CY7C09099-9AIT [CYPRESS]

Dual-Port SRAM, 128KX8, 20ns, CMOS, PQFP100, PLASTIC, TQFP-100;
CY7C09099-9AIT
型号: CY7C09099-9AIT
厂家: CYPRESS    CYPRESS
描述:

Dual-Port SRAM, 128KX8, 20ns, CMOS, PQFP100, PLASTIC, TQFP-100

存储 内存集成电路 静态存储器 时钟
文件: 总19页 (文件大小:337K)
中文:  中文翻译
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25/0251  
CY7C09089/99  
CY7C09189/99  
64K/128K x 8/9  
Synchronous Dual-Port Static RAM  
• Low operating power  
Features  
Active = 195 mA (typical)  
• True dual-ported memory cells which allow simulta-  
neous access of the same memory location  
Standby = 0.05 mA (typical)  
• Fully synchronous interface for easier operation  
• Burst counters increment addresses internally  
Shorten cycle times  
• Six Flow-Through/Pipelined devices  
— 64K x 8/9 organizations (CY7C09089/189)  
— 128K x 8/9 organizations (CY7C09099/199)  
• Three Modes  
Minimize bus noise  
Supported in Flow-Through and Pipelined modes  
• Dual Chip Enables for easy depth expansion  
• Automatic power-down  
• Commercial and Industrial temperature ranges  
• Available in 100-pin TQFP  
— Flow-Through  
— Pipelined  
— Burst  
• Pipelined output mode on both ports allows fast 100-  
MHz cycle time  
Pin-compatibleandfunctionallyequivalenttoIDT70908  
and IDT709089  
• 0.35-micron CMOS for optimum speed/power  
• High-speed clock to data access 6.5[1]/7.5/9/12 ns  
(max.)  
Logic Block Diagram  
R/WL  
OEL  
R/WR  
OER  
CE0L  
CE0R  
1
1
CE1L  
CE1R  
0
0
0/1  
0/1  
1
0
0
1
0/1  
0/1  
FT/PipeL  
FT/PipeR  
[2]  
[2]  
8/9  
8/9  
I/O0LI/O7/8L  
I/O0RI/O7/8R  
I/O  
I/O  
Control  
Control  
16/17  
16/17  
[3]  
[3]  
A0A15/16L  
A0A  
15/16R  
Counter/  
Address  
Register  
Decode  
Counter/  
Address  
Register  
Decode  
CLKL  
CLKR  
True Dual-Ported  
RAM Array  
ADSL  
ADSR  
CNTENL  
CNTRSTL  
CNTENR  
CNTRSTR  
Notes:  
1. See page 7 for Load Conditions.  
2. I/O0I/O7 for x8 devices; I/O0I/O8 for x9 devices.  
3. A0A15 for 64K; and A0A16 for 128K devices.  
For the most recent information, visit the Cypress web site at www.cypress.com  
Cypress Semiconductor Corporation  
3901 North First Street  
San Jose  
CA 95134  
408-943-2600  
Document #: 38-06039 Rev. *A  
Revised December 27, 2002  
CY7C09089/99  
CY7C09189/99  
A HIGH on CE0 or LOW on CE1 for one clock cycle will power  
down the internal circuitry to reduce the static power consump-  
tion. The use of multiple Chip Enables allows easier banking  
of multiple chips for depth expansion configurations. In the  
pipelined mode, one cycle is required with CE0 LOW and CE1  
HIGH to reactivate the outputs.  
Functional Description  
The CY7C09089/99 and CY7C09189/99 are high-speed syn-  
chronous CMOS 64K and 128K x 8/9 dual-port static RAMs.  
Two ports are provided, permitting independent, simultaneous  
access for reads and writes to any location in memory.[4] Reg-  
isters on control, address, and data lines allow for minimal set-  
up and hold times. In pipelined output mode, data is registered  
for decreased cycle time. Clock to data valid tCD2 = 6.5 ns[1]  
(pipelined). Flow-through mode can also be used to bypass  
the pipelined output register to eliminate access latency. In  
flow-through mode data will be available tCD1 = 15 ns after the  
address is clocked into the device. Pipelined output or flow-  
through mode is selected via the FT/Pipe pin.  
