EEWORLDEEWORLDEEWORLD

Part Number

Search

P4C1981L-12DM

Description
ULTRA HIGH SPEED 16K x 4 CMOS STATIC RAMS
File Size95KB,10 Pages
ManufacturerETC
Download Datasheet View All

P4C1981L-12DM Overview

ULTRA HIGH SPEED 16K x 4 CMOS STATIC RAMS

P4C1981/P4C1981L, P4C1982/P4C1982L
ULTRA HIGH SPEED 16K x 4
CMOS STATIC RAMS
FEATURES
Full CMOS, 6T Cell
High Speed (Equal Access and Cycle Times)
– 10/12/15/20/25 ns (Commercial)
– 12/15/20/25/35 ns (Industrial)
– 15/20/25/35/45 ns (Military)
Low Power Operation (Commercial/Military)
– 715 mW Active – 12/15
– 550/660 mW Active – 20/25/35/45
– 193/220 mW Standby (TTL Input)
– 83/110 mW Standby (CMOS Input) P4C1981/1981L
– 5.5 mW Standby (CMOS Input)
P4C1981L/82L (Military)
Output Enable and Dual Chip Enable Functions
P4C1981/1981L, P4C1982/1982L
5V
±
10% Power Supply
Data Retention with 2.0V Supply, 10
µ
A Typical
Current (P4C1981L/1982L (Military)
Separate Inputs and Outputs
– P4C1981/L Input Data at Outputs during Write
– P4C1982/L Outputs in High Z during Write
Fully TTL Compatible Inputs and Outputs
Standard Pinout (JEDEC Approved)
– 28-Pin 300 mil DIP, SOJ
– 28-Pin 350 x 550 mil LCC
DESCRIPTION
The P4C1981/L and P4C1982/L are 65,536-bit (16Kx4)
ultra high-speed static RAMs similar to the P4C198, but
with separate data I/O pins. The P4C1981/L feature a
transparent write operation when
OE
is low; the outputs of
the P4C1982/L are in high impedance during the write
cycle. All devices have low power standby modes. The
RAMs operate from a single 5V
±
10% tolerance power
supply. With battery backup, data integrity is maintained
for supply voltages down to 2.0V. Current drain is typically
10
µA
from 2.0V supply.
Access times as fast as 10 nanoseconds are available,
permitting greatly enhanced system operating speeds.
CMOS is used to reduce power consumption to a low 715
mW active, 193 mW standby. For the P4C1982L and
P4C1981L, power is only 5.5 mW standby with CMOS
input levels. The P4C1981/L and P4C1982/L are mem-
bers of a family of PACE RAM™ products offering fast
access times.
The P4C1981/L and P4C1982/L are available in 28-pin
300 mil DIP and SOJ, and in 28-pin 350x550 mil LCC
packages providing excellent board level densities.
FUNCTIONAL BLOCK DIAGRAM
A
(8)
A
I
1
I
2
I
3
I
4
O
1
O
2
O
3
O
4
ROW
SELECT
65,536-BIT
MEMORY
ARRAY
PIN CONFIGURATIONS
VCC
A 13
A
0
A
1
A
2
A
3
A
4
A
5
A
6
A
7
A
8
I
1
COLUMN
SELECT
INPUT
DATA
CONTROL
1
2
3
4
5
6
7
8
9
10
11
12
13
14
28
27
26
25
24
23
22
21
20
19
18
17
16
15
V
CC
A13
A 12
A11
A10
A9
I4
I3
A3
A4
A5
A6
A7
A8
I1
I2
CE
1
3
4
5
6
7
8
9
10
11
12
13
OE
A2
A1
A0
2
1
28
27
26
25
24
23
22
21
20
19
A12
A11
A10
A9
I4
I3
O4
O3
O2
COLUMN I/O
O4
O3
O2
O1
WE
CE
2
I
2
CE
1
OE
GND
14 15 16
GND
CE
2
18
17
CE
2
WE
OE
P4C1982
P4C1981
A
(6)
A
DIP (P5, D5-2), SOJ (J5)
TOP VIEW
P4C1981/ 1982
LCC (L5)
TOP VIEW
Means Quality, Service and Speed
1Q97
81
WE
O1
CE
1
How to implement a noise monitoring analyzer based on STM32
The noise monitoring and analyzer based on STM32 has the following general process: the noise signal is collected through a condenser microphone, amplified, and converted into an electrical signal thr...
ysf_00 stm32/stm8
Wince multithreaded memory leak problem, please help
Button event void CleakerDlg::OnBnClickedButton1() { HANDLE a = CreateThread(NULL, 0, (LPTHREAD_START_ROUTINE)ReadData, NULL, 0, NULL); } Thread function void WINAPI ReadData() { for(int i=0;i<10000;i...
sunl Embedded System
Why is the power supply voltage pulled down after downloading the program during F2812 online debugging?
I designed a F2812 board. After the hardware test, the power supply voltage was normal when I downloaded the program. The voltage was also normal after connecting to JTAG. However, the power supply vo...
Sahara_ly Microcontroller MCU
The MST430F5529r development board has too few pins. Is there any way to bring out all the pins of 5529?
As the title says, I want to use the 5529 development board to make some works, but I found that several timing peripheral interfaces are not reserved and I don’t know what to do now. Also, if I want ...
狂人8 Microcontroller MCU
【Contribute to C2000】Serial communication design of TSF controller based on DSP
Design of serial communication of TSF controller based on DSP...
0212009623 Microcontroller MCU
TTPCom 3G DigRF interface module expands to dual-mode 3G chipset
TTPCom Ltd. announced the launch of the 3G DigRF solution, which enables semiconductor device vendors to quickly and easily add a 3G DigRF digital adapter interface to their 3G RF and baseband ICs. Th...
frozenviolet Automotive Electronics

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 438  1103  2570  1346  2634  9  23  52  28  54 
Datasheet   0 1 2 3 4 5 6 7 8 9 A B C D E F G H I J K L M N O P Q R S T U V W X Y Z
Room 1530, 15th Floor, Building B, No. 18 Zhongguancun Street, Haidian District, Beijing Telephone: (010) 82350740 Postal Code: 100190
Copyright © 2005-2026 EEWORLD.com.cn, Inc. All rights reserved 京ICP证060456号 京ICP备10001474号-1 电信业务审批[2006]字第258号函 京公网安备 11010802033920号