Startseite Energiemanagement Spannungsreferenzen Shunt-Spannungsreferenzen

LM4040-N-Q1

AKTIV

100-ppm/°C-Präzisions-Micropower-Shunt-Spannungsreferenz für die Automobilindustrie

Produktdetails

VO (V) 2.5, 3 Initial accuracy (max) (%) 0.1, 0.2, 0.5, 1, 2 VO adj (min) (V) 2.048 VO adj (max) (V) 3 Iz for regulation (min) (µA) 45 Reference voltage (V) Fixed Rating Automotive TI functional safety category Functional Safety-Capable Temp coeff (max) (ppm/°C) 100, 150 Operating temperature range (°C) -40 to 125 Iout/Iz (max) (mA) 15
VO (V) 2.5, 3 Initial accuracy (max) (%) 0.1, 0.2, 0.5, 1, 2 VO adj (min) (V) 2.048 VO adj (max) (V) 3 Iz for regulation (min) (µA) 45 Reference voltage (V) Fixed Rating Automotive TI functional safety category Functional Safety-Capable Temp coeff (max) (ppm/°C) 100, 150 Operating temperature range (°C) -40 to 125 Iout/Iz (max) (mA) 15
SOT-23 (DBZ) 3 6.9204 mm² 2.92 x 2.37
  • SOT-23 AEC Q-100 Grades 1 and 3 available
  • Small Packages: SOT-23, TO-92, and SC70
  • No Output Capacitor Required
  • Tolerates Capacitive Loads
  • Fixed Reverse Breakdown Voltages of 2.048 V,
    2.5 V, 3 V, 4.096 V, 5 V, 8.192 V, and 10 V
  • Key Specifications (2.5-V LM4040-N)
    • Output Voltage Tolerance (A Grade,
      25°C): ±0.1% (Maximum)
    • Low Output Noise (10 Hz to 10 kHz):
      35 µVrms (Typical)
    • Wide Operating Current Range: 60 µA
      to 15 mA
    • Industrial Temperature Range: –40°C
      to 85°C
    • Extended Temperature Range: –40°C
      to 125°C
    • Low Temperature Coefficient: 100 ppm/°C
      (Maximum)
  • SOT-23 AEC Q-100 Grades 1 and 3 available
  • Small Packages: SOT-23, TO-92, and SC70
  • No Output Capacitor Required
  • Tolerates Capacitive Loads
  • Fixed Reverse Breakdown Voltages of 2.048 V,
    2.5 V, 3 V, 4.096 V, 5 V, 8.192 V, and 10 V
  • Key Specifications (2.5-V LM4040-N)
    • Output Voltage Tolerance (A Grade,
      25°C): ±0.1% (Maximum)
    • Low Output Noise (10 Hz to 10 kHz):
      35 µVrms (Typical)
    • Wide Operating Current Range: 60 µA
      to 15 mA
    • Industrial Temperature Range: –40°C
      to 85°C
    • Extended Temperature Range: –40°C
      to 125°C
    • Low Temperature Coefficient: 100 ppm/°C
      (Maximum)

Ideal for space-critical applications, the LM4040-N precision voltage reference is available in the sub-miniature SC70 and SOT-23 surface-mount package. The advanced design of the LM4040-N eliminates the need for an external stabilizing capacitor while ensuring stability with any capacitive load, thus making the LM4040-N easy to use. Further reducing design effort is the availability of several fixed reverse breakdown voltages: 2.048 V, 2.5 V, 3 V, 4.096 V, 5 V, 8.192 V, and 10 V. The minimum operating current increases from 60 µA for the 2.5-V LM4040-N to 100 µA for the 10-V LM4040-N. All versions have a maximum operating current of 15 mA.

The LM4040-N uses a fuse and Zener-zap reverse breakdown voltage trim during wafer sort to ensure that the prime parts have an accuracy of better than ±0.1% (A grade) at 25°C. Bandgap reference temperature drift curvature correction and low dynamic impedance ensure stable reverse breakdown voltage accuracy over a wide range of operating temperatures and currents.

Also available is the LM4041-N with two reverse breakdown voltage versions: adjustable and 1.2 V. See the LM4041-N data sheet (SNOS641).

