DIE Analog-to-Digital Converters 15

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Part RoHS Manufacturer Converter Type Temperature Grade Terminal Form No. of Terminals Package Code Package Shape Total Dose (V) Package Body Material No. of Analog In Channels Surface Mount Maximum Supply Voltage Maximum Analog Input Voltage Sample Rate No. of Functions Technology Screening Level Nominal Bandwidth No. of Bits Maximum Supply Current Maximum Linearity Error (EL) Nominal Supply Voltage Output Bit Code Power Supplies (V) Nominal Negative Supply Voltage Package Style (Meter) Package Equivalence Code Sub-Category Minimum Supply Voltage Terminal Pitch Maximum Operating Temperature Minimum Analog Input Voltage Output Format Minimum Operating Temperature Terminal Finish Sample and Hold/Track and Hold Terminal Position Maximum Conversion Time JESD-30 Code Moisture Sensitivity Level (MSL) Maximum Seated Height Width Qualification Additional Features JESD-609 Code Maximum Time At Peak Reflow Temperature (s) Peak Reflow Temperature (C) Length Input Bit Code

ADS8320SKGD1

Texas Instruments

Analog To Digital Converter, Successive Approximation

Military

No Lead

8

DIE

Rectangular

1

Yes

5.25 V

100 kHz

1

CMOS

16

0.034 %

2.7 V

Binary

Uncased Chip

2.7 V

210 °C (410 °F)

0 mV

Serial

-55 °C (-67 °F)

Sample

Upper

6.666 µs

R-XUUC-N8

0.06 in (1.5263 mm)

No

0.075 in (1.8964 mm)

ADS1243SKGD1

Texas Instruments

Analog To Digital Converter, Delta-Sigma

Military

No Lead

DIE

Rectangular

8

Yes

5.25 V

15 Hz

1

24

0.0025 %

3 V

Binary

Uncased Chip

2.7 V

210 °C (410 °F)

0 mV

Serial

-55 °C (-67 °F)

Sample

Upper

R-XUUC-N

ADS8320SKGD2

Texas Instruments

Analog To Digital Converter, Successive Approximation

Military

No Lead

8

DIE

Rectangular

1

Yes

5.25 V

100 kHz

1

CMOS

16

0.034 %

2.7 V

Binary

Uncased Chip

2.7 V

210 °C (410 °F)

0 mV

Serial

-55 °C (-67 °F)

Sample

Upper

6.66667 µs

R-XUUC-N8

0.057 in (1.4503 mm)

0.072 in (1.8204 mm)

MAX189BC/D

Maxim Integrated

Analog To Digital Converter, Successive Approximation

Commercial

No Lead

8

DIE

Rectangular

1

Yes

4.096 V

75 kHz

1

CMOS

12

2 mA

0.0244 %

5 V

Binary

5 V

Uncased Chip

DIE OR CHIP

Analog to Digital Converters

70 °C (158 °F)

0 mV

Serial

0 °C (32 °F)

Tin Lead

Track

Upper

8.5 µs

R-XUUC-N8

1

No

e0

MAX122BC/D

Maxim Integrated

Analog To Digital Converter, Successive Approximation

Commercial

No Lead

24

DIE

Rectangular

1

Yes

5 V

333 kHz

1

BICMOS

12

0.0244 %

5 V

2's Complement Binary

5,-12/-15 V

-12 V

Uncased Chip

DIE OR CHIP

Analog to Digital Converters

70 °C (158 °F)

-5 V

Parallel, Word

0 °C (32 °F)

Tin Lead

Track

Upper

2.6 µs

R-XUUC-N24

1

No

e0

MAX195BC/D

Maxim Integrated

Analog To Digital Converter, Successive Approximation

Commercial

No Lead

16

DIE

1

Yes

5 V

85 kHz

1

16

5 V

Binary, Offset Binary

-5 V

Uncased Chip

70 °C (158 °F)

-5 V

Serial

0 °C (32 °F)

Tin Lead

Track

Upper

2 µs

X-XUUC-N16

1

No

e0

AD7715ACHIPS-3

Analog Devices

Analog To Digital Converter, Delta-Sigma

Industrial

No Lead

16

DIE

Rectangular

1

Yes

1.25 V

1

CMOS

16

0.0015 %

3 V

Binary, Offset Binary

Uncased Chip

85 °C (185 °F)

-1.25 V

Serial

-40 °C (-40 °F)

Upper

R-XUUC-N

No

AD7715ACHIPS-5

Analog Devices

Analog To Digital Converter, Delta-Sigma

Industrial

No Lead

16

DIE

Rectangular

1

Yes

2.5 V

1

CMOS

16

0.0015 %

5 V

Binary, Offset Binary

Uncased Chip

85 °C (185 °F)

-2.5 V

Serial

-40 °C (-40 °F)

