SLVS062N December 1991 – October 2016 TL1431 , TL1431M
PRODUCTION DATA.
MIN | MAX | UNIT | ||
---|---|---|---|---|
Cathode voltage, VKA(2) | 37 | V | ||
Continuous cathode current, IKA | –100 | 150 | mA | |
Reference input current, II(ref) | –0.05 | 10 | mA | |
Lead temperature, 1.6 mm (1/16 in) from case for 10 s | 260 | °C | ||
Junction temperature, TJ | 150 | °C | ||
Storage temperature, Tstg | –65 | 150 | °C |
VALUE | UNIT | |||
---|---|---|---|---|
V(ESD) | Electrostatic discharge | Human-body model (HBM), per ANSI/ESDA/JEDEC JS-001(1) | ±2000 | V |
Charged-device model (CDM), per JEDEC specification JESD22-C101(2) | ±1000 |
MIN | MAX | UNIT | |||
---|---|---|---|---|---|
VKA | Cathode voltage | VI(ref) | 36 | V | |
IKA | Cathode current | 1 | 100 | mA | |
TA | Operating free-air temperature | TL1431C | 0 | 70 | °C |
TL1431Q | –40 | 125 | |||
TL1431M | –55 | 125 |
THERMAL METRIC(1) | TL1431 | TL1431M(2) | UNIT | ||||
---|---|---|---|---|---|---|---|
LP (TO-92) |
D (SOIC) |
PW (TSSOP) |
JG (CDIP) |
FK (LCCC) |
|||
3 PINS | 8 PINS | 8 PINS | 8 PINS | 20 PINS | |||
RθJA | Junction-to-ambient thermal resistance | 157 | 114.7 | 172.4 | — | — | °C/W |
RθJC(top) | Junction-to-case (top) thermal resistance | 80.7 | 59 | 55.2 | 69.7 | 55.5 | °C/W |
RθJB | Junction-to-board thermal resistance | — | 55.4 | 100.8 | 99 | 54.2 | °C/W |
ψJT | Junction-to-top characterization parameter | 24.6 | 12 | 5 | — | — | °C/W |
ψJB | Junction-to-board characterization parameter | 136.4 | 54.8 | 99 | — | — | °C/W |
RθJC(bot) | Junction-to-case (bottom) thermal resistance | — | — | — | 21 | 9.5 | °C/W |
PARAMETER | TEST CONDITIONS | MIN | TYP | MAX | UNIT | ||
---|---|---|---|---|---|---|---|
VI(ref) | Reference input voltage | VKA = VI(ref)
(see Figure 13) |
TA = 25°C | 2490 | 2500 | 2510 | mV |
TA = 0°C to 70°C | 2480 | 2520 | |||||
VI(dev) | Deviation of reference input voltage over full temperature range(1) | VKA = VI(ref), TA = 0°C to 70°C (see Figure 13) |
4 | 20 | mV | ||
Ratio of change in reference input voltage to the change in cathode voltage | ΔVKA = 3 V to 36 V, TA = 0°C to 70°C (see Figure 14) |
–1.1 | –2 | mV/V | |||
II(ref) | Reference input current | R1 = 10 kΩ, R2 = ∞ (see Figure 14) |
TA = 25°C | 1.5 | 2.5 | µA | |
TA = 0°C to 70°C | 3 | ||||||
II(dev) | Deviation of reference input current over full temperature range(1) | R1 = 10 kΩ, R2 = ∞, TA = 0°C to 70°C (see Figure 14) |
0.2 | 1.2 | µA | ||
Imin | Minimum cathode current for regulation | VKA = VI(ref), TA = 25°C (see Figure 13) | 0.45 | 1 | mA | ||
Ioff | Off-state cathode current | VKA = 36 V, VI(ref) = 0 (see Figure 15) |
TA = 25°C | 0.18 | 0.5 | µA | |
TA = 0°C to 70°C | 2 | ||||||
|zKA| | Output impedance(2) | VKA = VI(ref), f ≤ 1 kHz, IKA = 1 mA to 100 mA, TA = 25°C (see Figure 13) |
0.2 | 0.4 | Ω |
PARAMETER | TEST CONDITIONS | MIN | TYP | MAX | UNIT | ||
---|---|---|---|---|---|---|---|
VI(ref) | Reference input voltage | VKA = VI(ref)
