SLLSFV9B July 2024 – May 2026 TCAN1473-Q1
PRODMIX
| PARAMETER | TEST CONDITIONS | MIN | TYP | MAX | UNIT | ||
|---|---|---|---|---|---|---|---|
| CAN Driver Characteristics | |||||||
| VCANH(D) | Bus output voltage (dominant) CANH | TXD = 0V, 45 ≤ RL ≤ 65 Ω, CL = open, RCM = open See Figure 6-1 and Figure 6-4 |
3 | 4.26 | V | ||
| VCANL(D) | Bus output voltage (dominant) CANL | 0.75 | 2.01 | V | |||
| VCANH(R) VCANL(R) |
Recessive output voltage Bus biasing active |
TXD = VIO, RL = open (no load), RCM = open See Figure 6-1 and Figure 6-4 |
2 | 3 | V | ||
| VCANH(R) VCANL(R) |
Recessive output voltage Bus biasing active |
Recessive output voltage Bus biasing active |
TXD = VIO, 45 ≤ RL ≤ 65 Ω, CL = open, CSPLIT = 4.7nF See Figure 6-1 and Figure 6-4 |
2.256 | 2.756 | V | |
| VSYM | Driver symmetry Bus biasing active (VO(CANH) + VO(CANL) ) / VREC where VREC = VCANH(R) + VCANL(R) |
nSTB= VIO, RL = 45 ≤ RL ≤ 65 Ω, CSPLIT = 4.7nF, CL = Open, RCM = Open, TXD = 250kHz, 1MHz, 2.5MHz See Figure 6-1 and Figure 6-4 |
0.95 | 1.05 | V/V | ||
| VSYM_DC | DC Driver symmetry Bus biasing active VCC – VO(CANH) – VO(CANL) |
nSTB= VIO, RL = 45 ≤ RL ≤ 65 Ω, CL = open See Figure 6-1 and Figure 6-4 |
–300 | 300 | mV | ||
| VDIFF(D) | Differential output voltage Bus biasing active Dominant |
CANH - CANL | nSTB = VIO, TXD = 0V, 45 Ω ≤ RL ≤ 65 Ω, CL = open See Figure 6-1 and Figure 6-4 |
1.5 | 3 | V | |
| CANH - CANL | nSTB = VIO, TXD = 0V, 45 Ω ≤ RL ≤ 70 Ω, CL = open See Figure 6-1 and Figure 6-4 |
1.5 | 3.3 | V | |||
| CANH - CANL | nSTB = VIO, TXD = 0V, RL = 2240 Ω, CL = open See Figure 6-1 and Figure 6-4 |
1.5 | 5 | V | |||
| VDIFF(R) | Differential output voltage Bus biasing active Recessive |
CANH - CANL | nSTB = VIO, TXD = VIO, 45 ≤ RL ≤ 65 Ω, CL = open, CSPLIT = 4.7nF See Figure 6-1 and Figure 6-4 |
–50 | 50 | mV | |
| VDIFF(R) | Differential output voltage Bus biasing active Recessive |
CANH - CANL | nSTB = VIO, TXD = VIO, RL = open Ω, CL = open See Figure 6-1 and Figure 6-4 |
–50 | 50 | mV | |
| VCANH(INACT) | Bus output voltage on CANH with bus biasing inactive | nSTB = 0V, TXD = VIO, RL = open (no load), CL = open See Figure 6-1 and Figure 6-4 |
-0.1 | 0.1 | V | ||
| VCANL(INACT) | Bus output voltage on CANL with bus biasing inactive | nSTB = 0V, TXD = VIO, RL = open (no load), CL = open See Figure 6-1 and Figure 6-4 |
-0.1 | 0.1 | V | ||
| VDIFF(INACT) | Bus output voltage on CANH - CANL (recessive) with bus biasing inactive | nSTB = 0V, TXD = VIO, RL = open (no load), CL = open See Figure 6-1 and Figure 6-4 |
-0.2 | 0.2 | V | ||
| ICANH(OS) | Short-circuit steady-state output current, dominant, CANH | nSTB = VIO, TXD = 0V -15V ≤ V(CANH) ≤ 40V See Figure 6-1 and Figure 6-8 |
–100 | mA | |||
| ICANL(OS) | Short-circuit steady-state output current, dominant, CANL | nSTB = VIO, TXD = 0V -15V ≤ V(CANL) ≤ 40V See Figure 6-1 and Figure 6-8 |
100 | mA | |||
| IOS(REC) | Short-circuit steady-state output current Bus biasing active Recessive |
nSTB = VIO, VBUS = CANH = CANL -27V ≤ VBUS ≤ 42V See Figure 6-1 and Figure 6-8 |
–3 | 3 | mA | ||
| RSE_ACT_REC | Single ended SIC impedance (CANH to common mode bias and CANL to common mode bias) during active recessive drive phase | 2V ≤ VCANH,CANL ≤ VCC - 2V if –12V ≤ VO(D) ≤ 12V See Figure 6-11 |
37.5 | 66.5 | Ω | ||
| RDIFF_ACT_REC | Differential input resistance in active recessive drive phase (CANH to CANL) | 2V ≤ VCANH,CANL ≤ VCC - 2V See Figure 6-11 |
75 | 133 | Ω | ||
| CAN Receiver Characteristics | |||||||
| VIT(DOM) | Receiver dominant state input voltage range Bus biasing active |
nSTB = VIO, -12V ≤ VCM ≤ 12V See Figure 6-5 and Table 7-6 |
0.9 | 8 | V | ||
| VIT(REC) | Receiver recessive state input voltage range Bus biasing active |
-3 | 0.5 | V | |||
| VHYS | Hysteresis voltage for input threshold Bus biasing active |
