* LVC SUBCIRCUIT AND PRIMITIVE ELEMENTS LIBRARY 
* LVCNOMI.CIR 
* NOMINAL PROCESS CORNER 
* LOGIC PRODUCTS GROUP 
* NXP SEMICONDUCTORS 
*
* Revision History
*
* Version Date        Author Update
* ------------------------------------------------------------------
* 1.3     27 Oct 2008 RRV    Added INVERT3G17 for LVC3G17
* 1.2     19 Oct 2006 RRV    Added SANDINVN for LVC1G157
*                            Corrected Enable polarity for LVC240/241/244
* 1.1     22 Jul 2005 RRV    INVERT14A added for LVC14A
* 1.0     02 May 2005 RRV    LVCOUTODN Open drain output added
*                            INVERT10/N description for 06/06 addded
* ---     27 Apr 1999
*    
************************************************ 
*         NOMINAL N-CHANNEL TRANSISTOR         * 
*            UCB-3 PARAMETER SET               * 
*                  Nov-1995                    * 
************************************************ 
.MODEL MNEN NMOS 
+LEVEL = 3 
+KP    = 154E-6 
+VTO   = 0.57 
+TOX   = 15E-9 
+NSUB  = 7.8E16 
+GAMMA = 0.70 
+PHI   = 0.65 
+VMAX  = 187E3 
+RS    = 7.5 
+RD    = 7.5 
+XJ    = 0.26E-6 
+LD    = 0.11E-6 
+DELTA = 1.89 
+THETA = 0.072 
+ETA   = 0.043 
+KAPPA = 0.0 
+WD    = 0.0 
 
*********************************************** 
*        NOMINAL P-CHANNEL TRANSISTOR         * 
*           UCB-3 PARAMETER SET               * 
*                  Nov-1995                   * 
*********************************************** 
.MODEL MPEN PMOS 
+LEVEL = 3 
+KP    = 63.7E-6 
+VTO   = -0.67 
+TOX   = 15.0E-9 
+NSUB  = 6.0E16 
+GAMMA = 0.84 
+PHI   = 0.65 
+VMAX  = 1.0E6 
+RS    = 10 
+RD    = 10 
+XJ    = 0.30E-6 
+LD    = 0.04E-6 
+DELTA = 2.88 
+THETA = 0.189 
+ETA   = 0.091 
+KAPPA = 0.0 
+WD    = -0.03E-6 
 
*********************************************** 
*       START OF SUBCIRCUIT DESCRIPTION       * 
*                  MAR. 1999                  * 
*********************************************** 
 
.SUBCKT LVCPROTN    2   3   50   60 
* NOMINAL CASE PARAMETERS 
* STANDARD LVC INPUT ESD STRUCTURE 
* IN = 2,  OUT = 3,  VCC = 50,  GND = 60 
* OCTOBER-1995 
MN1 2 60 60 60 MNEN W=400U L=1.0U AD=7390P AS=208P PD=688U PS=420U 
R1  3  2  100 
MN2 3 60 60 60 MNEN W=43U L=1.0U AD=176P AS=208P PD=58U PS=58U 
.ENDS 
 
.SUBCKT LVCINPAN   2   3   50   60 
* NOMINAL CASE PARAMETERS 
* STANDARD LVC INPUT P-CH 150/0.8 N-CH 70/0.8 INCL. ESD STRUCTURE 
* IN = 2,  OUT = 3,  VCC = 50,  GND = 60 
* SEPTEMBER-1994 
MN1 2 60 60 60 MNEN W=400U L=1.0U AD=7390P AS=208P PD=688U PS=420U 
R1  4  2  100 
MN2 4 60 60 60 MNEN W= 43U L=1.0U AD=176P AS=208P PD= 58U PS= 58U 
MP1 3  4 50 50 MPEN W=150U L=0.8U AD=220P AS=400P PD=175U PS=175U 
MN3 3  4 60 60 MNEN W= 70U L=0.8U AD= 80P AS=170P PD= 80U PS= 80U 
MP2 5  3 50 50 MPEN W= 10U L=0.8U AD= 22P AS= 22P PD= 25U PS= 25U 
MN4 5  3 60 60 MNEN W=  4U L=0.8U AD=  9P AS=  9P PD= 12U PS= 12U 
MN5 3  5 60 60 MNEN W= 22U L=1.6U AD= 40P AS= 40P PD= 40U PS= 40U 
.ENDS 
 
