![](/IMAGES/ls12.gif)
74LV241N ,Octal buffer/line driver 3-Stateapplications: 1.0 to 3.6 Vfunction compatible with 74HC/HCT241.• Accepts TTL input levels between V ..
74LV244D ,Octal buffer/line driver (3-state)applications: 1.0 V to 3.6 V Accepts TTL input levels between V = 2.7 V and V = 3.6 VCC CC Typica ..
74LV244PW ,Octal buffer/line driver 3-StateINTEGRATED CIRCUITS74LV244Octal buffer/line driver (3-State)Product specification 1998 May 20Supers ..
74LV245A , OCTAL BUS TRANSCEIVER WITH 3-STATE OUTPUTS
74LV245A , OCTAL BUS TRANSCEIVER WITH 3-STATE OUTPUTS
74LV245A , OCTAL BUS TRANSCEIVER WITH 3-STATE OUTPUTS
7MBR50NF060 ,600V/50A/PIMApplications
" - ' EWJE 4 .Vrt-- , Inverter for Motor Drive (TUrAF84-3M)
©AC,DCe-*7r 77 AC and DC ..
7MBR50SB120 ,IGBT(1200V/50A/PIM)Applications· Inverter for motor drive· AC and DC servo drive amplifier· Uninterruptible power supp ..
7MBR75GE060 ,IGBT(600V/75A/PIM)Applications· Inverter for Motor Drive· AC and DC Servo Drive Amplifier· Uninterruptible Power Supp ..
7MBR75SB060 ,IGBT(600V/75A/PIM)Applications· Inverter for motor drive· AC and DC servo drive amplifier· Uninterruptible power supp ..
7WBD3125USG , 2-Bit Translating Bus Switch
8.192 , 64-Pin 8-Bit Flash Microcontroller Product Brief
74LV241N
Octal buffer/line driver 3-State
Product specification
Supersedes data of 1997 Feb 19
IC24 Data Handbook
1998 May 20
Philips Semiconductors Product specification
74LV241Octal buffer/line driver (3-State)
FEATURES Optimized for low voltage applications: 1.0 to 3.6 V Accepts TTL input levels between VCC = 2.7 V and VCC = 3.6 V Typical VOLP (output ground bounce) < 0.8 V at VCC = 3.3 V,
Tamb = 25°C Typical VOHV (output VOH undershoot) > 2 V at VCC = 3.3 V,
Tamb = 25°C Output capability: bus driver ICC category: MSI
DESCRIPTIONThe 74LV241 is a low-voltage Si-gate CMOS device and is pin and
function compatible with 74HC/HCT241.
The 74LV241 is an octal non-inverting buffer/line driver with 3-State
outputs. The 3-State outputs are controlled by the output enable
inputs 1OE and 2OE.
QUICK REFERENCE DATAGND = 0 V; Tamb = 25°C; tr = tf ≤ 2.5 ns
NOTE: CPD is used to determine the dynamic power dissipation (PD in μW)
PD = CPD VCC2 fi (CL VCC2 fo) where:
fi = input frequency in MHz; CL = output load capacitance in pF;
fo = output frequency in MHz; VCC = supply voltage in V;
(CL VCC 2 fo) = sum of the outputs.
ORDERING INFORMATION
PIN CONFIGURATION
LOGIC SYMBOL
Philips Semiconductors Product specification
74LV241Octal buffer/line driver (3-State)
PIN DESCRIPTION
LOGIC SYMBOL (IEEE/IEC)
FUNCTIONAL DIAGRAM
FUNCTION TABLE
NOTES:= HIGH voltage level= LOW voltage level= don’t care= high impedance OFF-state
Philips Semiconductors Product specification
74LV241Octal buffer/line driver (3-State)
RECOMMENDED OPERATING CONDITIONS
NOTE: The LV is guaranteed to function down to VCC = 1.0V (input levels GND or VCC); DC characteristics are guaranteed from VCC = 1.2V to VCC = 3.6V.
ABSOLUTE MAXIMUM RATINGS1, 2In accordance with the Absolute Maximum Rating System (IEC 134).
Voltages are referenced to GND (ground = 0V).
NOTES: Stresses beyond those listed may cause permanent damage to the device. These are stress ratings only and functional operation of the
device at these or any other conditions beyond those indicated under “recommended operating conditions” is not implied. Exposure to
absolute-maximum-rated conditions for extended periods may affect device reliability. The input and output voltage ratings may be exceeded if the input and output current ratings are observed.
Philips Semiconductors Product specification
74LV241Octal buffer/line driver (3-State)
DC CHARACTERISTICS FOR THE LV FAMILYOver recommended operating conditions. Voltages are referenced to GND (ground = 0V).
NOTE: All typical values are measured at Tamb = 25°C.
Philips Semiconductors Product specification
74LV241Octal buffer/line driver (3-State)
AC CHARACTERISTICSGND = 0V; tr = tf ≤ 2.5ns; CL = 50pF; RL = 1KΩ
NOTES: Unless otherwise stated, all typical values are measured at Tamb = 25°C. Typical values are measured at VCC = 3.3 V.
AC WAVEFORMSVM = 1.5 V at VCC ≥ 2.7 V; VM = 0.5 V × VCC at VCC < 2.7 V
VX = VOL + 0.3 V at VCC ≥ 2.7 V; VX = VOL + 0.1 V × VCC at VCC <
2.7 V
VY = VOH – 0.3 V at VCC ≥ 2.7V; VY = VOH – 0.1 × VCC at VCC < 2.7
VOL and VOH are the typical output voltage drop that occur with the
output load.
Figure 1. Input (1An, 2An) to output (1Yn, 2Yn)
propagation delays.
Figure 2. 3-State enable and disable times.