Upper

R-XUUC-N16

No

MAX120C/D

Maxim Integrated

Analog To Digital Converter, Successive Approximation

Commercial

No Lead

24

DIE

Rectangular

1

Yes

5 V

500 kHz

1

BICMOS

12

0.0244 %

5 V

Binary

5,-12/-15 V

-15 V

Uncased Chip

DIE OR CHIP

Analog to Digital Converters

70 °C (158 °F)

-5 V

Parallel, Word

0 °C (32 °F)

Tin Lead

Track

Upper

1.63 µs

R-XUUC-N24

1

No

e0

ADS1282SKGDA

Texas Instruments

Analog To Digital Converter, Delta-Sigma

Military

No Lead

30

DIE

Rectangular

2

Yes

1.25 V

4 kHz

1

24

10 mA

0.009 %

2.5 V

2's Complement Binary

-2.5 V

Uncased Chip

210 °C (410 °F)

-1.25 V

Serial

-55 °C (-67 °F)

Upper

R-XUUC-N30

No

MAX191BC/D

Maxim Integrated

Analog To Digital Converter, Successive Approximation

Commercial

No Lead

24

DIE

Rectangular

1

Yes

5.25 V

100 kHz

1

CMOS

12

0.0244 %

5 V

Binary

5,GND/-5 V

-5 V

Uncased Chip

DIE OR CHIP

Analog to Digital Converters

70 °C (158 °F)

-5.25 V

Serial, Parallel, 8 Bits

0 °C (32 °F)

Tin Lead

Track

Upper

18 µs

R-XUUC-N24

1

No

e0

ICL7129AC/D

Maxim Integrated

Analog To Digital Converter, Dual-Slope

Commercial

No Lead

40

DIE

Square

1

Yes

4 V

1

CMOS

4

9 V

Binary

9 V

Uncased Chip

DIE OR CHIP

Analog to Digital Converters

70 °C (158 °F)

-3 V

Parallel, Word

0 °C (32 °F)

Tin Lead

Upper

S-XUUC-N40

2

No

e0

MAX121C/D

Maxim Integrated

Analog To Digital Converter, Successive Approximation

Commercial

No Lead

17

DIE

Rectangular

1

Yes

5 V

308 kHz

1

BICMOS

14

20 mA

5 V

2's Complement Binary

5,-12/-15 V

-15 V

Uncased Chip

DIE OR CHIP

Analog to Digital Converters

70 °C (158 °F)

-5 V

Serial

0 °C (32 °F)

Tin Lead

Track

Upper

2.91 µs

R-XUUC-N17

1

No

e0

ADS1278SKGDA

Texas Instruments

Analog To Digital Converter, Delta-Sigma

Military

No Lead

96

DIE

Rectangular

8

Yes

5.25 V

144 kHz

1

24

185 mA

0.0014 %

5 V

2's Complement Binary

1.8/3.3,5 V

Uncased Chip

DIE OR CHIP

Analog to Digital Converters

1.65 V

210 °C (410 °F)

-2.5 V

Parallel, 8 Bits

-55 °C (-67 °F)

Upper

R-XUUC-N96

No

MX7582K/D

Maxim Integrated

Analog To Digital Converter, Successive Approximation

Commercial

No Lead

DIE

4

Yes

5 V

1

12

15 V

Binary

-5 V

Uncased Chip

70 °C (158 °F)

0 mV

Parallel, Word

0 °C (32 °F)

Tin Lead

Upper

X-XUUC-N

No

e0

Analog-to-Digital Converters

Analog-to-digital converters (ADCs) are electronic devices that convert continuous analog signals into digital signals, which can be processed by digital circuits, microcontrollers, or computers. ADCs are essential components in many electronic systems, as they allow the measurement and processing of physical signals, such as temperature, pressure, light, and sound.

ADCs work by sampling the analog signal at regular intervals and quantizing the sampled signal into a series of digital values. The sampling rate and the resolution of the ADC determine the accuracy and the bandwidth of the digital signal. ADCs may also include features such as amplification, filtering, or signal conditioning, to improve the accuracy and stability of the digital signal.

ADCs can be classified based on their architecture and their application. The most common types of ADCs are successive approximation ADCs, delta-sigma ADCs, and pipeline ADCs. Each type has its advantages and limitations, depending on the application and the required performance.

ADCs are used in a wide range of applications, from consumer electronics, such as smartphones and digital cameras, to industrial automation, medical devices, and scientific instruments. They play a crucial role in the conversion of physical signals into digital signals, allowing the processing, storage, and transmission of data in electronic systems.

Overall, ADCs are essential components in many electronic systems, providing the necessary signal conversion for a wide range of applications. Their accuracy, speed, and resolution determine the performance and the functionality of many electronic devices and systems.