.SUBCKT LVCIN14PAN   2   3   50   60 
* NOMINAL CASE PARAMETERS 
* SCHMITT-TRIGGER LVC INPUT INCL. ESD STRUCTURE 
* IN = 2,  OUT = 3,  VCC = 50,  GND = 60 
* JULY-2005 
MN1 2 60 60 60 MNEN W=400U L=1.0U AD=7390P AS=208P PD=688U PS=420U 
R1  4  2  100 
MN2 4 60 60 60 MNEN W= 43U L=1.0U AD=176P AS=208P PD= 58U PS= 58U 
MP1 10 4 50 50 MPEN W= 66U L=0.9U  AD=180P AS=100P PD= 75U PS= 75U 
MP2 3  4 10 50 MPEN W=228U L=0.85U AD=250P AS=400P PD=180U PS=180U 
MP3 10 3 60 50 MPEN W= 56U L=1.85U AD= 22P AS= 22P PD= 25U PS= 25U 
MN3 3  4 20 60 MNEN W= 60U L=0.85U AD= 80P AS=100P PD= 80U PS= 80U 
MN4 20 4 60 60 MNEN W=145U L=0.9U  AD=220P AS=400P PD=175U PS=175U 
MN5 20 3 50 60 MNEN W= 46U L=0.7U  AD= 80P AS= 80P PD= 80U PS= 80U 
.ENDS 
 
.SUBCKT LVCINHN  2   3   50   60 
* NOMINAL CASE PARAMETERS 
* STANDARD LVC INPUT P-CH 150/0.8 N-CH 70/0.8 INCL. ESD STRUCTURE 
* IN = 2,  OUT = 3,  VCC = 50,  GND = 60 
* SEPTEMBER-1994 
MN1 2 60 60 60 MNEN W=400U L=1.0U AD=7390P AS=208P PD=688U PS=420U 
R1  4  2  100 
MN2 4 60 60 60 MNEN W= 43U L=1.0U AD=176P AS=208P PD= 58U PS= 58U 
MP1 3  4 50 50 MPEN W=150U L=0.8U AD=220P AS=400P PD=175U PS=175U 
MN3 3  4 60 60 MNEN W= 70U L=0.8U AD= 80P AS=170P PD= 80U PS= 80U 
MP2 5  3 50 50 MPEN W= 10U L=0.8U AD= 22P AS= 22P PD= 25U PS= 25U 
MN4 5  3 60 60 MNEN W=  4U L=0.8U AD=  9P AS=  9P PD= 12U PS= 12U 
MN5 3  5 60 60 MNEN W= 22U L=1.6U AD= 40P AS= 40P PD= 40U PS= 40U 
MP3 4  8 50 BG MPEN W= 8U L=3U AD=14.4P AS=14.4P PD=16.0U PS=16.0U 
MN6 4  3 60 60 MNEN W= 5U L=5U AD=9P AS=9P PD=10U PS=10U
MN7 8 6 3 60 MNEN W=4U L=1.6U  AD=7.2P AS=7.2P PD=8.0U PS=8.0U
MP4 3 4 8 BG MPEN W=4U L=1U AD=7.2P AS=7.2P PD=8.0U PS=8.0U
MN8 6 7 60 60 MNEN W=2U L=2U AD=3.6P AS=3.6P PD=4.0U PS=4.0U
MP5 6 7 50 50 MPEN W=2U L=2U AD=3.6P AS=3.6P PD=4.0U PS=4.0U
MP6 7 50 4 BG MPEN W=60U L=1U AD=108P AS=108P PD=123.6U PS=123.6U
MP7 4 50 8 BG MPEN W=12U L=1U AD=21.6P AS=21.6P PD=27.6U PS=27.6U
MP8 6 4 50 50 MPEN W=60U L=1U AD=108P AS=108P PD=123.6U PS=123.6U
MN9 60 6 7 60 MNEN W=2U L=5U AD=3.6P AS=3.6P PD=4.0U PS=4.0U
MP9 BG 7 50 BG MPEN W=5U L=1U AD=9.0P AS=9.0P PD=13.6U PS=13.6U
MP10 4 50 BG BG MPEN W=5U L=1U AD=9.0P AS=9.0P PD=13.6U PS=13.6U
.ENDS 
 
.SUBCKT LVCINVAN   2   3   50   60 
* NOMINAL CASE PARAMETERS 
* INTERNAL INVERTER P-CH 30/0.8  N-CH 12/0.8 
* IN = 2,  OUT = 3,  VCC = 50,  GND = 60 
* SEPTEMBER-1994 
MP1 3  2 50 50 MPEN W= 30U L=0.8U AD=35P AS=35P PD=35U PS=30U 
MN1 3  2 60 60 MNEN W= 12U L=0.8U AD=30P AS=30P PD=20U PS=15U 
.ENDS 

