TA7806F TOSHIBA | Alldatasheet

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Features

/G6c/G20Suitable for CMOS, TTL, the other digital IC's power supply. /G6c/G20Internal thermal overload protection. /G6c/G20Internal short circuit current limiting. /G6c/G20Maximum output current of 1 A. /G6c/G20Packaged in POWER MOLD. Pin Assignment IN 1 3 OUT COMMON (CASE) Marking side Weight HSIP3-P-2.30B: 0.36 g (Typ.) HSOP3-P-2.30A: 0.36 g (Typ.)

Maximum Ratings (Ta = 25°C) Characteristics Symbol Rating Unit TA7805F TA78057F TA7806F TA7807F TA7808F TA7809F TA7810F TA7812F TA7815F TA7818F TA7820F Input voltage TA7824F VIN V (Ta = 25°C) 1 Power dissipation (Tc = 25°C) PD 10 W Operating temperature T opr −30~85 °C Storage temperature T stg −55~150 °C Junction temperature T j 150 °C Rth (j-c) 12.5 Thermal resistance Rth (j-a) 125 °C/W

Electrical Characteristics

(Unless otherwise specified, VIN = 10 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 4.8 5.0 5.2 V

7.0 V ≤ VIN ≤ 25 V ― 3 100

Line regulation Reg·line 1 T j = 25°C

8.0 V ≤ VIN ≤ 12 V ― 1 50

5 mA ≤ IOUT ≤ 1.4 A ― 15 100 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 5 50 mV Output voltage V OUT 1 T j = 25°C 7.0 V ≤ VIN ≤ 20 V 5.0 mA ≤ IOUT ≤ 1.0 A 4.75 ― 5.25 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.2 8.0 mA Quiescent current change ∆IB 1 7.0 V ≤ VIN ≤ 25 V, IOUT = 5 mA, Tj = 25°C ― ― 1.3 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 50 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 10 V ≤ VIN ≤ 18 V IOUT = 50 mA, Tj = 25°C 57 73 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 1.6 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −0.6 ― mV/°C TA78057F (Unless otherwise specified, VIN = 10.7 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 5.47 5.7 5.93 V

7.7 V ≤ VIN ≤ 25 V ― 4 110

Line regulation Reg·line 1 T j = 25°C 8.7 V ≤ VIN ≤ 12.7 V ― 2 55 mV 5 mA ≤ IOUT ≤ 1.4 A ― 15 110 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 5 55 mV Output voltage V OUT 1 T j = 25°C 7.7 V ≤ VIN ≤ 20.7 V 5.0 mA ≤ IOUT ≤ 1.0 A 5.42 ― 5.98 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.3 8.0 mA Quiescent current change ∆IB 1 7.7 V ≤ VIN ≤ 25 V, IOUT = 5 mA, Tj = 25°C ― ― 1.3 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 55 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 8.8 V ≤ VIN ≤ 18.8 V, IOUT = 50 mA, Tj = 25°C 56 72 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 1.5 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −0.7 ― mV/°C

(Unless otherwise specified, VIN = 11 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 5.75 6.0 6.25 V

8.0 V ≤ VIN ≤ 25 V ― 4 120

Line regulation Reg·line 1 T j = 25°C

9 V ≤ VIN ≤ 13 V ― 2 60

5 mA ≤ IOUT ≤ 1.4 A ― 15 120 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 5 60 mV Output voltage V OUT 1 T j = 25°C 8 V ≤ VIN ≤ 21 V 5.0 mA ≤ IOUT ≤ 1.0 A 5.7 ― 6.3 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.3 8.0 mA Quiescent current change ∆IB 1 8.0 V ≤ VIN ≤ 25 V, IOUT = 5 mA, Tj = 25°C ― ― 1.3 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 55 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 11 V ≤ VIN ≤ 19 V IOUT = 50 mA, Tj = 25°C 56 72 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 1.5 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −0.7 ― mV/°C TA7807F (Unless otherwise specified, VIN = 12 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 6.72 7.0 7.28 V