Counter enable inputs are provided to stall the operation of the  
address input and utilize the internal address generated by the  
internal counter for fast interleaved memory applications. A  
ports burst counter is loaded with the ports Address Strobe  
(ADS). When the ports Count Enable (CNTEN) is asserted,  
the address counter will increment on each LOW-to-HIGH  
transition of that ports clock signal. This will read/write one  
word from/into each successive address location until CNTEN  
is deasserted. The counter can address the entire memory  
array and will loop back to the start. Counter Reset (CNTRST)  
is used to reset the burst counter.  
Each port contains a burst counter on the input address regis-  
ter. The internal write pulse width is independent of the LOW-  
to-HIGH transition of the clock signal. The internal write pulse  
is self-timed to allow the shortest possible cycle times.  
All parts are available in 100-pin Thin Quad Plastic Flatpack  
(TQFP) packages.  
Note:  
4. When writing simultaneously to the same location, the final value cannot be guaranteed.  
Document #: 38-06039 Rev. *A  
Page 2 of 19  
CY7C09089/99  
CY7C09189/99  
Pin Configurations  
100-Pin TQFP  
(Top View)  
100 99 98 97 96 95 94 93 92 91 90 89 88 87 86 85 84 83 82 81 80 79 78 77 76  
NC  
NC  
1
75  
74  
73  
72  
71  
70  
69  
68  
67  
66  
65  
64  
63  
62  
61  
60  
59  
58  
57  
56  
55  
54  
53  
52  
51  
NC  
2
NC  
A7L  
3
A7R  
A8R  
A8L  
4
A9L  
5
A9R  
A10L  
A11L  
A12L  
A13L  
A14L  
A15L  
6
A10R  
A11R  
A12R  
A13R  
A14R  
A15R  
7
8
9
10  
11  
12  
13  
14  
15  
16  
17  
18  
19  
20  
21  
22  
23  
CY7C09099 (128K x 8)  
CY7C09089 (64K x 8)  
[5]  
[5]  
A16L  
A16R  
VCC  
NC  
GND  
NC  
NC  
NC  
NC  
NC  
NC  
NC  
CE0L  
CE1L  
CNTRSTL  
R/WL  
OEL  
CE0R  
CE1R  
CNTRSTR  
R/WR  
OER  
[6]  
[6]  
FT/PIPEL  
FT/PIPER  
NC  
NC  
24  
25  
GND  
NC  
26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50  
Notes:  
5. This pin is NC for CY7C09089.  
6. For CY7C09089, pin #23 connected to VCC is equivalent to an IDT x8 pipelined device; connecting pin #23 and #53 to GND is equivalent to an IDT x8 flow-  
through device.  
Document #: 38-06039 Rev. *A  
Page 3 of 19  
CY7C09089/99  
CY7C09189/99  
Pin Configurations (continued)  
100-Pin TQFP  
(Top View)  
100 99 98 97 96 95 94 93 92 91 90 89 88 87 86 85 84 83 82 81 80 79 78 77 76  
NC  
NC  
1
2
3
75  
74  
73  
72  
71  
70  
69  
68  
67  
66  
65  
64  
63  
62  
61  
60  
59  
58  
57  
56  
55  
54  
53  
52  
51  
NC  
NC  
A7L  
A7R  
A8R  
A9R  
A10R  
A11R  
A12R  
A13R  
A14R  
A8L  
4
A9L  
5
A10L  
A11L  
A12L  
A13L  
A14L  
6
7
8
9
10  
11  
12  
13  
14  
15  
16  
17  
18  
19  
20  
21  
22  
23  
A15L  
[7]  
A15R  
[7]  
CY7C09199 (128K x 9)  
CY7C09189 (64K x 9)  
A16R  
A16L  
VCC  
NC  
GND  
NC  
NC  
NC  
NC  
NC  
NC  
NC  
CE0L  
CE1L  
CNTRSTL  
R/WL  
OEL  
CE0R  
CE1R  
CNTRSTR  
R/WR  
OER  
FT/PIPER  
GND  
NC  
FT/PIPEL  
NC  
NC  
24  
25  
26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50  
Selection Guide  
CY7C09089/99  
CY7C09189/99  
-6[1]  
CY7C09089/99  
CY7C09189/99  
-7  
CY7C09089/99  
CY7C09189/99  
-9  
CY7C09089/99  
CY7C09189/99  
-12  
fMAX2 (MHz) (Pipelined)  
100  
6.5  
83  
67  
9
50  
12  
Max Access Time (ns) (Clock to Data,  
Pipelined)  
7.5  
Typical Operating Current ICC (mA)  
250  
45  
235  
40  
215  
35  
195  
30  
Typical Standby Current for ISB1 (mA)  
(Both ports TTL Level)  
Typical Standby Current for ISB3 (mA)  
(Both ports CMOS Level)  
0.05  
0.05  
0.05  
0.05  
Note:  
7. This pin is NC for CY7C09189.  
Document #: 38-06039 Rev. *A  
Page 4 of 19  
CY7C09089/99  
CY7C09189/99  
Pin Definitions  
Left Port  
A0LA16L  
ADSL  
Right Port  
Description  
A0RA16R  
Address Inputs (A0A15 for 64K; and A0A16 for 128K devices).  