.SUBCKT LVCCTRN   2   3   50   60 
* NOMINAL CASE PARAMETERS 
* INTERNAL INVERTER P-CH 4.5/0.8  N-CH 1.8/0.8 
* IN = 2,  OUT = 3,  VCC = 50,  GND = 60 
* SEPTEMBER-1994 
MP1 3  2 50 50 MPEN W= 4.5U L=0.8U AD=35P AS=35P PD=35U PS=30U 
MN1 3  2 60 60 MNEN W= 1.8U L=0.8U AD=30P AS=30P PD=20U PS=15U 
.ENDS 
 
.SUBCKT LVCINV1N   2   3   50   60 
* NOMINAL CASE PARAMETERS 
* INTERNAL INVERTER P-CH 22/0.8  N-CH 16/0.8 
* IN = 2,  OUT = 3,  VCC = 50,  GND = 60 
* SEPTEMBER-1994 
MP1 3  2 50 50 MPEN W= 22U L=0.8U AD=50P AS=50P PD=50U PS=50U 
MN1 3  2 60 60 MNEN W= 16U L=0.8U AD=25P AS=25P PD=25U PS=25U 
.ENDS 
 
.SUBCKT LVCINV2N   2   3   50   60 
* FAST CASE PARAMETERS 
* INTERNAL INVERTER P-CH 10/0.8  N-CH 4/0.8 
* IN = 2,  OUT = 3,  VCC = 50,  GND = 60 
* SEPTEMBER-1994 
MP1 3  2 50 50 MPEN W= 10U L=0.8U AD=15P AS=15P PD=15U PS=15U 
MN1 3  2 60 60 MNEN W=  4U L=0.8U AD=10P AS=10P PD=10U PS=15U 
.ENDS 
 
.SUBCKT LVCNANDN  2   3   4   50   60 
* NOMINAL CASE PARAMETERS 
* INTERNAL NAND 2-INPUT P-CH 150/0.8  N-CH  180/0.8 
* IN1 = 2,  IN2 = 3, OUT = 4,  VCC = 50,  GND = 60 
* SEPTEMBER-1994 
MP1 4  2  50 50 MPEN W=150U L=0.8U AD=200P AS=400P PD=100U PS=200U 
MP2 4  3  50 50 MPEN W=150U L=0.8U AD=200P AS=400P PD=100U PS=200U 
MN1 4  2   5 60 MNEN W=180U L=0.8U AD=400P AS=400P PD=400U PS=400U 
MN2 5  3  60 60 MNEN W=180U L=0.8U AD=400P AS=400P PD=400U PS=400U 
.ENDS 
 
 
.SUBCKT LVCANDN  2   3   4   50   60 
* NOMINAL CASE PARAMETERS 
* INTERNAL NAND 2-INPUT WITH NON-INV INP P-CH 150/0.8  N-CH  180/0.8 
* IN1 = 2,  IN2 = 3, OUT = 4,  VCC = 50,  GND = 60 
* SEPTEMBER-1994 
MP1 4  6  50 50 MPEN W=150U L=0.8U AD=200P AS=400P PD=100U PS=200U 
MP2 4  3  50 50 MPEN W=150U L=0.8U AD=200P AS=400P PD=100U PS=200U 
MN1 4  6   5 60 MNEN W=180U L=0.8U AD=400P AS=400P PD=400U PS=400U 
MN2 5  3  60 60 MNEN W=180U L=0.8U AD=400P AS=400P PD=400U PS=400U 
MP3 6  2  50 50 MPEN W= 75U L=0.8U AD=100P AS=200P PD= 50U PS=100U 
MN4 6  2  60 60 MNEN W= 30U L=0.8U AD= 60P AS=120P PD= 40U PS= 40U 
.ENDS 
 