nSTB = VIO See Figure 6-5 and Table 7-6 |
135 | mV | |||
| VDIFF(DOM) | Receiver dominant state input voltage range Bus biasing inactive |
nSTB = 0V, -12V ≤ VCM ≤ 12V See Figure 6-5 and Table 7-6 |
1.150 | 8 | V | ||
| VDIFF(REC) | Receiver recessive state input voltage range Bus biasing inactive |
-3 | 0.4 | V | |||
| VCM | Common mode range | nSTB = VIO See Figure 6-5 and Table 7-6 |
–12 | 12 | V | ||
| IOFF(LKG) | Power-off (unpowered) bus input leakage current | VSUP = 0V, CANH = CANL = 5V | 4.5 | µA | |||
| CI | Input capacitance to ground (CANH or CANL) (1) | TXD = VCC = VIO | 40 | pF | |||
| CID | Differential input capacitance (1) | TXD = VCC = VIO | 20 | pF | |||
| RDIFF_PAS_REC | Differential input resistance in passive recessive phase |
TXD = VCC = VIO = 5V, nSTB = 5V -12V ≤ VCM ≤ 12V |
30 | 100 | kΩ | ||
| RSE_PAS_REC | Single ended input resistance (CANH or CANL) in passive recessive phase | 15 | 50 | kΩ | |||
| RIN(M) | Input resistance matching: [1 – RIN(CANH) / RIN(CANL)] × 100% |
V(CANH) = V(CANL) = 5V | –3 | 3 | % | ||
| RCBF | Valid differential load impedance range for bus fault circuitry | RCM = RL, CL = open | 45 | 70 | Ω | ||
| TXD Characteristics | |||||||
| VIH | High-level input voltage | 0.7 | VIO | ||||
| VIL | Low-level input voltage | 0.3 | VIO | ||||
| IIH | High-level input leakage current | TXD = VIO = 5.5V | –2.5 | 1 | µA | ||
| IIL | Low-level input leakage current | TXD = 0V, VIO = 5.5V | –137 | –2.5 | µA | ||
| ILKG(OFF) | Unpowered leakage current | TXD = 5.5V, VSUP = VIO = 0V | –1 | 1 | µA | ||
| RPU | Pull-up resistance to VIO | 40 | 60 | 80 | kΩ | ||
| CI | Input Capacitance | VIN = 0.4x sin(2 × π × 2 × 106 × t) + 2.5V | 5 | pF | |||
| RXD Characteristics | |||||||
| VOH | High-level output voltage | IO = – 1.5mA, VIO =1.7V See Figure 6-5 |
0.8 | VIO | |||
| VOH | High-level output voltage | IO = –2mA, VIO ≥ 2.5V See Figure 6-5 |
0.8 | VIO | |||
| VOL | Low-level output voltage | IO = 2mA See Figure 6-5 |
0.2 | VIO | |||
| ILKG(OFF) | Unpowered leakage current | RXD = 5.5V, VSUP = VIO = 0V | -1 | 1 | µA | ||
| nSTB Characteristics | |||||||
| VIH | High-level input voltage | 0.7 | VIO | ||||
| VIL | Low-level input voltage | 0.3 | VIO | ||||
| IIH | High-level input leakage current | nSTB = VIO = 5.5V | 0.5 | 137 | µA | ||
| IIL | Low-level input leakage current | nSTB = 0V, VIO = 5.5V | –1 | 1 | µA | ||
| ILKG(OFF) | Unpowered leakage current | nSTB = 5.5V, VIO = 0V | –1 | 1 | µA | ||
| RPD | Pull-down resistance to GND | 40 | 60 | 80 | kΩ | ||
| nFAULT Characteristics | |||||||
| VOH | High-level output voltage | IO =
-2mA |
0.8 | VIO | |||
| VOL | Low-level output voltage | IO =
2mA |
0.2 | VIO | |||
| ILKG(OFF) | Unpowered leakage current | nFAULT = 5.5V, VIO = 0V | –1 | 1 | µA | ||
| EN Characteristics | |||||||
| VIH | High-level input voltage | 0.7 | VIO | ||||
| VIL | Low-level input voltage | 0.3 | VIO | ||||
| IIH | High-level input leakage current | EN = VCC = VIO = 5.5V | 0.5 | 137 | µA | ||
| IIL | Low-level input leakage current | EN = 0V, VCC = VIO = 5.5V | -1 | 1 | µA | ||
| ILKG(OFF) | Unpowered leakage current | EN = 5.5V, VCC = VIO = 0V | -1 | 1 | µA | ||
| RPD | Pull-down resistance to GND | 40 | 60 | 80 | kΩ | ||
| WAKE Characteristics | |||||||
| VIH | High-level input voltage | Sleep mode | VSUP - 2 | V | |||
| VIL | Low-level input voltage | VSUP - 3.5 | V | ||||
| IIH | High-level input leakage current | WAKE = VSUP – 1V | -3 | µA | |||
| IIL | Low-level input leakage current | WAKE = 1V | 3 | µA | |||
| INH Characteristics | |||||||
| ΔVH | High-level voltage drop from VSUP to INH (VSUP - VINH) | IINH = –6mA | 0.5 | 1 | V | ||
| ILKG(INH) | Sleep mode leakage current | INH = 0V | –0.5 | 0.5 | µA | ||
| RPD | Pull-down resistance | Sleep mode | 2.5 | 4 | 6 | MΩ | |