(see Figure 13) |
TA = 25°C | 2490 | 2500 | 2510 | mV |
TA = –40°C to 125°C | 2470 | 2530 | |||||
VI(dev) | Deviation of reference input voltage over full temperature range(1) | VKA = VI(ref), TA = –40°C to 125°C (see Figure 13) |
17 | 55 | mV | ||
Ratio of change in reference input voltage to the change in cathode voltage | ΔVKA = 3 V to 36 V, TA = –40°C to 125°C (see Figure 14) |
–1.1 | –2 | mV/V | |||
II(ref) | Reference input current | R1 = 10 kΩ, R2 = ∞ (see Figure 14) |
TA = 25°C | 1.5 | 2.5 | µA | |
TA = –40°C to 125°C | 4 | ||||||
II(dev) | Deviation of reference input current over full temperature range(1) | R1 = 10 kΩ, R2 = ∞, TA = –40°C to 125°C (see Figure 14) |
0.5 | 2 | µA | ||
Imin | Minimum cathode current for regulation | VKA = VI(ref), TA = 25°C (see Figure 13) | 0.45 | 1 | mA | ||
Ioff | Off-state cathode current | VKA = 36 V, VI(ref) = 0 (see Figure 15) |
TA = 25°C | 0.18 | 0.5 | µA | |
TA = –40°C to 125°C | 2 | ||||||
|zKA| | Output impedance(2) | VKA = VI(ref), f ≤ 1 kHz, IKA = 1 mA to 100 mA, TA = 25°C (see Figure 13) |
0.2 | 0.4 | Ω |
PARAMETER | TEST CONDITIONS | MIN | TYP | MAX | UNIT | ||
---|---|---|---|---|---|---|---|
VI(ref) | Reference input voltage | VKA = VI(ref)
(see Figure 13) |
TA = 25°C | 2475 | 2500 | 2540 | mV |
TA = –55°C to 125°C | 2460 | 2550 | |||||
VI(dev) | Deviation of reference input voltage over full temperature range(1) | VKA = VI(ref), TA = –55°C to 125°C (see Figure 13) |
17 | 55(2) | mV | ||
Ratio of change in reference input voltage to the change in cathode voltage | ΔVKA = 3 V to 36 V, TA = –55°C to 125°C (see Figure 14) |
–1.1 | –2 | mV/V | |||
II(ref) | Reference input current | R1 = 10 kΩ, R2 = ∞ (see Figure 14) |
TA = 25°C | 1.5 | 2.5 | µA | |
TA = –55°C to 125°C | 5 | ||||||
II(dev) | Deviation of reference input current over full temperature range(1) | R1 = 10 kΩ, R2 = ∞, TA = –55°C to 125°C (see Figure 14) |
0.5 | 3(2) | µA | ||
Imin | Minimum cathode current for regulation | VKA = VI(ref), TA = 25°C (see Figure 13) | 0.45 | 1 | mA | ||
Ioff | Off-state cathode current | VKA = 36 V, VI(ref) = 0 (see Figure 15) |
TA = 25°C | 0.18 | 0.5 | µA | |
TA = –55°C to 125°C | 2 | ||||||
|zKA| | Output impedance(3) | VKA = VI(ref), f ≤ 1 kHz, IKA = 1 mA to 100 mA, TA = 25°C (see Figure 13) |
0.2 | 0.4 | Ω |
GRAPH | FIGURE |
---|---|
Reference voltage vs Free-air temperature | Figure 1 |
Reference current vs Fire-air temperature | Figure 2 |
Cathode current vs Cathode voltage | Figure 3, Figure 4 |
Off-state cathode current vs Free-air temperature | Figure 5 |
Ratio of delta reference voltage to delta cathode voltage vs Free-air temperature | Figure 6 |
Equivalent input-noise voltage vs Frequency | Figure 7 |
Equivalent input-noise voltage over a 10-second period | Figure 8 |
Small-signal voltage amplification vs Frequency | Figure 9 |
Reference impedance vs Frequency | Figure 10 |
Pulse response | Figure 11 |
Stability boundary conditions | Figure 12 |