.SUBCKT LVCOUTAN    2   3   4   50   60 
* NOMINAL CASE PARAMETERS 
* 3-STATE OUTPUT MODULE 
* OE = 2, IN = 3,  OUT = 4,  VCC = 50,  GND = 60 
* NOVEMBER-1995 
* Increased output transistor sizes 
MP1 5  2 50 50 MPEN W=100U L=0.8U AD=200P AS=400P PD=200U PS=200U 
MP2 5  3 50 50 MPEN W=175U L=0.8U AD=225P AS=450P PD=225U PS=225U 
MN1 5  3  6 60 MNEN W=100U L=0.8U AD=130P AS=130P PD=150U PS=130U 
MN2 6  2 60 60 MNEN W=125U L=0.8U AD=175P AS=250P PD=175U PS=175U 
MP3 15 2 50 50 MPEN W= 50U L=0.8U AD= 80P AS= 80P PD= 80U PS= 80U 
MN3 15 2 60 60 MNEN W= 20U L=0.8U AD= 40P AS= 40P PD= 45U PS= 45U 
MP4 7 15  8 50 MPEN W= 80U L=0.8U AD=250P AS=250P PD=250U PS=250U 
MP5 8  3 50 50 MPEN W=100U L=0.8U AD=400P AS=400P PD=350U PS=350U 
MN4 7 15 60 60 MNEN W= 75U L=0.8U AD=120P AS=160P PD=120U PS=120U 
MN5 7  3 60 60 MNEN W= 60U L=0.8U AD= 80P AS=160P PD= 80U PS= 80U 
R1  5 16 250 
MP6 4 16 50 50 MPEN W=185U L=0.8U AD=370P AS=350P PD=125U PS=185U 
R2 16  9 500 
MP7 4  9 50 50 MPEN W=275U L=0.8U AD=450P AS=400P PD=175U PS=275U 
R3  9 10 1K 
MP8 4 10 50 50 MPEN W=350U L=0.8U AD=700P AS=500P PD=225U PS=350U 
R4 10 11 1.5k 
MP9 4 11 50 50 MPEN W=350U L=0.8U AD=700P AS=500P PD=225U PS=350U 
R5  7 17 300 
MN6 4 17 60 60 MNEN W= 125U L=0.8U AD=250P AS=200P PD=100U PS=125U 
R6 17 12 750 
MN7 4 12 60 60 MNEN W=125U L=0.8U AD=250P AS=200P PD=100U PS=125U 
R7 12 13 1K 
MN8 4 13 60 60 MNEN W=150U L=0.8U AD=300P AS=250P PD=125U PS= 150U 
R8 13 14 1.5K 
MN9 4 14 60 60 MNEN W= 150U L=0.8U AD= 300P AS= 250P PD=125U PS=150U 
.ENDS 
 
.SUBCKT LVCOUTBN    2   3   4   50   60 
* NOMINAL CASE PARAMETERS 
* 3-STATE OUTPUT MODULE (ONLY N-CHANNEL) 
* OE = 2, IN = 3,  OUT = 4,  VCC = 50,  GND = 60 
* NOVEMBER-1995 
* Increased output transistor sizes 
MP1 5  2 50 50 MPEN W=100U L=0.8U AD=200P AS=400P PD=200U PS=200U 
MP2 5  3 50 50 MPEN W=175U L=0.8U AD=225P AS=450P PD=225U PS=225U 
MN1 5  3  6 60 MNEN W=100U L=0.8U AD=130P AS=130P PD=150U PS=130U 
MN2 6  2 60 60 MNEN W=125U L=0.8U AD=175P AS=250P PD=175U PS=175U 
MP3 15 2 50 50 MPEN W= 50U L=0.8U AD= 80P AS= 80P PD= 80U PS= 80U 
MN3 15 2 60 60 MNEN W= 20U L=0.8U AD= 40P AS= 40P PD= 45U PS= 45U 
MP4 7 15  8 50 MPEN W= 80U L=0.8U AD=250P AS=250P PD=250U PS=250U 
MP5 8  3 50 50 MPEN W=100U L=0.8U AD=400P AS=400P PD=350U PS=350U 
MN4 7 15 60 60 MNEN W= 75U L=0.8U AD=120P AS=160P PD=120U PS=120U 
MN5 7  3 60 60 MNEN W= 60U L=0.8U AD= 80P AS=160P PD= 80U PS= 80U 
R5  7 17 300 
MN6 4 17 60 60 MNEN W= 125U L=0.8U AD=250P AS=200P PD=100U PS=125U 
R6 17 12 750 
MN7 4 12 60 60 MNEN W=125U L=0.8U AD=250P AS=200P PD=100U PS=125U 
R7 12 13 1K 
MN8 4 13 60 60 MNEN W=150U L=0.8U AD=300P AS=250P PD=125U PS= 150U 
R8 13 14 1.5K 
MN9 4 14 60 60 MNEN W= 150U L=0.8U AD= 300P AS= 250P PD=125U PS=150U 
.ENDS 

