RD74LVC2G32 Dual 2–input OR Gate REJ03D0694–0100 Rev.1.00 Feb 23, 2006 Description The RD74LVC2G32 has dual two–input OR gate in an 8-pin package. Low voltage and high-speed operation is suitable for the battery powered products (e.g., notebook computers), and the low power consumption extends the battery life. Features • • • • • • The basic gate function is lined up as renesas uni logic series. Supply voltage range: 1.65 to 5.5 V Operating temperature range: –40 to +85°C All inputs: VIH (Max.) = 5.5 V (@VCC = 0 V to 5.5 V) All outputs: VO (Max.) = 5.5 V (@VCC = 0 V) Output current: ±4 mA (@VCC = 1.65 V) ±8 mA (@VCC = 2.3 V) ±24 mA (@VCC = 3.0 V) ±32 mA (@VCC = 4.5 V) • Ordering Information Part Name RD74LVC2G32WPE Package Type Package Code (Previous Code) Package Abbreviation WCSP–8 pin SXBG0008LA–A (TBS–8BV) WP Article indication Marking Year code Month code E32YM Rev.1.00 Feb 23, 2006 page 1 of 7 Taping Abbreviation (Quantity) E (3,000 pcs/reel) RD74LVC2G32 Pin Arrangement 0.7 mm GND 4 5 2A 2Y 3 6 2B 1B 2 7 1Y 1A 1 8 VCC 1.5 mm Height 0.4 mm 0.4 mm pitch 0.17 mm 8–Ball Pin#1 INDEX (Bottom view) (Top view view) Logic Diagram 1 1A 2 1B 7 5 2A 6 2B 3 1Y 2Y Function Table Inputs A B Output Y L L L H L H L H H H H H H: High level L: Low level Rev.1.00 Feb 23, 2006 page 2 of 7 RD74LVC2G32 Absolute Maximum Ratings Item Symbol Ratings Unit VCC –0.5 to 6.5 V Supply voltage range Input voltage range *1 Output voltage range *1, 2 VI –0.5 to 6.5 V VO –0.5 to VCC +0.5 V Test Conditions Output : H or L VCC : OFF –0.5 to 6.5 Input clamp current IIK –50 mA VI < 0 Output clamp current IOK –50 mA VO < 0 VO = 0 to VCC Continuous output current Continuous current through VCC or GND IO ±50 mA ICC or IGND ±100 mA θja 140 °C/W Tstg –65 to 150 °C Package Thermal impedance Storage temperature Notes: The absolute maximum ratings are values, which must not individually be exceeded, and furthermore no two of which may be realized at the same time. 1. The input and output voltage ratings ngs may be exceeded if the input and output clamp-current ratings are observed. 2. This value is limited to 5.5 V maximum. Recommended Operating Conditions Item Supply voltage range Symbol Min Max Unit Conditions VCC 1.65 5.5 V Input voltage range VI 0 5.5 V Output voltage range VO 0 VCC V Output current IOL — 4 mA — 8 VCC = 2.3 V — 16 VCC = 3.0 V — 24 — 32 VCC = 4.5 V — –4 VCC = 1.65 V — –8 VCC = 2.3 V — –16 VCC = 3.0 V — –24 — –32 0 20 IOH Input transition rise or fall rate Operating free-air temperature ∆t / ∆v Ta VCC = 4.5 V ns / V VCC = 1.65 to 1.95 V, 2.3 to 2.7 V 0 10 VCC = 3.0 to 3.6 V 0 5 VCC = 4.5 to 5.5 V –40 85 Note: Unused or floating inputs must be held high or low. Rev.1.00 Feb 23, 2006 page 3 of 7 VCC = 1.65 V °C RD74LVC2G32 Electrical Characteristics Ta = –40 to 85°C Item Input voltage Symbol VCC (V) Min VIH 1.65 to 1.95 VCC×0.65 2.3 to 2.7 1.7 3.0 to 3.6 2.0 — — VIL Output voltage Typ Max Unit — — V — — 4.5 to 5.5 VCC×0.7 — — 1.65 to 1.95 — — VCC×0.35 2.3 to 2.7 — — 0.7 VOH 3.0 to 3.6 — — 0.8 4.5 to 5.5 — — VCC×0.3 Min to Max VCC–0.1 — — 1.65 1.2 — — IOH = –4 mA 2.3 1.9 — — IOH = –8 mA 3.0 VOL Test