Ideal for space-critical applications, the LM4040-N precision voltage reference is available in the sub-miniature SC70 and SOT-23 surface-mount package. The advanced design of the LM4040-N eliminates the need for an external stabilizing capacitor while ensuring stability with any capacitive load, thus making the LM4040-N easy to use. Further reducing design effort is the availability of several fixed reverse breakdown voltages: 2.048 V, 2.5 V, 3 V, 4.096 V, 5 V, 8.192 V, and 10 V. The minimum operating current increases from 60 µA for the 2.5-V LM4040-N to 100 µA for the 10-V LM4040-N. All versions have a maximum operating current of 15 mA.

The LM4040-N uses a fuse and Zener-zap reverse breakdown voltage trim during wafer sort to ensure that the prime parts have an accuracy of better than ±0.1% (A grade) at 25°C. Bandgap reference temperature drift curvature correction and low dynamic impedance ensure stable reverse breakdown voltage accuracy over a wide range of operating temperatures and currents.

Also available is the LM4041-N with two reverse breakdown voltage versions: adjustable and 1.2 V. See the LM4041-N data sheet (SNOS641).

Herunterladen Video mit Transkript ansehen Video

Ähnliche Produkte, die für Sie interessant sein könnten

Drop-In-Ersatz mit verbesserter Funktionalität im Gegensatz zum verglichenen Baustein
LM4050-N-Q1 AKTIV 50-ppm/°C-Präzisions-Micropower-Shunt-Spannungsreferenz für die Automobilindustrie LM4050-N-Q1 offers fixed voltage option at higher initial accuracy and much lower 50 ppm/°C temperature drift.

Technische Dokumentation

star =Von TI ausgewählte Top-Empfehlungen für dieses Produkt
Keine Ergebnisse gefunden. Bitte geben Sie einen anderen Begriff ein und versuchen Sie es erneut.
Alle anzeigen 6
Typ Titel Datum
* Data sheet LM4040-N/-Q1 Precision Micropower Shunt Voltage Reference datasheet (Rev. K) 02 Jun 2016
Functional safety information LM4040-N-Q1 Functional Safety FIT Rate and Failure Mode Distribution 18 Dez 2019
E-book Voltage Supervisor and Reset ICs: Tips, Tricks and Basics 28 Jun 2019
Technical article How to use a voltage reference as a voltage regulator PDF | HTML 04 Dez 2018
Application note AN-1525 Single Supply Operation of the DAC0800 and DAC0802 (Rev. A) 22 Apr 2013
Application note Negative Buck Switching Regulator (using LM258x) 21 Mär 2007

Design und Entwicklung

Weitere Bedingungen oder erforderliche Ressourcen enthält gegebenenfalls die Detailseite, die Sie durch Klicken auf einen der unten stehenden Titel erreichen.

Simulationsmodell

LM4040_NA10P0 PSpice Transient Model

SNOM420.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NA10P0 TINA-TI Transient Reference Design

SNOM449.TSC (71 KB) - TINA-TI Reference Design
Simulationsmodell

LM4040_NA10P0 TINA-TI Transient Spice Model

SNOM448.ZIP (9 KB) - TINA-TI Spice Model
Simulationsmodell

LM4040_NA10P0 Unencrypted PSpice Transient Model

SNOM495.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NA2P048 PSpice Transient Model

SNOM394.ZIP (36 KB) - PSpice Model
Simulationsmodell

LM4040_NA2P048 TINA-TI Transient Reference Design

SNOM444.TSC (72 KB) - TINA-TI Reference Design
Simulationsmodell

LM4040_NA2P048 TINA-TI Transient Spice Model

SNOM445.ZIP (9 KB) - TINA-TI Spice Model
Simulationsmodell

LM4040_NA2P5 PSpice Transient Model

SNOM403.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NA2P5 TINA-TI Transient Spice Model

SNOM455.ZIP (9 KB) - TINA-TI Spice Model
Simulationsmodell

LM4040_NA2P5 Transient TINA-TI Reference Design

SNOM454.TSC (72 KB) - TINA-TI Reference Design
Simulationsmodell

LM4040_NA2P5 Unencrypted PSpice Transient Model

SNOM526.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NA3P0 PSpice Transient Model