.SUBCKT OUTPUT5VTOLB  OENBAR IN OUT VDD VSS
MP100 OUT NET253 VDD VDD MPEN W=526U L=0.9U
MP101 OUT VDD VDD VDD MPEN W=526U L=0.9U
C_77   VSS NET261   200e-15
C_78   VSS NET263   200e-15
C_71   NET255 VSS   200e-15
R_87   OUT1 OUT   100.0
R_74   NET255 NET253   10.0
R_75   NET298 NET255   10.0
R_83   NET263 NET265   10.0
R_84   NET261 NET259   10.0
R_81   NET333 NET261   10.0
R_80   NET346 NET263   10.0
MN100 OUT VSS VSS VSS MNEN W=69U L=1U
MN101 OUT NET265 VSS VSS MNEN W=138U L=1U
MN102 OUT NET259 VSS VSS MNEN W=138U L=1U
MN103 OUT VSS VSS VSS MNEN W=276U L=1U
MP099 OEN OENBAR VDD VDD MPEN W=20U L=0.8U
MN099 OEN OENBAR VSS VSS MNEN W=20U L=0.8U
MP026 D NET276 VDD VDD MPEN W=10U L=0.8U
MN026 D NET276 VSS VSS MNEN W=5U L=0.8U
MP024 A OEN VDD VDD MPEN W=20U L=0.8U
MN024 A OEN VSS VSS MNEN W=8U L=0.8U
MP023 NET276 OEN VDD VDD MPEN W=25U L=0.8U
MN023 NET276 OEN VSS VSS MNEN W=10U L=0.8U
MP025 C OEN VDD VDD MPEN W=50U L=0.8U
MN025 C OEN VSS VSS MNEN W=20U L=0.8U
MP027 B NET276 VDD VDD MPEN W=40U L=0.8U
MN027 B NET276 VSS VSS MNEN W=16U L=0.8U
MP42   OUT1 VDD NET282 BG MPEN W=10U L=1U 
MP33   BG NET355 VDD BG MPEN W=40U L=0.9U
MP32   OUT1 VDD BG BG MPEN W=60U L=0.9U
MP31   OUT1 VDD NET355 BG MPEN W=20U L=1U
MP5   OUT1 VDD NET298 BG MPEN W=80U L=0.9U
MP4   NET298 NET282 NET364 BG MPEN W=140U L=0.8U
MP56   NET346 VSS NET333 VDD MPEN W=20U L=1.2U
MP47   NET346 VSS NET345 VDD MPEN W=20U L=0.8U
MP20   NET364 C VDD VDD MPEN W=160U L=0.8U
MP65   E OEN VDD VDD MPEN W=8U L=0.8U
MP9   NET364 IN VDD VDD MPEN W=160U L=0.8U
MP6   NET364 B NET346 VDD MPEN W=140U L=0.8U
MN92   OUT1 VSS VSS VSS MNEN W=69U L=1U
MN60   NET345 IN VSS VSS MNEN W=12U L=0.8U
MN61   NET333 IN VSS VSS MNEN  W=6U L=0.8U
MN57   NET346 VDD NET333 VSS MNEN W=10U L=1.2U
MN58   NET333 D VSS VSS MNEN W=12U L=0.8U
MN43   NET282 E VSS VSS MNEN W=20U L=1U
MN63   E OEN NET349 VSS MNEN W=6U L=0.8U
MN48   NET346 VDD NET345 VSS MNEN W=10U L=1U
MN62   NET349 D VSS VSS MNEN W=6U L=.8U
MN39   OUT1 D NET355 VSS MNEN W=10U L=1U
MN29   NET355 A VSS VSS MNEN W=10U L=1U
MN10   NET346 D VSS VSS MNEN W=12U L=.8U
MN8   NET346 IN VSS VSS MNEN W=120U L=.8U
MN7   NET364 A NET346 VSS MNEN W=70U L=0.8U
MN2   NET298 VDD NET364 VSS MNEN W=70U L=.8U
MN46   NET345 D VSS VSS MNEN W=24U L=0.8U
.ENDS


.SUBCKT LVCOUT2N    5   4   50   60 
* NOMINAL CASE PARAMETERS 
* OUTPUT MODULE 
* IN1 = 5, OUT = 4,  VCC = 50,  GND = 60 
* NOVEMBER 1995 
* Increased output transistor sizes 
R1  5 16 250 
MP6 4 16 50 50 MPEN W=185U L=0.8U AD=370P AS=350P PD=125U PS=185U 
R2 16  9 500 
MP7 4  9 50 50 MPEN W=275U L=0.8U AD=450P AS=400P PD=175U PS=275U 
R3  9 10 1K 
MP8 4 10 50 50 MPEN W=350U L=0.8U AD=700P AS=500P PD=225U PS=350U 
R4 10 11 1.5k 
MP9 4 11 50 50 MPEN W=350U L=0.8U AD=700P AS=500P PD=225U PS=350U 
R5  5 17 300 
MN6 4 17 60 60 MNEN W= 125U L=0.8U AD=250P AS=200P PD=100U PS=125U 
R6 17 12 750 
MN7 4 12 60 60 MNEN W=125U L=0.8U AD=250P AS=200P PD=100U PS=125U 
R7 12 13 1K 
MN8 4 13 60 60 MNEN W=150U L=0.8U AD=300P AS=250P PD=125U PS= 150U 
R8 13 14 1.5K 
MN9 4 14 60 60 MNEN W= 150U L=0.8U AD= 300P AS= 250P PD=125U PS=150U 
.ENDS 
 