condition V IOH = –100 µA 2.4 — — IOH = –16 mA 2.3 — — IOH = –24 mA 4.5 3.8 — — IOH = –32 mA Min to Max — — 0.1 IOL = 100 µA 1.65 — — 0.45 IOL = 4 mA 2.3 — — 0.3 IOL = 8 mA 3.0 — — 0.4 IOL = 16 mA — — 0.55 IOL = 24 mA 4.5 — — 0.55 Input current IIN 0 to 5.5 — — ±5 µA VIN = 5.5 V or GND IOL = 32 mA Quiescent supply current ICC 1.65 to 5.5 — — 10 µA VIN = VCC or GND, IO = 0 ∆ICC 3 to 5.5 — — 500 Output leakage current IOFF 0 — — ±10 µA VIN or VO = 0 to 5.5 V Input capacitance CIN 3.3 — 4.0 — pF VIN = VCC or GND One input at VCC–0.6 V, Other input at VCC or GND Note: For conditions shown as Min or Max, use the appropriate values under recommended operating conditions. Rev.1.00 Feb 23, 2006 page 4 of 7 RD74LVC2G32 Switching Characteristics VCC = 1.8 ± 0.15 V FROM Ta = –40 to 85°C Item Symbol Min Max Unit tPLH tPHL 2.8 8.0 ns Propagation delay time Test Conditions CL = 30 pF, RL = 1.0 kΩ (Input) A or B TO (Output) Y VCC = 2.5 ± 0.2 V Ta = –40 to 85°C Item Symbol Min Max Unit tPLH tPHL 1.2 5.5 ns Propagation delay time Test Conditions CL = 30 pF, RL = 500 Ω FROM TO (Input) (Output) A or B Y VCC = 3.3 ± 0.3 V Ta = –40 to 85°C Item Symbol Min Max Unit tPLH tPHL 1.1 4.5 ns Propagation delay time Test Conditions CL = 50 pF, RL = 500 Ω FROM TO (Input) (Output) A or B Y VCC = 5.0 ± 0.5 V Ta = –40 to 85°C Item Symbol Min Max Unit tPLH tPHL 1.0 4.0 ns Propagation delay time Test Conditions CL = 50 pF, RL = 500 Ω FROM TO (Input) (Output) A or B Y Operating Characteristics Ta = 25°C Item Symbol VCC (V) Min Typ Max Unit CPD 1.8 — 20 — pF 2.5 — 20 — 3.3 — 21 — 5.0 — 22 — Power dissipation capacitance Test Circuit Measurement point From Output CL * RL Note: CL includes probe and jig capacitance. Rev.1.00 Feb 23, 2006 page 5 of 7 Test Conditions f = 10 MHz RD74LVC2G32 • Waveforms tr tf 90% Input VCC 90% Vref Vref 10% 10% GND VOH Vref Output Vref VOL t PHL t PLH INPUTS VCC (V) Vref CL RL ≤ 2 ns VCC / 2 30 pF k 1.0 kΩ ≤ 2 ns VCC / 2 30 pF 500 Ω VI tr / tf 1.8±0.15 VCC 2.5±0.2 VCC 3.3±0.3 3 V ≤ 2.5 ns 1.5 V 50 pF 500 Ω 5.0±0.5 VCC ≤ 2.5 ns VCC / 2 50 pF 500 Ω Notes: 1. Input waveform: PRR ≤ 10 MHz, Zo = 50 Ω. 2. The output are measured one at a time with one transition per measurement. Rev.1.00 Feb 23, 2006 page 6 of 7 RD74LVC2G32 Package Dimensions JEITA Package Code S-XFBGA8-0.7x1.5-0.40 RENESAS Code SXBG0008LA-A MASS[Typ.] 0.001g Previous Code TBS-8BV D e ZD ZE D C E B e B A Pin #1 index area 1 2 A 8 × φb φx M C A B φxx M C Reference Symbol Dimension in Millimeters Min Nom A C A1 A A2 y C A1 Seating plane D *Reference value. 0.110 0.140 (0.235) * A2 b 0.19 0.15 0.70 E 1.50 e 0.40 x 0.05 y Rev.1.00 Feb 23, 2006 page 7 of 7 Max 0.40 0.05 ZD 0.15 ZE 0.15 Sales Strategic Planning Div. Nippon Bldg., 2-6-2, Ohte-machi, Chiyoda-ku, Tokyo 100-0004, Japan Keep safety first in your circuit designs! 1. Renesas Technology Corp. puts the maximum effort into making semiconductor products better and more reliable, but there is always the possibility that trouble may occur with them. Trouble with semiconductors may lead to personal injury, fire or property damage. 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