SNOM423.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NA3P0 TINA-TI Transient Reference Design

SNOM457.TSC (72 KB) - TINA-TI Reference Design
Simulationsmodell

LM4040_NA3P0 TINA-TI Transient Spice Model

SNOM456.ZIP (9 KB) - TINA-TI Spice Model
Simulationsmodell

LM4040_NA3P0 Unencrypted PSpice Transient Model

SNOM547.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NA4P096 PSpice Transient Model

SNOM410.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NA4P096 TINA-TI Transient Reference Design

SNOM453.TSC (72 KB) - TINA-TI Reference Design
Simulationsmodell

LM4040_NA4P096 TINA-TI Transient Spice Model

SNOM452.ZIP (9 KB) - TINA-TI Spice Model
Simulationsmodell

LM4040_NA4P096 Unencrypted PSpice Transient Model

SNOM505.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NA5P0 PSpice Transient Model

SNOM405.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NA5P0 TINA-TI Transient Reference Design

SNOM450.TSC (72 KB) - TINA-TI Reference Design
Simulationsmodell

LM4040_NA5P0 TINA-TI Transient Spice Model

SNOM451.ZIP (9 KB) - TINA-TI Spice Model
Simulationsmodell

LM4040_NA5P0 Unencrypted PSpice Transient Model

SNOM500.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NA8P192 PSpice Transient Model

SNOM421.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NA8P192 TINA-TI Transient Reference Design

SNOM447.TSC (73 KB) - TINA-TI Reference Design
Simulationsmodell

LM4040_NA8P192 TINA-TI Transient Spice Model

SNOM446.ZIP (9 KB) - TINA-TI Spice Model
Simulationsmodell

LM4040_NA8P192 Unencrypted PSpice Transient Model

SNOM496.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NB10P0 PSpice Transient Model

SNOM407.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NB10P0 Unencrypted PSpice Transient Model

SNOM502.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NB2P048 PSpice Transient Model

SNOM393.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NB2P048 Unencrypted PSpice Transient Model

SNOM546.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NB2P5 PSpice Transient Model

SNOM395.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NB2P5 Unencrypted PSpice Transient Model

SNOM545.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NB3P0 PSpice Transient Model

SNOM401.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NB3P0 Unencrypted PSpice Transient Model

SNOM525.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NB4P096 PSpice Transient Model

SNOM418.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NB4P096 Unencrypted PSpice Transient Model

SNOM494.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NB5P0 PSpice Transient Model

SNOM413.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NB5P0 Unencrypted PSpice Transient Model

SNOM508.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NB8P192 PSpice Transient Model

SNOM408.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NB8P192 Unencrypted PSpice Transient Model

SNOM503.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NC10P0 PSpice Transient Model

SNOM422.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NC10P0 Unencrypted PSpice Transient Model

SNOM497.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NC2P48 PSpice Transient Model

SNOM417.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NC2P5 PSpice Transient Model

SNOM400.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NC2P5 Unencrypted PSpice Transient Model

SNOM541.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NC3P0 PSpice Transient Model

SNOM416.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NC3P0 Unencrypted PSpice Transient Model

SNOM548.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NC4P096 PSpice Transient Model

SNOM411.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NC4P096 Unencrypted PSpice Transient Model

SNOM506.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NC5P0 PSpice Transient Model

SNOM406.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NC5P0 Unencrypted PSpice Transient Model

SNOM501.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NC8P192 PSpice Transient Model

SNOM412.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NC8P192 Unencrypted PSpice Transient Model

SNOM507.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_ND10P0 PSpice Transient Model

SNOM409.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_ND10P0 Unencrypted PSpice Transient Model

SNOM504.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_ND2P48 PSpice Transient Model

SNOM414.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_ND2P5 PSpice Transient Model

SNOM398.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_ND2P5 Unencrypted PSpice Transient Model

SNOM542.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_ND3P0 PSpice Transient Model

SNOM404.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_ND3P0 Unencrypted PSpice Transient Model

SNOM539.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_ND4P096 PSpice Transient Model

SNOM415.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_ND4P096 Unencrypted PSpice Transient Model

SNOM493.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_ND5P0 PSpice Transient Model (Rev. A)

