Toshiba Voltage References 55

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Part RoHS Manufacturer Other IC type Temperature Grade No. of Terminals Package Code Package Shape Surface Mount Total Dose (V) Package Body Material Maximum Supply Current (Isup) Maximum Output Current Trim or Adjustable Output (V) No. of Functions Technology Screening Level Nominal Bandwidth Terminal Form Main Out Ripple Voltage Maximum Negative Supply Voltage (Vsup) Nominal Supply Voltage (Vsup) Maximum Voltage Tolerance Package Style (Meter) Package Equivalence Code Sub-Category Terminal Pitch Maximum Operating Temperature Minimum Output Voltage Minimum Operating Temperature Max Voltage Temp Coef Terminal Finish Maximum Output Voltage Terminal Position JESD-30 Code Moisture Sensitivity Level (MSL) Maximum Supply Voltage (Vsup) Maximum Seated Height Width (mm) Qualification Minimum Supply Voltage (Vsup) Additional Features Minimum Negative Supply Voltage (Vsup) JESD-609 Code Maximum Time At Peak Reflow Temperature (s) No. of Outputs Peak Reflow Temperature (C) Length Nominal Output Voltage

TA76L431FB(TE85L,F)

Toshiba

THREE TERMINAL VOLTAGE REFERENCE

COMMERCIAL

3

LSSOP

RECTANGULAR

YES

PLASTIC/EPOXY

.04 A

YES

1

BIPOLAR

GULL WING

SMALL OUTLINE, LOW PROFILE, SHRINK PITCH

TO-236

Voltage References

.95 mm

70 Cel

2.47 V

0 Cel

103.063 ppm/Cel

TIN LEAD

2.52 V

DUAL

R-PDSO-G3

19 V

1.4 mm

1.5 mm

Not Qualified

2.495 V

OUTPUT ADJUSTABLE FROM 2.495V TO 19V WITH TWO EXTERNAL RESISTORS

e0

1

2.9 mm

2.495 V

TA76L431FT

Toshiba

TWO TERMINAL VOLTAGE REFERENCE

INDUSTRIAL

5

VSOF

RECTANGULAR

YES

PLASTIC/EPOXY

YES

1

BIPOLAR

FLAT

1 %

SMALL OUTLINE, VERY THIN PROFILE

FL5/6,.07,25

.65 mm

85 Cel

2.465 V

-40 Cel

2.515 V

DUAL

R-PDSO-F5

.75 mm

1.7 mm

Not Qualified

OUTPUT VOLTAGE ADJUSTABLE FROM 2.49 TO 19V

1

2 mm

2.49 V

TA76432F(TE12L)

Toshiba

THREE TERMINAL VOLTAGE REFERENCE

INDUSTRIAL

3

RECTANGULAR

YES

PLASTIC/EPOXY

.0005 A

YES

1

BIPOLAR

FLAT

SMALL OUTLINE

TO-243

Voltage References

1.5 mm

85 Cel

1.242 V

-40 Cel

95.238 ppm/Cel

1.278 V

SINGLE

R-PSSO-F3

1.6 mm

2.5 mm

Not Qualified

OUTPUT VOLTAGE ADJUSTABLE FROM 1.26V TO 19V

NOT SPECIFIED

1

NOT SPECIFIED

1.26 V

TA76432S(TPE6,F)

Toshiba

THREE TERMINAL VOLTAGE REFERENCE

INDUSTRIAL

3

TO-92

ROUND

NO

PLASTIC/EPOXY

YES

1

BIPOLAR

THROUGH-HOLE

CYLINDRICAL

85 Cel

1.242 V

-40 Cel

95.238 ppm/Cel

1.278 V

BOTTOM

O-PBCY-T3

OUTPUT VOLTAGE ADJUSTABLE FROM 1.26V TO 19V

1

1.26 V

TA76432AS

Toshiba

TWO TERMINAL VOLTAGE REFERENCE

INDUSTRIAL

3

TO-92

ROUND

NO

PLASTIC/EPOXY

YES

1

BIPOLAR

WIRE

CYLINDRICAL

SIP3,.1,50

Voltage References

1.27 mm

85 Cel

1.247 V

-40 Cel

140.056 ppm/Cel

TIN LEAD

1.273 V

BOTTOM

O-PBCY-W3

Not Qualified

OUTPUT VOLTAGE ADJUSTABLE FROM VREF TO 19V

e0

1

1.26 V

TA76431FR(F)

Toshiba

TWO TERMINAL VOLTAGE REFERENCE

INDUSTRIAL

3

RECTANGULAR

YES

PLASTIC/EPOXY

YES

1

BIPOLAR

FLAT

SMALL OUTLINE, HEAT SINK/SLUG

1.5 mm

85 Cel

2.44 V

-40 Cel

888 ppm/Cel

2.55 V

SINGLE

R-PSSO-F3

1.6 mm

2.5 mm

LG-MAX

1

4.6 mm

2.495 V

TA76432FT(TE85L,F)

Toshiba

THREE TERMINAL VOLTAGE REFERENCE

INDUSTRIAL

5

VSOF

RECTANGULAR

YES

PLASTIC/EPOXY

YES

1

BIPOLAR

FLAT

SMALL OUTLINE, VERY THIN PROFILE

.65 mm

85 Cel

1.242 V

-40 Cel

95.238 ppm/Cel

1.278 V

DUAL

R-PDSO-F5

.75 mm

1.6 mm

OUTPUT VOLTAGE ADJUSTABLE FROM 1.26V TO 19V

1

2.9 mm

1.26 V

Voltage References

Voltage references are electronic devices used to provide a stable, precise voltage output that is independent of changes in temperature, load, or input voltage. They are used in a wide range of electronic applications, including instrumentation, data acquisition systems, and power supplies.

Voltage references are typically designed to output a fixed voltage value, such as 2.5V or 5V, and can be based on various technologies, including zener diodes, bandgap references, and temperature-compensated voltage references.

Zener diode-based voltage references work by using the reverse breakdown voltage of a zener diode to generate a stable reference voltage. Bandgap references use the voltage difference between two junctions in a bipolar transistor to generate a stable voltage reference. Temperature-compensated voltage references use a combination of circuit elements to compensate for temperature changes and provide a stable voltage output.

Voltage references typically have a high level of accuracy and low drift over time, making them suitable for use in precision applications. They may also include features such as low power consumption, low noise, and short-circuit protection.