BCR148 INFINEON | Alldatasheet

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Technical content

BCR148.../SEMH2 NPN Silicon Digital Transistor

  • Switching circuit, inverter, interface circuit driver circuit
  • Built in bias resistor (R1=47kΩ, R2=47kΩ)
  • For 6-PIN packages: two (galvanic) internal isolated transistors with good matching in one package BCR148/F/L3 BCR148T/W BCR148S/U SEMH2 EHA07184 C EB R 2 EHA07174 6 54 321 C1 B2 E2 C2B1E1 R 2 R 2 TR1 TR2 Type Marking Pin Configuration Package BCR148 BCR148F BCR148L3 BCR148S BCR148T BCR148U BCR148W SEMH2 WEs WEs WE WEs WEs WEs WEs WE 1=B 1=B 1=B 1=E1 1=B 1=E1 1=B 1=E1 2=E 2=E 2=E 2=B1 2=E 2=B1 2=E 2=B1 3=C 3=C 3=C 3=C2 3=C 3=C2 3=C 3=C2 4=E2 4=E2 4=E2 5=B2 5=B2 5=B2 6=C1 6=C1 6=C1 SOT23 TSFP-3 TSLP-3-4 SOT363 SC75 SC74 SOT323 SOT666

BCR148.../SEMH2 Maximum Ratings Parameter Symbol Value Unit Collector-emitter voltage VCEO 50 V Collector-base voltage VCBO 50 Emitter-base voltage VEBO 10 Input on voltage Vi(on) 50 Collector current IC 70 mA Total power dissipation- BCR148, TS ≤ 102°C BCR148F, TS ≤ 128°C BCR148L3, TS ≤ 135°C BCR148S, TS ≤ 115°C BCR148T, TS ≤ 109°C BCR148U, TS ≤ 118°C BCR148W, TS ≤ 124°C SEMH2, TS ≤ 75°C Ptot 200 250 250 250 250 250 250 250 mW Junction temperature Tj 150 °C Storage temperature Tstg -65 ... 150 Thermal Resistance Parameter Symbol Value Unit Junction - soldering point1) BCR148 BCR148F BCR148L3 BCR148S BCR148T BCR148U BCR148W SEMH2 RthJS ≤ 240 ≤ 90 ≤ 60 ≤ 140 ≤ 165 ≤ 133 ≤ 105 ≤ 300 K/W 1For calculation of RthJA please refer to Application Note Thermal Resistance

BCR148.../SEMH2 Electrical Characteristics at TA = 25°C, unless otherwise specified Parameter Symbol Values Unit min. typ. max. DC Characteristics Collector-emitter breakdown voltage IC = 100 µA, IB = 0 V(BR)CEO 50 - - V Collector-base breakdown voltage IC = 10 µA, IE = 0 V(BR)CBO 50 - - Collector-base cutoff current VCB = 40 V, IE = 0 ICBO - - 100 nA Emitter-base cutoff current VEB = 10 V, IC = 0 IEBO - - 164 µA DC current gain1) IC = 5 mA, VCE = 5 V hFE 70 - - - Collector-emitter saturation voltage1) IC = 10 mA, IB = 0.5 mA VCEsat - - 0.3 V Input off voltage IC = 100 µA, VCE = 5 V Vi(off) 0.8 - 1.5 Input on voltage IC = 2 mA, VCE = 0.3 V Vi(on) 1 - 3 Input resistor R1 32 47 62 kΩ Resistor ratio R1/R2 0.9 1 1.1 - AC Characteristics Transition frequency IC = 10 mA, VCE = 5 V, f = 100 MHz fT - 100 - MHz Collector-base capacitance VCB = 10 V, f = 1 MHz Ccb - 3 - pF 1Pulse test: t < 300µs; D < 2%

BCR148.../SEMH2 DC current gain hFE = ƒ(IC) VCE = 5V (common emitter configuration) 10 -1 10 0 10 1 10 2 10 3 mA IC 0 10 1 10 2 10 3 10 hFE Collector-emitter saturation voltage VCEsat = ƒ(IC), hFE = 20 0 0.2 0.4 0.6 V 1 VCEsat 0 10 1 10 2 10 mA IC Input on Voltage Vi(on) = ƒ(IC) VCE = 0.3V (common emitter configuration) 10 -1 10 0 10 1 10 2 V Vi(on) -1 10 0 10 1 10 2 10 mA IC Input off voltage Vi(off) = ƒ(IC) VCE = 5V (common emitter configuration) 0 1 2 3 V 5 Vi(off) -3 10 -2 10 -1 10 0 10 1 10 mA IC

BCR148.../SEMH2 Total power dissipation Ptot = ƒ(TS) BCR148 0 20 40 60 80 100 120 °C 150 TS 100 150 200 mW 300 Ptot Total power dissipation Ptot = ƒ(TS) BCR148F 0 20 40 60 80 100 120 °C 150 TS 100 150 200 mW 300 Ptot Total power dissipation Ptot = ƒ(TS) BCR148L3 0 20 40 60 80 100 120 °C 150 TS 100 150 200 mW 300 Ptot Total power dissipation Ptot = ƒ(TS) BCR148S 0 20 40 60 80 100 120 °C 150 TS 100 150 200 mW 300 Ptot