SNOM419A.ZIP (102 KB) - PSpice Model
Simulationsmodell

LM4040_ND5P0 Unencrypted PSpice Transient Model (Rev. A)

SNOM499A.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_ND8P192 PSpice Transient Model

SNOM399.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_ND8P192 Unencrypted PSpice Transient Model

SNOM498.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NE2P048 PSpice Transient Model

SNOM397.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NE2P048 Unencrypted PSpice Transient Model

SNOM543.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NE2P5 PSpice Transient Model

SNOM396.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NE2P5 Unencrypted PSpice Transient Model

SNOM544.ZIP (1 KB) - PSpice Model
Simulationsmodell

LM4040_NE3P0 PSpice Transient Model

SNOM402.ZIP (25 KB) - PSpice Model
Simulationsmodell

LM4040_NE3P0 Unencrypted PSpice Transient Model

SNOM540.ZIP (1 KB) - PSpice Model
Berechnungstool

SHUNT_VOLTAGE_REFERENCE_RESISTOR_CALCULATOR Shunt Voltage Reference External Resistor Quick Start Calculator

This external resistor quick-start calculator tool lets you easily calculate valid external resistor values relative to voltage reference, supply and load-current bounds. With these inputs, you can instantly view the resulting calculations and use the color-coded indications to understand (...)

Unterstützte Produkte und Hardware

Unterstützte Produkte und Hardware

Produkte
Die- & Wafer-Services
LM336-2.5-MIL Shunt-Spannungsreferenz
Shunt-Spannungsreferenzen
ATL431 Einstellbarer Präzisions-Shunt-Regler, 2,5 V, mit niedrigem Ruhestrom LM136-2.5-N Spannungsreferenzdiode LM136-5.0 Referenzdiode, 5,0V LM136-5.0QML Referenzdiode, 5,0V LM136A-2.5QML Referenzdiode, 2,5 V LM136A-2.5QML-SP Strahlungsgehärtetete 2,5-V-QMLV-Shunt-Spannungsreferenz LM136A-5.0QML Referenzdiode, 5,0V LM185-1.2-N Micropower-Spannungsreferenzdiode LM185-1.2QML Micropower-Spannungsreferenzdiode LM185-1.2QML-SP Strahlungsgehärtetete 1,2-V-QMLV-Shunt-Spannungsreferenz LM185-2.5-N Micropower-Spannungsreferenzdiode LM185-2.5QML Micropower-Spannungsreferenzdiode LM185-2.5QML-SP Shunt-Spannungsreferenz für Weltraumanwendungen (QMLV), 2,5 V LM185-ADJ Einstellbare MicroPower-Spannungsreferenz LM185QML Einstellbare MicroPower-Spannungsreferenz LM285-1.2 MicroPower-Spannungsreferenz 1,235 V, -40°C bis +85°C LM285-1.2-N MicroPower-Spannungsreferenzdiode 1,235 V, -40 bis +85°C LM285-2.5 MicroPower-Spannungsreferenz 2,5 V, -40°C bis +85°C LM285-2.5-N Micropower-Spannungsreferenzdiode 2,5 V, -40 bis +85°C LM285-ADJ Einstellbare 85-Grad-Celsius-Mikroenergie-Spannungsreferenz LM336-2.5 Integrierter Referenz-Schaltkreis, 0 bis 70 °C, 2,5 V LM336-2.5-N Spannungsreferenzdiode LM336-5.0 Referenzdiode, 5 V LM385-1.2 MicroPower-Spannungsreferenz 1,235 V, 2 %, 0 °C bis 70 °C LM385-1.2-MIL Micropower-Spannungsreferenz LM385-1.2-N MicroPower-Spannungsreferenzdiode 1,235 V, 0 bis 70 °C LM385-2.5 Micropower-Spannungsreferenz 2,5 V, 2 %, 70 °C LM385-2.5-N Micropower-Spannungsreferenzdiode 2,5 V, 0 bis 70 °C LM385-ADJ Einstellbare 70-Grad-Celsius, Mikroenergie-Spannungsreferenz LM4030 Shunt-Spannungsreferenz mit extrem hoher Präzision LM4040 Feste Spannung, 45 µA, Präzisions-MicroPower-Shunt-Spannungsreferenz LM4040-N Mikroenergie-Shunt-Präzisionsspannungsreferenz, 100 ppm/°C LM4040-N-Q1 100-ppm/°C-Präzisions-Micropower-Shunt-Spannungsreferenz für die Automobilindustrie LM4041-N Feste und einstellbare Präzisions-Micropower-Shunt-Spannungsreferenz, 45 µA LM4041-N-Q1 Micropower-Shunt-Präzisionsspannungsreferenz für die Automobilindustrie LM4050-N Mikroenergie-Shunt-Präzisionsspannungsreferenz, 50 ppm/°C LM4050-N-Q1 50-ppm/°C-Präzisions-Micropower-Shunt-Spannungsreferenz für die Automobilindustrie LM4050QML-SP Strahlungsgehärtetete 2,5-V- oder 5-V-QMLV-Shunt-Spannungsreferenz LM4051-N Feste und einstellbare Präzisions-Micropower-Shunt-Spannungsreferenz LM431 Einstellbarer Präzisions-Zener-Shunt-Regler mit 2 %, 1 % oder 0,5 % Genauigkeit LM4431 Micropower-Shunt-Spannungsreferenz LMV431 Einstellbarer Präzisions-Shunt-Regler, 1,5 % Genauigkeit, niedrige Spannung (1,24 V) LMV431A Einstellbarer Präzisions-Shunt-Regler, 1 % Genauigkeit, niedrige Spannung (1,24 V) LMV431B Einstellbarer Präzisions-Shunt-Regler, 0,5 % Genauigkeit, niedrige Spannung (1,24 V)
Stromreferenzen
LM134 Einstellbare Stromquelle mit 3 Anschlüssen LM234 Einstellbare Stromquelle, 100 °C, mit 3 Anschlüssen LM334 Einstellbare Stromquelle mit 3 Anschlüssen, 0 bis 70°C
Simulationstool