9 V ≤ VIN ≤ 25 V ― 5 140

Line regulation Reg·line 1 T j = 25°C

10 V ≤ VIN ≤ 14 V ― 2 70

5 mA ≤ IOUT ≤ 1.4 A ― 15 140 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 5 70 mV Output voltage V OUT 1 T j = 25°C 9 V ≤ VIN ≤ 22 V 5.0 mA ≤ IOUT ≤ 1.0 A 6.65 ― 7.35 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.3 8.0 mA Quiescent current change ∆IB 1 9 V ≤ VIN ≤ 25 V, IOUT = 5 mA, Tj = 25°C ― ― 1.3 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 60 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 12 V ≤ VIN ≤ 20 V IOUT = 50 mA, Tj = 25°C 54 70 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 1.3 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −0.8 ― mV/°C

(Unless otherwise specified, VIN = 14 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 7.7 8.0 8.3 V

10.5 V ≤ VIN ≤ 25 V ― 6 160

Line regulation Reg·line 1 T j = 25°C

11 V ≤ VIN ≤ 17 V ― 2 80

5 mA ≤ IOUT ≤ 1.4 A ― 12 160 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 4 80 mV Output voltage V OUT 1 T j = 25°C 10.5 V ≤ VIN ≤ 23 V 5.0 mA ≤ IOUT ≤ 1.0 A 7.6 ― 8.4 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.3 8.0 mA Quiescent current change ∆IB 1 10.5 V ≤ VIN ≤ 25 V, IOUT = 5 mA, Tj = 25°C ― ― 1.0 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 70 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 14 V ≤ VIN ≤ 21.5 V IOUT = 50 mA, Tj = 25°C 53 69 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 1.1 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −1.0 ― mV/°C TA7809F (Unless otherwise specified, VIN = 15 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 8.64 9.0 9.36 V 11.5 V ≤ VIN ≤ 26 V ― 7.0 180 Line regulation Reg·line 1 T j = 25°C 13 V ≤ VIN ≤ 19 V ― 2.5 90 mV 5 mA ≤ IOUT ≤ 1.4 A ― 12 180 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 4 90 mV Output voltage V OUT 1 T j = 25°C 11.5 V ≤ VIN ≤ 24 V 5.0 mA ≤ IOUT ≤ 1.0 A 8.55 ― 9.45 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.3 8.0 mA Quiescent current change ∆IB 1 11.5 V ≤ VIN ≤ 26 V, IOUT = 5 mA, Tj = 25°C ― ― 1.0 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 75 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 15 V ≤ VIN ≤ 22.5 V IOUT = 50 mA, Tj = 25°C 51 67 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 1.0 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −1.1 ― mV/°C

(Unless otherwise specified, VIN = 16 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 9.6 10.0 10.4 V

12.5 V ≤ VIN ≤ 27 V ― 8 200

Line regulation Reg·line 1 T j = 25°C 14 V ≤ VIN ≤ 20 V ― 2.5 100 mV 5 mA ≤ IOUT ≤ 1.4 A ― 12 200 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 4 100 mV Output voltage V OUT 1 T j = 25°C 12.5 V ≤ VIN ≤ 25 V 5.0 mA ≤ IOUT ≤ 1.0 A 9.5 ― 10.5 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.3 8.0 mA Quiescent current change ∆IB 1 12.5 V ≤ VIN ≤ 27 V, IOUT = 5 mA, Tj = 25°C ― ― 1.0 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 80 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 16 V ≤ VIN ≤ 23.5 V IOUT = 50 mA, Tj = 25°C 50 66 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 0.9 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −1.3 ― mV/°C TA7812F (Unless otherwise specified, VIN = 19 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 11.5 12.0 12.5 V

14.5 V ≤ VIN ≤ 30 V ― 10 240

Line regulation Reg·line 1 T j = 25°C

16 V ≤ VIN ≤ 22 V ― 3 120

5 mA ≤ IOUT ≤ 1.4 A ― 12 240 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 4 120 mV Output voltage V OUT 1 T j = 25°C 14.5 V ≤ VIN ≤ 27 V 5.0 mA ≤ IOUT ≤ 1.0 A 11.4 ― 12.6 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.3 8.0 mA Quiescent current change ∆IB 1 14.5 V ≤ VIN ≤ 30 V, IOUT = 5 mA, Tj = 25°C ― ― 1.0 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 90 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 19 V ≤ VIN ≤ 25 V IOUT = 50 mA, Tj = 25°C 50 66 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 0.7 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −1.6 ― mV/°C

(Unless otherwise specified, VIN = 23 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 14.4 15.0 15.6 V