****************************************************** 
*     START OF LVC CIRCUITS DESCRIPTION MODELS       * 
*                     OCT. 1998                      * 
****************************************************** 
 
.SUBCKT INVERT2  2  4  1  90 
* INVERTING BUFFER TYPE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCU04A
* IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1995 
XIN1   20  30  50  60      LVCPROTN 
XOUT   30  40  50  60      LVCOUT2N 
XPK14 2 4 90 90 90 90 90 90 90 90 90 90 90 1 
+ 20 40 90 90 90 90 60 90 90 90 90 90 90 50 pk14 
.ENDS 
 
.SUBCKT INVERT3  5  2  4  1  90 
* INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC240A
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV1  30  35  50  60      LVCINVAN 
XINV2  35  36  50  60      LVCINV1N 
XOUT   70  36  40  50  60  LVCOUTAN 
XPK21 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 20 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 40 90 50 90 pk21
.ENDS 


.SUBCKT INVERT3H  5  2  4  1  90 
* INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCH240 - 544 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINHN 
XINV1  30  35  50  60      LVCINVAN 
XINV2  35  36  50  60      LVCINV1N 
XOUT   70  36  40  50  60  LVCOUTAN 
XPK21 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 20 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 40 90 50 90 pk21
.ENDS
 
.SUBCKT INVERT4  5  2  4  1  90 
* INVERTING BUFFER TYPE; OPEN DRAIN 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC 38 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV1  30  35  50  60      LVCINVAN 
XINV2  35  36  50  60      LVCINV1N 
XOUT    5  36  40  50  60  LVCOUTBN
XPK14 2 2 4 90 90 90 90 90 90 90 90 90 90 1
+ 20 20 40 90 90 90 60 90 90 90 90 90 90 50 pk14 
.ENDS 

.SUBCKT INVERT3N  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC241A/244A/245A/373A/374A/543A/573A
* /574A/623A
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV   30  35  50  60      LVCINVAN 
XOUT   75  35  40  50  60  LVCOUTAN 
XIN2   70  75  50  60      LVCINPAN
XPK21 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 20 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 40 90 50 90 pk21
.ENDS 

.SUBCKT INVERT3NH  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCH244A/H245A
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINHN
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  LVCOUTAN 
XPK21 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 20 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 40 90 50 90 pk21
.ENDS 
 
.SUBCKT INVERTN  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC 08/32/74/86 
* IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV1  30  35  50  60      LVCINVAN 
XINV2  35  36  50  60      LVCINV1N 
XOUT   36  40  50  60      LVCOUT2N 
XPK14 2 2 4 90 90 90 90 90 90 90 90 90 90 1
+ 20 20 40 90 90 90 60 90 90 90 90 90 90 50 pk14
.ENDS 
 
.SUBCKT INVERT  2  4  1  90 
* INVERTING BUFFER TYPE; 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC 00/02/04/109 
* IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV   30  35  50  60      LVCINVAN 
XOUT   35  40  50  60      LVCOUT2N
XPK14 2 2 4 90 90 90 90 90 90 90 90 90 90 1
+ 20 20 40 90 90 90 60 90 90 90 90 90 90 50 pk14 
.ENDS 
 
.SUBCKT INVERT14A  2  4  1  90 
* INVERTING BUFFER TYPE (SCHMITT-TRIGGER); 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC 14A
* IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* JULY-2005
XIN1   20  30  50  60      LVCIN14PAN 
XINV   30  35  50  60      LVCINVAN 
XOUT   35  40  50  60      LVCOUT2N
XPK14  2  4 90 90 90 90 90 90 90 90 90 90 90  1
+     20 40 90 90 90 90 60 90 90 90 90 90 90 50 pk14 
.ENDS 
 