PSPICE-FOR-TI — PSpice® für TI Design-und Simulationstool

PSpice® für TI ist eine Design- und Simulationsumgebung, welche Sie dabei unterstützt, die Funktionalität analoger Schaltungen zu evaluieren. Diese voll ausgestattete Design- und Simulationssuite verwendet eine analoge Analyse-Engine von Cadence®. PSpice für TI ist kostenlos erhältlich und (...)
Referenzdesigns

TIDA-00143 — Antrieb für bürstenlosen 60-W-Gleichstrommotor (BLDC) im Automobilbereich

This TIDA-00143 reference design is a BLDC motor controller and is designed to operate from a single 12V (nominal) power supply which can vary over a wide range of voltages as found in typical automotive applications.  The board is designed to drive motors in the 60W range, which require (...)
Design guide: PDF
Schaltplan: PDF
Referenzdesigns

TIDA-01514 — Referenzdesign für Schutz- und Lichtlasterkennung für Antennenmodule

The TIDA-01514 reference design provides protection and diagnostics for antenna modules for use in automotive infotainment and navigation systems. This design is an alternate solution for antenna low-dropout linear regulators (LDOs) for the purpose of achieving lower ohmic drop (IR) while meeting (...)
Design guide: PDF
Schaltplan: PDF
Gehäuse Pins Herunterladen
SOT-23 (DBZ) 3 Optionen anzeigen

Bestellen & Qualität

Beinhaltete Information:
  • RoHS
  • REACH
  • Bausteinkennzeichnung
  • Blei-Finish/Ball-Material
  • MSL-Rating / Spitzenrückfluss
  • MTBF-/FIT-Schätzungen
  • Materialinhalt
  • Qualifikationszusammenfassung
  • Kontinuierliches Zuverlässigkeitsmonitoring
Beinhaltete Information:
  • Werksstandort
  • Montagestandort

Support und Schulungen

TI E2E™-Foren mit technischem Support von TI-Ingenieuren

Inhalte werden ohne Gewähr von TI und der Community bereitgestellt. Sie stellen keine Spezifikationen von TI dar. Siehe Nutzungsbedingungen.

Bei Fragen zu den Themen Qualität, Gehäuse oder Bestellung von TI-Produkten siehe TI-Support. ​​​​​​​​​​​​​​

Videos