17.5 V ≤ VIN ≤ 30 V ― 11 300

Line regulation Reg·line 1 T j = 25°C

20 V ≤ VIN ≤ 26 V ― 3 150

5 mA ≤ IOUT ≤ 1.4 A ― 12 300 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 4 150 mV Output voltage V OUT 1 T j = 25°C 17.5 V ≤ VIN ≤ 30 V 5.0 mA ≤ IOUT ≤ 1.0 A 14.25 ― 15.75 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.4 8.0 mA Quiescent current change ∆IB 1 17.5 V ≤ VIN ≤ 30 V, IOUT = 5 mA, Tj = 25°C ― ― 1.0 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 110 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 23 V ≤ VIN ≤ 28.5 V IOUT = 50 mA, Tj = 25°C 49 65 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 0.5 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −2.0 ― mV/°C TA7818F (Unless otherwise specified, VIN = 27 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 17.3 18.0 18.7 V

21 V ≤ VIN ≤ 33 V ― 13 360

Line regulation Reg·line 1 T j = 25°C

24 V ≤ VIN ≤ 30 V ― 4 180

5 mA ≤ IOUT ≤ 1.4 A ― 12 360 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 4 180 mV Output voltage V OUT 1 T j = 25°C 21 V ≤ VIN ≤ 33 V 5.0 mA ≤ IOUT ≤ 1.0 A 17.1 ― 18.9 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.5 8.0 mA Quiescent current change ∆IB 1 21 V ≤ VIN ≤ 33 V, IOUT = 5 mA, Tj = 25°C ― ― 1.0 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 125 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 27 V ≤ VIN ≤ 32 V IOUT = 50 mA, Tj = 25°C 47 63 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 0.4 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −2.5 ― mV/°C

(Unless otherwise specified, VIN = 29 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 19.2 20.0 20.8 V

23 V ≤ VIN ≤ 35 V ― 15 400

Line regulation Reg·line 1 T j = 25°C

26 V ≤ VIN ≤ 32 V ― 5 200

5 mA ≤ IOUT ≤ 1.4 A ― 12 400 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 4 200 mV Output voltage V OUT 1 T j = 25°C 23 V ≤ VIN ≤ 35 V 5.0 mA ≤ IOUT ≤ 1.0 A 19.0 ― 21.0 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.6 8.0 mA Quiescent current change ∆IB 1 23 V ≤ VIN ≤ 35 V, IOUT = 5 mA, Tj = 25°C ― ― 1.0 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 135 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 29 V ≤ VIN ≤ 34 V IOUT = 50 mA, Tj = 25°C 45 61 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 0.4 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −3.0 ― mV/°C TA7824F (Unless otherwise specified, VIN = 33 V, IOUT = 500 mA, 0°C ≤ Tj ≤ 125°C) Characteristics Symbol Test Circuit Test Condition Min Typ. Max Unit Output voltage V OUT 1 T j = 25°C, IOUT = 100 mA 23.0 24.0 25.0 V

27 V ≤ VIN ≤ 38 V ― 18 480

Line regulation Reg·line 1 T j = 25°C

30 V ≤ VIN ≤ 36 V ― 6 240

5 mA ≤ IOUT ≤ 1.4 A ― 12 480 Load regulation Reg·load 1 T j = 25°C 250 mA ≤ IOUT ≤ 750 mA ― 4 240 mV Output voltage V OUT 1 T j = 25°C 27 V ≤ VIN ≤ 38 V 5.0 mA ≤ IOUT ≤ 1.0 A 22.8 ― 25.2 V Quiescent current I B 1 T j = 25°C, IOUT = 5 mA ― 4.6 8.0 mA Quiescent current change ∆IB 1 27 V ≤ VIN ≤ 38 V, IOUT = 5 mA, Tj = 25°C ― ― 1.0 mA Output noise voltage V NO 2 Ta = 25°C, 10 Hz ≤ f ≤ 100 kHz IOUT = 50 mA ― 150 ― µV rms Ripple rejection R.R. 3 f = 120 Hz, 33 V ≤ VIN ≤ 38 V IOUT = 50 mA, Tj = 25°C 45 61 ― dB Dropout voltage V D 1 I OUT = 1.0 A, Tj = 25°C ― 2.0 ― V Short circuit current limit I SC 1 T j = 25°C ― 0.3 ― A Average temperature coefficient of output voltage TCVO 1 I OUT = 5 mA ― −3.5 ― mV/°C

Test Circuit 1/Standard Application Circuit Test Circuit 2 V NO Test Circuit 3 R.R.