BCR148.../SEMH2 Total power dissipation Ptot = ƒ(TS) BCR148T 0 20 40 60 80 100 120 °C 150 TS 100 150 200 mW 300 Ptot Total power dissipation Ptot = ƒ(TS) BCR148U 0 20 40 60 80 100 120 °C 150 TS 100 150 200 mW 300 Ptot Total power dissipation Ptot = ƒ(TS) BCR148W 0 20 40 60 80 100 120 °C 150 TS 100 150 200 mW 300 Ptot Total power dissipation Ptot = ƒ(TS) SEMH2 0 20 40 60 80 100 120 °C 150 TS 100 150 200 mW 300 Ptot

BCR148.../SEMH2 Permissible Pulse Load Ptotmax/PtotDC = ƒ(tp) BCR148 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp 0 10 1 10 2 10 3 10 Ptotmax / PtotDC D = 0 0.005 0.01 0.02 0.05 0.1 0.2 0.5 Permissible Pulse Load RthJS = ƒ(tp) BCR148 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp -1 10 0 10 1 10 2 10 3 10 K/WRthJS 0.5 0.2 0.1 0.05 0.02 0.01 0.005 D = 0 Permissible Pulse Load Ptotmax/PtotDC = ƒ(tp) BCR148F 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp 0 10 1 10 2 10 3 10 Ptotmax/PtotDC D=0 0.005 0.01 0.02 0.05 0.1 0.2 0.5 Permissible Puls Load RthJS = ƒ (tp) BCR148F 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp -1 10 0 10 1 10 2 10 K/WRthJS D=0.5 0.2 0.1 0.05 0.02 0.01 0.005

BCR148.../SEMH2 Permissible Puls Load RthJS = ƒ (tp) BCR148L3 10 -7 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp -1 10 0 10 1 10 2 10 RthJS 0.5 0.2 0.1 0.05 0.02 0.01 0.005 D = 0 Permissible Pulse Load Ptotmax/PtotDC = ƒ(tp) BCR148L3 10 -7 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp 0 10 1 10 2 10 3 10 Ptotmax/ PtotDC D = 0 0.005 0.01 0.02 0.05 0.1 0.2 0.5 Permissible Puls Load RthJS = ƒ (tp) BCR148S 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp -1 10 0 10 1 10 2 10 3 10 K/WRthJS 0.5 0.2 0.1 0.05 0.02 0.01 0.005 D = 0 Permissible Pulse Load Ptotmax/PtotDC = ƒ(tp) BCR148S 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp 0 10 1 10 2 10 3 10 Ptotmax / PtotDC D = 0 0.005 0.01 0.02 0.05 0.1 0.2 0.5

BCR148.../SEMH2 Permissible Puls Load RthJS = ƒ (tp) BCR148T 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp -1 10 0 10 1 10 2 10 3 10 K/WRthJS D=0.5 0.2 0.1 0.05 0.02 0.01 0.005 Permissible Pulse Load Ptotmax/PtotDC = ƒ(tp) BCR148T 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp 0 10 1 10 2 10 3 10 Ptotmax / PtotDC D=0 0.005 0.01 0.02 0.05 0.1 0.2 0.5 Permissible Puls Load RthJS = ƒ (tp) BCR148U 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp -1 10 0 10 1 10 2 10 3 10 K/WRthJS D=0.5 0.2 0.1 0.05 0.02 0.01 0.005 Permissible Pulse Load Ptotmax/PtotDC = ƒ(tp) BCR148U 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp 0 10 1 10 2 10 3 10 Ptotmax / PtotDC D=0 0.005 0.01 0.02 0.05 0.1 0.2 0.5

BCR148.../SEMH2 Permissible Puls Load RthJS = ƒ (tp) BCR148W 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp -1 10 0 10 1 10 2 10 3 10 K/W RthJS 0.5 0.2 0.1 0.05 0.02 0.01 0.005 D = 0 Permissible Pulse Load Ptotmax/PtotDC = ƒ(tp) BCR148W 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp 0 10 1 10 2 10 3 10 Ptotmax / PtotDC D = 0 0.005 0.01 0.02 0.05 0.1 0.2 0.5 Permissible Puls Load RthJS = ƒ (tp) SEMH2 10 -7 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp -1 10 0 10 1 10 2 10 3 10 K/WRthJS 0.5 0.2 0.1 0.05 0.02 0.01 0.005 D = 0 Permissible Pulse Load Ptotmax/PtotDC = ƒ(tp) SEMH2 10 -7 10 -6 10 -5 10 -4 10 -3 10 -2 10 0 s tp 0 10 1 10 2 10 3 10 Ptotmax/ PtotDC D = 0 0.005 0.01 0.02 0.05 0.1 0.2 0.5