.SUBCKT INVERT3G17  2  4  1  90 
* NON-INVERTING BUFFER TYPE (SCHMITT-TRIGGER); 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC 3G17
* IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-2008
XIN1   20  30  50  60      LVCIN14PAN 
XINV1  30  31  50  60      LVCINVAN 
XINV2  31  32  50  60      LVCINVAN 
XOUT   32  40  50  60      LVCOUT2N
XPK8 2 90 90 90 90 90  4  1
+   20 90 90 60 90 90 40 50 pk8
.ENDS 
 
.SUBCKT NANDINVN  3  2  4  1  90 
* INVERTING 2-NAND BUFFER TYPE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR THE 74LVC 137/138/139 
* EN = 3, IN =2, OUT = 4, VCC = 1, GND = 90 
* OCTOBER-1994 
XIN1   20  25      50  60    LVCINPAN 
XIN2   30  35      50  60    LVCINPAN 
XNAND1 25  35  36  50  60    LVCNANDN 
XOUT1  36  40      50  60    LVCOUT2N
XPK16 3 2 2 90 90 90 4 90 90 90 90 90 90 90 90 1
+ 30 20 20 90 90 90 40 60 90 90 90 90 90 90 90 50 pk16 
.ENDS 
 
.SUBCKT ANDINVN  3  2  4  1  90 
* NON-INVERTING 2-NAND BUFFER TYPE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR THE 74LVC 157 
* EN = 3, IN =2, OUT = 4, VCC = 1, GND = 90 
* OCTOBER-1994 
XIN1   20  25      50  60    LVCINPAN 
XIN2   30  35      50  60    LVCINPAN 
XAND1  25  35  36  50  60    LVCANDN 
XOUT1  36  40      50  60    LVCOUT2N
XPK16 90  2 90  4 90 90 90 90 90 90 90 90 90 90 3 1
+     90 20 90 40 90 90 90 60 90 90 90 90 90 90 30 50 pk16  
.ENDS 

.SUBCKT SANDINVN  3  2  4  1  90 
* NON-INVERTING 2-NAND BUFFER TYPE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR THE 74LVC1G 157 
* EN = 3, IN =2, OUT = 4, VCC = 1, GND = 90 
* OCTOBER-2006 
XIN1   20  25      50  60    LVCINPAN 
XIN2   30  35      50  60    LVCINPAN 
XAND1  25  35  36  50  60    LVCANDN 
XOUT1  36  40      50  60    LVCOUT2N
XPK6   2 90 90  4  1  3
+     20 60 90 40 50 30 pk6  
.ENDS 

.SUBCKT ANDINVN2  3  2  4  1  90 
* NON-INVERTING 2-NAND BUFFER TYPE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR THE 74LVC 257 
* EN = 3, IN =2, OUT = 4, VCC = 1, GND = 90 
* OCTOBER-1994 
XIN1   20  25      50  60    LVCINPAN 
XIN2   30  35      50  60    LVCINPAN 
XAND1  25  35  36  50  60    LVCNANDN 
XOUT1  50  36  40  50  60    LVCOUTAN
XPK16 90 2 90 4 90 90 90 90 90 90 90 90 90 90 3 1
+ 90 20 90 40 90 90 90 60 90 90 90 90 90 90 30 50 pk16  
.ENDS 

.SUBCKT INVERT5  5  2  4  1  90 
* INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCH240 - 544 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV1  30  35  50  60      LVCINVAN 
XINV2  35  36  50  60      LVCINV1N 
XOUT   70  36  40  50  60  OUTPUT5VTOLB 
XPK21 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 20 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 40 90 50 90 pk21
.ENDS 

.SUBCKT INVERT5H  5  2  4  1  90 
* INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCH2240 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINHN 
XINV1  30  35  50  60      LVCINVAN 
XINV2  35  36  50  60      LVCINV1N 
XOUT   70  36  40  50  60  OUTPUT5VTOLB 
XPK21 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 20 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 40 90 50 90 pk21
.ENDS 

.SUBCKT INVERT5N  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC2244A/2245A 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  OUTPUT5VTOLB 
XPK21 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 20 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 40 90 50 90 pk21
.ENDS 

.SUBCKT INVERT5NH  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCH2241/2244/2245/2373/274/2543/2573 
* /2574/2623/2646/2652/2821/2823/2827/2841/22952 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINHN 
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  OUTPUT5VTOLB 
XPK21 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 20 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 40 90 50 90 pk21
.ENDS

.SUBCKT INVERT6N  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC161/162/163 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV1  30  45  50  60      LVCCTRN
XOUT   70  45  75  50  60  LVCOUTAN 
XPK14 1 2 90 90 90 90 5 90 90 5 90 90 90 4 90 1
+ 50 20 90 90 90 90 70 60 90 70 90 90 90 75 90 50 pk16
.ENDS 

