.LOW POWER DISSIPATION .HIGH NOISE IMMUNITY M74HC154 4 TO 16 LINE DECODER/DEMULTIPLEXER. HIGH SPEED tpd = 15 ns (TYP.) at VCC =5V

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1 . HIGH SPEED tpd = 15 ns (TYP.) at VCC =5V.LOW POWER DISSIPATION I CC =4µA (MAX.) at T A =25 C.HIGH NOISE IMMUNITY VNIH =VNIL =28%VCC (MIN.) OUTPUT DRIVE CAPABILITY 15 LSTTL LOADS SYMMETRICAL OUTPUT IMPEDANCE IOH =IOL = 4 ma (MIN.) BALANCED PROPAGATION DELAYS t PLH =t. PHL WIDE OPERATING VOLTAGE RANGE VCC (OPR) = 2 V to 6 V PIN AND FUNCTION COMPATIBLE WITH 54/74LS154 M74HC154 4 TO 16 LINE DECODER/DEMULTIPLEXER B1R (Plastic Package) M1R (Micro Package) ORDER CODES : M74HC154B1R M74HC154M1R PIN CONNECTIONS (top view) DESCRIPTION The 74HC154 is a high speed CMOS 4 TO 16-LINE DECODER/DEMULTIPLEXER fabricated in silicon gate C 2 MOS technology. It has the same high speed performance of LSTTL combined with true CMOS low power consumption. A binary code applied to the four inputs (A to D) provides a low level at the selected one ofsixteen outputs excluding the other fifteen outputs, when both the strobe inputs, G1 and G2, are held low. When either strobe input is held high, the decording function is inhibited to keep all outputs high. The strobe function makes it easy to expand the decoding lines through cascading, and simplifies the design of address decoding circuits in memory control systems. All inputs are equipped with protection circuits against static discharge and transient excess voltage. NC = No Internal Connection October /8

2 TRUTH TABLE INPUTS SELECTED G1 G2 D C B A OUTPUT (L) L L L L L L Y0 L L L L L H Y1 L L L L H L Y2 L L L L H H Y3 L L L H L L Y4 L L L H L H Y5 L L L H H L Y6 L L L H H H Y7 L L H L L L Y8 L L H L L H Y9 L L H L H L Y10 L L H L H H Y11 L L H H L L Y12 L L H H L H Y13 L L H H H L Y14 L L H H H H Y15 X H X X X X NONE H X X X X X NONE X: Don t Care LOGIC DIAGRAM 2/8

3 INPUT AND OUTPUT EQUIVALENT CIRCUIT PIN DESCRIPTION PIN No SYMBOL NAME AND FUNCTION 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 13, 14, 15, 16, 17 Y0 to Y15 Outputs (Active LOW) 18, 19 G1, G2 Enable Inputs (Active LOW) 23, 22, 21, 20 A to D Address Inputs 12 GND Ground (0V) 24 VCC Positive Supply Voltage IEC LOGIC SYMBOLS ABSOLUTE MAXIMUM RATINGS Symbol Parameter Value Unit VCC Supply Voltage -0.5 to +7 V V I DC Input Voltage -0.5 to V CC V VO DC Output Voltage -0.5 to VCC V I IK DC Input Diode Current ± 20 ma I OK DC Output Diode Current ± 20 ma IO DC Output Source Sink Current Per Output Pin ± 25 ma I CC or I GND DC V CC or Ground Current ± 50 ma P D Power Dissipation 500 (*) mw Tstg Storage Temperature -65 to +150 o C T L Lead Temperature (10 sec) 300 o C Absolute MaximumRatings are those values beyond whichdamage tothe device may occur. Functional operation under these condition isnotimplied. (*) 500 mw: 65 o C derate to 300 mw by 10mW/ o C: 65 o Cto85 o C 3/8

4 RECOMMENDED OPERATING CONDITIONS Symbol Parameter Value Unit VCC Supply Voltage 2 to 6 V V I Input Voltage 0 to V CC V VO Output Voltage 0 to VCC V Top Operating Temperature: -40 to +85 t r,t f Input Rise and Fall Time V CC = 2 V 0 to 1000 ns VCC = 4.5 V 0 to 500 VCC = 6 V 0 to 400 o C DC SPECIFICATIONS Test Conditions Value Symbol Parameter VCC TA =25 o C -40 to 85 o C (V) Min. Typ. Max. Min. Max. V IH High Level Input Voltage V IL Low Level Input Voltage V V OH High Level Output Voltage VI = 4.5 I O =-20 µa V IH V 6.0 or V IL I O =-4.0 ma IO=-5.2 ma V OL Low Level Output Voltage V I = 4.5 I V O =20µA IH V 6.0 or VIL I O = 4.0 ma I O = 5.2 ma II Input Leakage Current 6.0 VI = VCC or GND ±0.1 ±1 µa I CC Quiescent Supply Current 6.0 V I =V CC or GND 4 40 µa Unit V 4/8

5 AC ELECTRICAL CHARACTERISTICS (CL =50pF,Inputtr=tf=6ns) Test Conditions Value Symbol Parameter V CC T A =25 o C -40 to 85 o C (V) Min. Typ. Max. Min. Max. t TLH Output Transition Time t THL t PLH Propagation Delay Time t PHL (A, B, C, D - Y) t PLH t PHL Propagation Delay Time (G1, G2 - Y) ns C IN Input Capacitance pf C PD (*) Power Dissipation Capacitance 57 pf (*) C PD is defined as the value of the IC s internal equivalent capacitance which is calculated from the operating current consumption without load. (Refer to Test Circuit). Average operting current can be obtained by the following equation. I CC(opr) = C PD V CC f IN +I CC Unit ns ns SWITCHING CHARACTERISTICS TEST CIRCUIT TEST CIRCUIT I CC (Opr.) INPUT WAVEFORM IS THE SAME AS THAT IN CASE OF SWITCHING CHARACTERISTICSTEST. 5/8

6 Plastic DIP24 (0.25) MECHANICAL DATA DIM. mm inch MIN. TYP. MAX. MIN. TYP. MAX. a b b b D E e e F I L P043A 6/8

7 SO24 MECHANICAL DATA DIM. mm inch MIN. TYP. MAX. MIN. TYP. MAX. A a a b b C c1 45 (typ.) D E e e F L S 8 (max.) L C c1 F a2 A b e s a1 b1 e3 E D /8

8 Information furnished is believed to be accurate and reliable. However, SGS-THOMSON Microelectronics assumes no responsability for the consequences of use of such information nor for any infringement of patents or other rights of third parties which may results from its use. No license is granted by implication or otherwise under any patent or patent rights of SGS-THOMSON Microelectronics. Specificationsmentioned in this publication are subject to change without notice. This publication supersedes and replaces all information previously supplied. SGS-THOMSON Microelectronicsproducts are not authorized foruse ascritical componentsin life support devices or systems without express written approval of SGS-THOMSON Microelectonics SGS-THOMSON Microelectronics - All Rights Reserved SGS-THOMSON Microelectronics GROUP OF COMPANIES Australia - Brazil - France - Germany - Hong Kong - Italy - Japan - Korea - Malaysia - Malta - Morocco - The Netherlands - Singapore - Spain - Sweden - Switzerland - Taiwan - Thailand - United Kingdom - U.S.A 8/8

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