Precautions on Application (1) In regard to GND, be careful not to apply a negative voltage to the input/output terminal. Further, special care is necessary in case of a voltage boost application. (2) When a surge voltage exceeding maximum rating is applied to the input terminal or when a voltage in excess of the input terminal voltage is applied to the output terminal, the circuit may be destroyed. Specially, in the latter case, great care is necessary. Further, if the input terminal shorts to GND in a state of normal operation, the output terminal voltage becomes higher than the input voltage (GND potential), and the electric charge of a chemical capacitor connected to the output terminal flows into the input side, which may cause the destruction of circuit. In these cases, take such steps as a zener diode and a general silicon diode are connected to the circuit, as shown in the following figure. (3) When the input voltage is too high, the power dissipation of three terminal regulator increases because of series regulator, so that the junction temperature rises. In such a case, it is recommended to reduce the power dissipation by inserting the power limiting resistor R SD in the input terminal, and to reduce the junction temperature as a result. The power dissipation P D of IC is expressed in the following equation. If V IN' is reduced below the lowest voltage necessary for the IC, the parasitic oscillation will be caused according to circumstances. In determing the resistance value of R SD, design with margin should be made by making reference to the following equation. (4) Connect the input terminal and GND, and the output terminal and GND, by capacitor respectively. The capacitances should be determined experimentally because they depend on PCB patterns. In particular, adequate investigation should be made so that there is no problem even at time of high or low temperature.

(5) The molded plastic portion of this unit, measuring 5.5 mm (L) by 6.8 mm (W) by 2.5 mm (T), is more comapact compared to its equivalents TO-220. The GND fin extends directly out of the main body, and can be soldered directly to the ceramic circuit board, to significantly increase the power dissipation. For obtaining high reliability on the heat sink design of the regulator IC, it is generally required to derate more than 20% of maximum junction temperature (T j max). Further, full consideration should be given to the installation of IC to the heat sink. Application Circuits (1) Voltage boost regulator (a) Voltage boost by use of zener diode (b) Voltage boost by use of resistor (c) Adjustable output regulator

(2) Current boost regulator

/Gb7/G20TOSHIBA is continually working to improve the quality and reliability of its products. Nevertheless, semiconductor devices in general can malfunction or fail due to their inherent electrical sensitivity and vulnerability to physical stress. It is the responsibility of the buyer, when utilizing TOSHIBA products, to comply with the standards of safety in making a safe design for the entire system, and to avoid situations in which a malfunction or failure of such TOSHIBA products could cause loss of human life, bodily injury or damage to property. In developing your designs, please ensure that TOSHIBA products are used within specified operating ranges as set forth in the most recent TOSHIBA products specifications. Also, please keep in mind the precautions and conditions set forth in the “Handling Guide for Semiconductor Devices,” or “TOSHIBA Semiconductor Reliability Handbook” etc.. /Gb7/G20The TOSHIBA products listed in this document are intended for usage in general electronics applications (computer, personal equipment, office equipment, measuring equipment, industrial robotics, domestic appliances, etc.). These TOSHIBA products are neither intended nor warranted for usage in equipment that requires extraordinarily high quality and/or reliability or a malfunction or failure of which may cause loss of human life or bodily injury (“Unintended Usage”). Unintended Usage include atomic energy control instruments, airplane or spaceship instruments, transportation instruments, traffic signal instruments, combustion control instruments, medical instruments, all types of safety devices, etc.. Unintended Usage of TOSHIBA products listed in this document shall be made at the customer’s own risk. /Gb7/G20The products described in this document are subject to the foreign exchange and foreign trade laws. /Gb7/G20The information contained herein is presented only as a guide for the applications of our products. No responsibility is assumed by TOSHIBA CORPORATION for any infringements of intellectual property or other rights of the third parties which may result from its use. No license is granted by implication or otherwise under any intellectual property or other rights of TOSHIBA CORPORATION or others. /Gb7/G20The information contained herein is subject to change without notice. 000707EBARESTRICTIONS ON PRODUCT USE