.SUBCKT INVERT7N  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC125A/126A
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  LVCOUTAN 
XPK14 5 2 4 90 90 90 90 90 90 90 90 90 90 1
+ 70 20 40 90 90 90 60 90 90 90 90 90 90 50 pk14
.ENDS 

.SUBCKT INVERT7NH  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCH125/241/244/245/373/374/543/573 
* /574/623/646/652/821/823/827/841/2952/4245 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINHN
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  LVCOUTAN 
XPK14 5 2 4 90 90 90 90 90 90 90 90 90 90 1
+ 70 20 40 90 90 90 60 90 90 90 90 90 90 50 pk14
.ENDS
  
.SUBCKT INVERT8  5  2  4  1  90 
* INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC544A
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV1  30  35  50  60      LVCINVAN 
XINV2  35  36  50  60      LVCINV1N 
XOUT   70  36  40  50  60  LVCOUTAN 
XPK21 5 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 70 20 90 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 90 40 90 50 
+ 90 pk24
.ENDS 

.SUBCKT INVERT8N  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC646A/652/821A/823A/827A/841A/2952A/4245A
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  LVCOUTAN 
XPK21 5 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 70 20 90 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 90 40 90 50 
+ 90 pk24
.ENDS 

.SUBCKT INVERT8NH  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCH125/241/244/245/373/374/543/573 
* /574/623/646/652/821/823/827/841/2952/4245 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINHN
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  LVCOUTAN 
XPK21 5 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 70 20 90 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 90 40 90 50 
+ 90 pk24
.ENDS 

.SUBCKT INVERT9N  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC2241/2244/2245/2373/2374/2543/2573 
* /2574/2623/2646/2652/2821/2823/2827/2841/22952/4245 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINPAN 
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  OUTPUT5VTOLB 
XPK21 5 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 70 20 90 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 90 40 90 50 
+ 90 pk24
.ENDS 

.SUBCKT INVERT9NH  5  2  4  1  90 
* NON-INVERTING BUFFER TYPE; 3-STATE 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVCH2241/2244/2245/2373/274/2543/2573 
* /2574/2623/2646/2652/2821/2823/2827/2841/22952 
* OE = 5, IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* OCTOBER-1994 
XIN1   20  30  50  60      LVCINHN 
XINV   30  35  50  60      LVCINVAN 
XOUT   70  35  40  50  60  OUTPUT5VTOLB 
XPK21 5 5 2 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 4 90 1 90
+ 70 70 20 90 90 90 90 90 90 90 90 60 90 90 90 90 90 90 90 90 40 90 50 
+ 90 pk24
.ENDS

.SUBCKT INVERT10    2  4  1  90 
* INVERTING BUFFER TYPE; OPEN DRAIN 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC06 
* IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* MAY-2005
XIN1   20  30  50  60      LVCINPAN 
XINV1  30  35  50  60      LVCINVAN 
XOUT   35  40      60      LVCOUTODN
XPK14 2  4 90 90 90 90 90 90 90 90 90 90 90  1
+    20 40 90 90 90 90 60 90 90 90 90 90 90 50 pk14 
.ENDS

.SUBCKT INVERT10N    2  4  1  90 
* NON-INVERTING BUFFER TYPE; OPEN DRAIN 
* EQUIVALENT REFERENCE SIMULATION MODEL NOMINAL CASE 
* USE THIS MODEL FOR 74LVC07 
* IN = 2,  OUT = 4,  VCC = 1,  GND = 90 
* MAY-2005
XIN1   20  30  50  60      LVCINPAN 
XOUT   30  40      60      LVCOUTODN
XPK14 2  4 90 90 90 90 90 90 90 90 90 90 90  1
+    20 40 90 90 90 90 60 90 90 90 90 90 90 50 pk14 
.ENDS
 
.SUBCKT LVCOUTODN    3   4  60 
* NOMINAL CASE PARAMETERS 
* OPEN DRAIN OUTPUT MODULE (ONLY N-CHANNEL) 
* IN = 3,  OUT = 4,  GND = 60 
* MAY-2005
R0   4  40 24
MN0  40 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R1   4  41 24
MN1  41 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R2   4  42 24
MN2  42 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R3   4  43 24
MN3  43 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R4   4  44 24
MN4  44 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R5   4  45 24
MN5  45 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R6   4  46 24
MN6  46 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R7   4  47 24
MN7  47 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R8   4  48 24
MN8  48 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
R9   4  49 24
MN9  49 3  60  60 MNEN W=52U L=0.65U AD=80P AS=80P PD=80U PS=80U 
.ENDS 