ADSR  
Address Strobe Input. Used as an address qualifier. This signal should be asserted LOW to  
access the part using an externally supplied address. Asserting this signal LOW also loads the  
burst counter with the address present on the address pins.  
CE0L,CE1L  
CE0R,CE1R  
Chip Enable Input. To select either the left or right port, both CE0 AND CE1 must be asserted to  
their active states (CE0 VIL and CE1 VIH).  
CLKL  
CLKR  
Clock Signal. This input can be free running or strobed. Maximum clock input rate is fMAX.  
CNTENL  
CNTENR  
Counter Enable Input. Asserting this signal LOW increments the burst address counter of its  
respective port on each rising edge of CLK. CNTEN is disabled if ADS or CNTRST are asserted  
LOW.  
CNTRSTL  
CNTRSTR  
Counter Reset Input. Asserting this signal LOW resets the burst address counter of its respective  
port to zero. CNTRST is not disabled by asserting ADS or CNTEN.  
I/O0LI/O8L  
I/O0RI/O8R Data Bus Input/Output (I/O0I/O7 for x8 devices; I/O0I/O8 for x9 devices).  
OEL  
OER  
Output Enable Input. This signal must be asserted LOW to enable the I/O data pins during read  
operations.  
R/WL  
R/WR  
Read/Write Enable Input. This signal is asserted LOW to write to the dual port memory array. For  
read operations, assert this pin HIGH.  
FT/PIPEL  
FT/PIPER  
Flow-Through/Pipelined Select Input. For flow-through mode operation, assert this pin LOW. For  
pipelined mode operation, assert this pin HIGH.  
GND  
NC  
Ground Input.  
No Connect.  
Power Input.  
VCC  
Maximum Ratings [8]  
Output Current into Outputs (LOW)............................. 20 mA  
Static Discharge Voltage ........................................... >2001V  
(Above which the useful life may be impaired. For user guide-  
lines, not tested.)  
Latch-Up Current...................................................... >200mA  
Storage Temperature................................. 65°C to +150°C  
Ambient Temperature with Power Applied..55°C to +125°C  
Supply Voltage to Ground Potential............... 0.3V to +7.0V  
Operating Range  
Ambient  
Range  
Commercial  
Industrial[9]  
Temperature  
0°C to +70°C  
40°C to +85°C  
VCC  
DC Voltage Applied to  
Outputs in High Z State ................................. 0.5V to +7.0V  
5V ± 10%  
5V ± 10%  
DC Input Voltage............................................ 0.5V to +7.0V  
Note:  
8. The Voltage on any input or I/O pin cannot exceed the power pin during power-up.  
9. Industrial parts are available in CY7C09099 and CY7C09199 only.  
Document #: 38-06039 Rev. *A  
Page 5 of 19  
CY7C09089/99  
CY7C09189/99  
Electrical Characteristics Over the Operating Range  
CY7C09089/99  
CY7C09189/99  
-6[1]  
-7  
-9  
-12  
Parameter  
Description  
Min. Typ. Max. Min. Typ. Max. Min. Typ. Max. Min. Typ. Max. Unit  
VOH  
Output HIGH Voltage  
(VCC = Min., IOH = 4.0 mA)  
2.4  
2.4  
2.4  
2.4  
V
VOL  
Output LOW Voltage  
(VCC = Min., IOH = +4.0 mA)  
0.4  
0.4  
0.4  
0.4  
V
VIH  
VIL  
IOZ  
ICC  
Input HIGH Voltage  
Input LOW Voltage  
2.2  
2.2  
2.2  
2.2  
V
V
0.8  
0.8  
0.8  
0.8  
10  
Output Leakage Current  
10  
10 10  
250 450  
10 10  
235 420  
10 10  
210 350  
245 410  
µA  
Operating Current  
(VCC = Max.,  
IOUT = 0 mA) Outputs  
Disabled  
Coml.  
