HD74LV1GW53A 2–channel Analog Multiplexer / Demultiplexer REJ03D0080-0200 Rev.2.00 May 19, 2006 Description The HD74LV1GW53A has 2–channel analog multiplexer / demultiplexer in a 6 pin package. Applications include signal gating, chopping, modulation or demodulation (modem), and signal multiplexing for analog to digital and digital to analog conversion systems. 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. • Supplied on emboss taping for high-speed automatic mounting. • Supply voltage range : 1.65 to 5.5 V Operating temperature range : –40 to +85°C • Control inputs VIH (Max.) = 5.5 V (@VCC = 0 V to 5.5 V) • Control inputs have hysteretic voltage for the slow transition. • Ordering Information Part Name Package Type HD74LV1GW53ACME CMPAK-6 pin Package Code (Previous Code) PTSP0006JA-A (CMPAK-6V) Taping Abbreviation (Quantity) Package Abbreviation CM E (3,000 pcs / Reel) Outline and Article Indication • HD74LV1GW53A Index band Marking W P CMPAK–6 = Control code Function Table Control inputs L H H : High level L : Low level Rev.2.00, May 19, 2006 page 1 of 6 On channel Y0 Y1 HD74LV1GW53A Pin Arrangement Y1 1 6 A GND 2 5 VCC Y0 3 4 COM (Top view) Absolute Maximum Ratings Item Symbol Ratings Unit VCC VI VO IIK IOK IO –0.5 to 7.0 –0.5 to 7.0 –0.5 to VCC + 0.5 –20 ±50 ±25 V V V mA mA mA ICC or IGND ±50 mA PT 200 mW Tstg –65 to 150 °C Supply voltage range Input voltage range *1 Output voltage range *1, 2 Input clamp current Output clamp current Continuous output current Continuous current through VCC or GND Maximum power dissipation *3 at Ta = 25°C (in still air) Storage temperature Notes: Test Conditions Output : H or L VI < 0 VO < 0 or VO > VCC VO = 0 to VCC 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 may be exceeded if the input and output clamp-current ratings are observed. 2. This value is limited to 5.5 V maximum. 3. The maximum package power dissipation was calculated using a junction temperature of 150°C. Recommended Operating Conditions Item Supply voltage range Input voltage range Input / output voltage range Symbol VCC VI VI/O Input transition rise or fall rate ∆t / ∆v Operating free-air temperature Ta Min 1.65 0 0 0 0 0 0 –40 Note: Unused or floating control inputs must be held high or low. Rev.2.00, May 19, 2006 page 2 of 6 Max 5.5 5.5 VCC 300 200 100 20 85 Unit V V V ns / V °C Conditions VCC = 1.65 to 1.95 V VCC = 2.3 to 2.7 V VCC = 3.0 to 3.6 V VCC = 4.5 to 5.5 V HD74LV1GW53A Electrical Characteristic Ta = 25°C Item 1.65 to 1.95 VIH Input voltage 2.3 to 2.7 3.0 to 3.6 4.5 to 5.5 1.65 to 1.95 VIL Hysteretic voltage VH On-state switch resistance RON Peak on resistance RON (P) Difference of on- state resistance between switches ∆RON Off-state switch leakage current Ta = –40 to 85°C Symbol VCC (V) * Is (OFF) 2.3 to 2.7 3.0 to 3.6 4.5 to 5.5 1.8 2.5 3.3 5.0 1.65 2.3 3.0 4.5 1.65 2.3 3.0 4.5 1.65 2.3 3.0 4.5 5.5 Unit Min Typ Max Min Typ Max — — — — — — — — — — — — — — — — — — — — — — — — — — — — — — — — — — — — 120 60 50 40 400 200 90 50 40 20 10 7 — — — — — — — — — — — — 360 180 150 75 1100 500 180 100 120 30 20 15 VCC×0.75 — — — — — — — — 0.25 0.30 0.35 0.45 — — — — — — — — — — — — — — — — — — ±0.1 VCC×0.7 VCC×0.7 VCC×0.7 — — — — — — — — — — — — — — — — — — — — — — VCC×0.25 VCC×0.3 VCC×0.3 VCC×0.3 — — — — 450 225 190 100 1400 600 225 125 160 40 30 20 ±1.0 Test Conditions V Control input only V VT+ – VT– Ω Ω VIN = VCC or GND VA = VIH, VIL IT = 2 mA VIN = VCC to GND VA = VIH, VIL IT = 2 mA VIN = VCC to GND Ω µA VA = VIH, VIL IT = 2 mA VIN = VCC, VOUT = GND or VIN = GND, VO = VCC, VA = VIH, VIL On-state switch leakage current Input current Is (ON) 5.5 — — ±0.1 — — ±1.0 µA VIN = VCC or GND VA = VIH, VIL IIN 0 to 5.5 — — ±0.1 — — ±1.0 µA VIN = 5.5 V or GND 5.5 — — — — — 10 µA VIN = VCC or GND — — 3.5 — — — — pF — — 6.0 — — — — pF Quiescent ICC supply current Control input CIC capacitance Switch terminal CIN / OUT capacitance Rev.2.00, May 19, 2006 page 3 of 6 HD74LV1GW53A Switching Characteristics VCC = 1.8 ± 0.15 V Item Symbol Ta = 25°C Min Typ Max — 4.5 13.0 — 11.0 23.0 Ta = –40 to 85°C Min — — Max 19.0 29.0 Propagation delay time tPLH tPHL Enable time tZH tZL — — 13.0 18.0 30.0 47.0 — — Disable time tHZ tLZ — — 13.0 20.0 25.0 38.0 — — Unit Test Conditions FROM (Input) TO (Output) ns CL = 15 pF CL = 50 pF COM or Yn Yn or COM 35.0 54.0 ns CL = 15 pF CL = 50 pF A Yn 30.0 45.0 ns CL = 15 pF CL = 50 pF A Yn VCC = 2.5 ± 0.2 V Item Symbol Ta = 25°C Min Typ Max — 2.5 10.0 — 5.0 12.0 Ta = –40 to 85°C Min — — Max 16.0 18.0 Propagation delay time tPLH tPHL Enable time tZH tZL — — 7.0 9.0 18.0 28.0 — — Disable time tHZ tLZ — — 9.0 13.0 18.0 28.0 — — Unit Test Conditions FROM (Input) TO (Output) ns CL = 15 pF CL = 50 pF COM or Yn Yn or COM 23.0 35.0 ns CL = 15 pF CL = 50 pF A Yn 23.0 35.0 ns CL = 15 pF CL = 50 pF A Yn VCC = 3.3 ± 0.3 V Item Symbol Ta = 25°C Min Typ Max — 2.0 6.0 — 4.0 9.0 Ta = –40 to 85°C Min — — Max 10.0 12.0 Propagation delay time tPLH tPHL Enable time tZH tZL — — 5.0 7.0 12.0 20.0 — — Disable time tHZ tLZ — — 7.0 10.0 12.0 20.0 — — Unit Test Conditions FROM (Input) TO (Output) ns CL = 15 pF CL = 50 pF COM or Yn Yn or COM 15.0 25.0 ns CL = 15 pF CL = 50 pF A Yn 15.0 25.0 ns CL = 15 pF CL = 50 pF A Yn VCC = 5.0 ± 0.5 V Item Symbol Ta = 25°C Min Typ Max — 1.5 4.0 — 3.0 6.0 Ta = –40 to 85°C Min — — Max 7.0 8.0 Propagation delay time tPLH tPHL Enable time tZH tZL — — 4.0 5.0 8.0 14.0 — — Disable time tHZ tLZ — — 5.0 8.0 8.0 14.0 — — Unit Test Conditions FROM (Input) TO (Output) ns CL = 15 pF CL = 50 pF COM or Yn Yn or COM 10.0 18.0 ns CL = 15 pF CL = 50 pF A Yn 10.0 18.0 ns CL = 15 pF CL = 50 pF A Yn Operating Characteristics CL = 50 pF Item Power dissipation capacitance Symbol VCC (V) CPD 3.3 5.0 Rev.2.00, May 19, 2006 page 4 of 6 Min — — Ta = 25°C Typ 7.5 8.0 Max — — Unit pF Test Conditions f = 10 MHz HD74LV1GW53A Test Circuit • RON VCC VA =V IH or VIL VCC VIN =VCC (ON) VOUT R ON = GND 2.0 mA + V VIN–OUT (Ω) 2 × 10 -3 – VIN–OUT • I S (off), I S (on) VCC VCC VA =V IH or VIL VA =V IH or VIL VCC A VCC A (OFF) VIN =VCC or GND GND VOUT =GND or VCC (ON) VIN =VCC or GND GND VOUT OPEN • t PLH ,t PHL VCC VA =V IH or VIL tr VCC VIN (ON) GND VOUT CL= 15 or 50 pF VIN 10% VOUT tf 90% 90% 50% 50% t PLH 50% VCC 10% t PHL GND VOH 50% VOL Notes: 1. Input waveform : PRR ≤ 1 MHz, Zo = 50 Ω, tr ≤ 3 ns, tf ≤ 3 ns. 2. The output are measured one at a time with one transition per measurement. Rev.2.00, May 19, 2006 page 5 of 6 HD74LV1GW53A • t ZH ,tZL / t HZ ,t LZ VCC VA tf R L= 1kΩ VCC COM Yn S1 Item t ZH t ZL t HZ t LZ CL=15 or 50 pF S1 VCC 90% 50% 10% VA S2 GND 10% t ZH R L= 1kΩ VCC 90% 50% GND t HZ VOH –0.3 V 50% t ZL GND VCC t LZ 50% VCC VOL +0.3 V GND VCC GND VOH GND Yn S2 GND VCC tr VOL Notes: 1. Input waveform : PRR ≤ 1 MHz, Zo = 50 Ω, tr ≤ 3 ns, tf ≤ 3 ns. 2. Waveform – A is for an output with internal conditions such that the output is low except when disabled by the output control. 3. Waveform – B is for an output with internal conditions such that the output is high except when disabled by the output control. 4. The output are measured one at a time with one transition per measurement. Package Dimensions JEITA Package Code SC-88 Package Name CMPAK-6 RENESAS Code PTSP0006JA-A D Previous Code CMPAK-6 / CMPAK-6V MASS[Typ.] 0.006g A e Q c E HE LP L A A x M L1 S A A3 b Reference Symbol e A2 y S A A1 S e1 b l1 c b2 A-A Section Rev.2.00, May 19, 2006 page 6 of 6 Pattern of terminal position areas A A1 A2 A3 b c D E e HE L L1 LP x y b2 e1 l1 Q Dimension in Millimeters Min 0.8 0 0.8 0.15 0.1 1.8 1.15 2.0 0.3 0.1 0.2 Nom 0.9 0.25 0.2 0.15 2.0 1.25 0.65 2.1 Max 1.1 0.1 1.0 0.25 0.25 2.2 1.35 2.2 0.7 0.5 0.6 0.05 0.05 0.35 1.5 0.9 0.25 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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