

LVC/LCX/Z

NC7NP14L8

Onsemi

INVERTER

INDUSTRIAL

NO LEAD

8

BCC

SQUARE

UNSPECIFIED

YES

3

CMOS

1

1.2

CHIP CARRIER

49.7 ns

85 Cel

-40 Cel

QUAD

S-XQCC-N8

3.6 V

.55 mm

1.6 mm

.9 V

NOT SPECIFIED

NOT SPECIFIED

1.6 mm

P

NC7WZ132L8

Onsemi

NAND GATE

INDUSTRIAL

NO LEAD

8

BCC

SQUARE

UNSPECIFIED

YES

2

CMOS

2

1.8

CHIP CARRIER

13.5 ns

85 Cel

-40 Cel

QUAD

S-XQCC-N8

5.5 V

.55 mm

1.6 mm

1.65 V

NOT SPECIFIED

NOT SPECIFIED

1.6 mm

LVC/LCX/Z

NC7WZ08L8

Onsemi

AND GATE

INDUSTRIAL

NO LEAD

8

BCC

SQUARE

UNSPECIFIED

YES

2

CMOS

2

1.8

CHIP CARRIER

11 ns

85 Cel

-40 Cel

QUAD

S-XQCC-N8

5.5 V

.55 mm

1.6 mm

1.65 V

NOT SPECIFIED

NOT SPECIFIED

1.6 mm

LVC/LCX/Z

74AUP2G38GM

NXP Semiconductors

NAND GATE

AUTOMOTIVE

BUTT

8

BCC

SQUARE

PLASTIC/EPOXY

NO

YES

2

CMOS

2

TR

1.1

1.2/3.3

30 pF

CHIP CARRIER

LCC8,.06SQ,20

24 ns

1.7 Amp

Gates

.55 mm

125 Cel

OPEN-DRAIN

-40 Cel

BOTTOM

S-PBCC-B8

1

3.6 V

.5 mm

1.6 mm

Not Qualified

.8 V

30

260

1.6 mm

AUP/ULP/V

74AVC1T8128GS

Nexperia

NOR GATE

AUTOMOTIVE

BUTT

8

BCC

RECTANGULAR

PLASTIC/EPOXY

YES

1

CMOS

2

1.2

CHIP CARRIER

14.3 ns

.35 mm

125 Cel

3-STATE

-40 Cel

TIN

BOTTOM

R-PBCC-B8

1

3.6 V

.35 mm

1 mm

.8 V

e3

30

260

1.35 mm

AVC

74AVC1T8832GS

Nexperia

OR GATE

AUTOMOTIVE

BUTT

8

BCC

RECTANGULAR

PLASTIC/EPOXY

YES

1

CMOS

2

1.2

CHIP CARRIER

16 ns

.35 mm

125 Cel

3-STATE

-40 Cel

TIN

BOTTOM

R-PBCC-B8

1

3.6 V

.35 mm

1 mm

.8 V

e3

30

260

1.35 mm

AVC

Logic Gates

Logic gates are electronic circuits that perform basic logical operations on one or more inputs to produce a single output. They are the building blocks of digital circuits and are used to implement digital logic functions, such as AND, OR, NOT, XOR, and NAND.

Logic gates are designed using various technologies, including transistor-transistor logic (TTL), complementary metal-oxide-semiconductor (CMOS), and field-programmable gate arrays (FPGAs). They can be classified into three main types based on their operation: combinational logic gates, sequential logic gates, and programmable logic gates.

Combinational logic gates are logic gates that produce an output based solely on the current input values. These gates include the AND gate, OR gate, NOT gate, XOR gate, and NAND gate. The output of a combinational logic gate depends on the input values and the logic function implemented by the gate.

Sequential logic gates are logic gates that have memory elements and can store information. These gates include the SR flip-flop, D flip-flop, JK flip-flop, and T flip-flop. The output of a sequential logic gate depends on the current input values and the previous state of the gate.

Programmable logic gates are logic gates that can be programmed to implement different logic functions. These gates include programmable logic arrays (PLAs), programmable array logic (PALs), and field-programmable gate arrays (FPGAs). Programmable logic gates can be reprogrammed to adapt to changing system requirements.

Logic gates are used in various applications, including digital signal processing, control systems, and memory systems. They are essential components of digital systems and can be found in many electronic devices, such as computers, mobile phones, and digital cameras.