Ind.[9]  
195 305 mA  
mA  
ISB1  
ISB2  
ISB3  
ISB4  
Standby Current (Both Coml.  
45 115  
175 235  
0.05 0.5  
160 200  
40 105  
160 220  
0.05 0.5  
145 185  
35  
95  
30  
85  
mA  
mA  
Ports TTL Level)[10]  
Ind.[9]  
50 110  
CEL & CER VIH,  
f = fMAX  
Standby Current (One Coml.  
140 205  
160 220  
125 190 mA  
mA  
Port TTL Level)[10]  
Ind.[9]  
CEL | CER VIH,  
f = fMAX  
Standby Current (Both Coml.  
.05 0.5  
0.05 0.5  
0.05 0.5 mA  
mA  
Ports CMOS Level)[10]  
Ind.[9]  
CEL & CER  
VCC 0.2V, f = 0  
Standby Current (One Coml.  
130 170  
145 185  
110 150 mA  
mA  
Port CMOS Level)[10]  
Ind.[9]  
CEL | CER VIH,  
f = fMAX  
Capacitance  
Parameter  
Description  
Test Conditions  
Max.  
10  
Unit  
pF  
CIN  
Input Capacitance  
Output Capacitance  
TA = 25°C, f = 1 MHz,  
VCC = 5.0V  
COUT  
10  
pF  
Note:  
10. CEL and CER are internal signals. To select either the left or right port, both CE0 AND CE1 must be asserted to their active states (CE0 VIL and CE1 VIH).  
Document #: 38-06039 Rev. *A  
Page 6 of 19  
CY7C09089/99  
CY7C09189/99  
AC Test Loads  
5V  
5V  
R
TH  
= 250Ω  
R1 = 893Ω  
R2 = 347Ω  
OUTPUT  
C = 30 pF  
OUTPUT  
R1 = 893Ω  
OUTPUT  
C = 5 pF  
C = 30 pF  
R2 = 347Ω  
V
TH  
= 1.4V  
(a) Normal Load (Load 1)  
(c) Three-State Delay(Load 2)  
(Used for tCKLZ, tOLZ, & tOHZ  
including scope and jig)  
(b) Thévenin  
Equivalent (Load 1)  
AC Test Loads (Applicable to -6 only)[11]  
Z0 = 50  
R = 50Ω  
ALL INPUTPULSES  
OUTPUT  
3.0V  
90%  
10%  
C
90%  
10%  
GND  
V
TH  
= 1.4V  
3 ns  
3 ns  
(a) Load 1 (-6 only)  
0.60  
0.50  
0.40  
0.30  
0.20  
0. 1 0  
0.00  
1 0  
1 5  
20  
25  
30  
35  
Capacitance (pF)  
(b) Load Derating Curve  
Note:  
11. Test Conditions: C = 10 pF.  
Document #: 38-06039 Rev. *A  
Page 7 of 19  
CY7C09089/99  
CY7C09189/99  
Switching Characteristics Over the Operating Range  
CY7C09089/99  
CY7C09189/99  
-6[1]  
-7  
-9  
-12  
Parameter  
fMAX1  
fMAX2  
tCYC1  
tCYC2  
tCH1  
tCL1  
tCH2  
tCL2  
tR  
Description  
fMax Flow-Through  
Min. Max. Min. Max. Min. Max. Min. Max. Unit  
53  
45  
83  
40  
67  
33  
50  
MHz  
MHz  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
ns  
fMax Pipelined  
100  
Clock Cycle Time - Flow-Through  
Clock Cycle Time - Pipelined  
Clock HIGH Time - Flow-Through  
Clock LOW Time - Flow-Through  
Clock HIGH Time - Pipelined  
Clock LOW Time - Pipelined  
Clock Rise Time  
19  
10  
6.5  
6.5  
4
22  
12  
7.5  
7.5  
5
25  
15  
12  
12  
6
30  
20  
12  
12  
8
4
5
6
8
3
3
3
3
3
3
3
3
tF  
Clock Fall Time  
tSA  
Address Set-Up Time  
Address Hold Time  
3.5  
0
4
0
4
0
4
0
4
0
4
0
4
0
4
0
4
1
4
1
4
1
4
1
4
1
4
1
4
1
4
1
4
1
4
1
4
1
4
1
4
1
4
1
tHA  
tSC  
Chip Enable Set-Up Time  
Chip Enable Hold Time  
R/W Set-Up Time  
3.5  
0
tHC  
tSW  
3.5  
0
tHW  
R/W Hold Time  
tSD  
Input Data Set-Up Time  
Input Data Hold Time  
3.5  
0
tHD  
tSAD  
tHAD  
tSCN  
tHCN  
tSRST  
tHRST  
tOE  
ADS Set-Up Time  
3.5  
0
ADS Hold Time  
CNTEN Set-Up Time  
3.5  
0
CNTEN Hold Time  
CNTRST Set-Up Time  
CNTRST Hold Time  
3.5  
0
Output Enable to Data Valid  
OE to Low Z  
8
9
10  
12  
[12, 13]  
tOLZ  
2
1
2
1
2
1
2
1
[12, 13]  
tOHZ  
OE to High Z  
7
7
7
20  
9
7
tCD1  
tCD2  
tDC  
Clock to Data Valid - Flow-Through  
Clock to Data Valid - Pipelined  
Data Output Hold After Clock HIGH  
Clock HIGH to Output High Z  
Clock HIGH to Output Low Z  
15  
6.5  
18  
7.5  
25  
12  
2
2
2
2
2
2
2
2
2
2
2
2
[12, 13]  
tCKHZ  
9
9
9
9
[12, 13]  
tCKLZ  
Port to Port Delays  
tCWDD  
Write Port Clock HIGH to Read Data Delay  
Clock to Clock Set-Up Time  
30  
9
35  
10  
40  
15  
40  
15  
ns  
ns  
tCCS  
Notes:  
12. Test conditions used are Load 2.  
13. This parameter is guaranteed by design, but is not production tested.  
Document #: 38-06039 Rev. *A  
Page 8 of 19  
CY7C09089/99  
CY7C09189/99  
Switching Waveforms  
Read Cycle for Flow-Through Output (FT/PIPE = VIL)[14, 15, 16, 17]  
t
CYC1  
t
t
CL1  
CH1  
CLK  
CE  
CE  
0
1
t
t
t
t
HC  
SC  
HC  
SC  
R/W  
t
t
t
t
SW  
SA  
HW  
HA  
A
A
A
A
n+3  
n
n+1  
n+2  
ADDRESS  
t
CKHZ  
t
t
DC  
CD1  
DATA  
OUT  
Q
Q
t
Q
n
n+1  
n+2  
DC  
t
t
CKLZ  
t
OHZ  
OLZ  
OE  
t
OE  
Read Cycle for Pipelined Operation (FT/PIPE = VIH)[14, 15, 16, 17]  
t
CYC2  
t
t
CL2  
CH2  
CLK  
CE  
CE  
0
1
t
t
t
t
HC  
SC  
HC  
SC  
R/W  
t
t
t
t
SW  
SA  
HW  
HA  
ADDRESS  
A
A
A
A
n+3  
n
n+1  
n+2  
t
1 Latency  
t
DC  
CD2  
DATA  
OUT  
Q
Q
Q
n+2  
n
n+1  
t
OHZ  
t
t
CKLZ  
OLZ  
OE  
tOE  
Notes:  
14. OE is asynchronously controlled; all other inputs are synchronous to the rising clock edge.  
15. ADS = VIL, CNTEN and CNTRST = VIH  
16. The output is disabled (high-impedance state) by CE0=VIH or CE1 = VIL following the next rising edge of the clock.  
17. Addresses do not have to be accessed sequentially since ADS = VIL constantly loads the address on the rising edge of the CLK. Numbers are for reference only.  
.
Document #: 38-06039 Rev. *A  
Page 9 of 19  
CY7C09089/99  
CY7C09189/99  
Switching Waveforms (continued)  
Bank Select Pipelined Read[18, 19]  
t
CYC2  
t
t
CL2  
CH2  
CLK  
L
t
t
t
HA  
SA  
A
A
4
ADDRESS  
A
A
A
A
(B1)  
3
5
0
1
2
t
HC  
SC  
CE  
0(B1)  
t
t
t
t
t
t
t
t
CD2  
HC  
CD2  
CD2  
CKHZ  
CKHZ  
SC  
D
D
D
3
DATA  
1
0
OUT(B1)  
t
t
HA  
SA  
t
t
DC  
DC  
CKLZ  
A
A
4
A
5
ADDRESS  
A
0
A
A
3
(B2)  
1
2
t
t
HC  
SC  
CE  
0(B2)  
t
t
t
CD2  
t
CD2  
CKHZ  
t
SC  
HC  
DATA  
OUT(B2)  
D
D
4
2
t
t
CKLZ  
CKLZ  
Left Port Write to Flow-Through Right Port Read[20, 21, 22, 23]  
CLK  
R/W  
L
L
t
t
HW  
SW  
t
t
HA  
SA  
NO  
MATCH  
ADDRESS  
MATCH  
VALID  
L
t
t
HD  
SD  
DATA  
INL  
t
CCS  
CLK  
R
R
R
t
CD1  
t
t
t
t
SW  
SA  
HW  
HA  
R/W  
NO  
MATCH  
MATCH  
ADDRESS  
t
t
CWDD  
CD1  
DATA  
VALID  
VALID  
OUTR  
t
DC  
t
DC  
Notes:  
18. In this depth expansion example, B1 represents Bank #1 and B2 is Bank #2; Each Bank consists of one Cypress dual-port device from this data sheet.  
ADDRESS(B1) = ADDRESS(B2)  
19. OE and ADS = VIL; CE1(B1), CE1(B2), R/W, CNTEN, and CNTRST = VIH  
20. The same waveforms apply for a right port write to flow-through left port read.  
21. CE0 and ADS = VIL; CE1, CNTEN, and CNTRST = VIH  
22. OE = VIL for the right port, which is being read from. OE = VIH for the left port, which is being written to.  
.
.
.
23. It tCCS maximum specified, then data from right port READ is not valid until the maximum specified for tCWDD. If tCCS>maximum specified, then data is not  
valid until tCCS + tCD1. tCWDD does not apply in this case.  
Document #: 38-06039 Rev. *A  
Page 10 of 19  
CY7C09089/99  
CY7C09189/99  
Switching Waveforms (continued)  
Pipelined Read-to-Write-to-Read (OE = VIL)[17, 24, 25, 26]  
t
CYC2  
t
t
CL2  
CH2  
CLK  
CE  
0
1
t
t
HC  
SC  
CE  
t
t
HW  
SW  
R/W  
t
t
HW  
SW  
A
A
A
A
A
A
n+4  
n
n+1  
n+2  
n+2  
n+3  
ADDRESS  
t
t
SD HD  
t
t
HA  
SA  
DATA  
D
IN  
n+2  
t
t
t
t
CD2  
CD2  
CKHZ  
CKLZ  
Q
Q
n+3  
n
DATA  
OUT  
READ  
NO OPERATION  
WRITE  
READ  
Pipelined Read-to-Write-to-Read (OE Controlled)[17, 24, 25, 26]  
t
CYC2  
t
t
CL2  
CH2  
CLK  
CE  
0
1
t
t
HC  
SC  
CE  
t
t
HW  
SW  
R/W  
t
t
HW  
SW  
A
A
A
A
A
A
n+5  
n
n+1  
n+2  
n+3  
n+4  
ADDRESS  
t
t
HA  
t
t
SA  
SD HD  
D
DATA  
D
n+2  
IN  
n+3  
t
t
t
CD2  
CD2  
CKLZ  
DATA  
Q
Q
n+4  
OUT  
n
t
OHZ  
OE  
READ  
WRITE  
READ  
Notes:  
24. Output state (HIGH, LOW, or High-Impedance) is determined by the previous cycle control signals.  
25. CE0 and ADS = VIL; CE1, CNTEN, and CNTRST = VIH  
.
26. During No Operation,data in memory at the selected address may be corrupted and should be rewritten to ensure data integrity.  
Document #: 38-06039 Rev. *A  
Page 11 of 19  
CY7C09089/99  
CY7C09189/99  
Switching Waveforms (continued)  
Flow-Through Read-to-Write-to-Read (OE = VIL)[15, 18, 24, 25]  
t
CYC1  
t
t
CH1  
CL1  
CLK  
CE  
CE  
0
1
t
t
HC  
SC  
t
t
HW  
SW  
R/W  
t
t
HW  
SW  
A
A
A
A
D
A
A
n+4  
n
n+1  
n+2  
n+2  
n+3  
ADDRESS  
t
t
HD  
SD  
t
t
HA  
SA  
n+2  
DATA  
IN  
t
t
t
t
CD1  
CD1  
CD1  
CD1  
DATA  
Q
Q
Q
n+3  
OUT  
n
n+1  
t
t
t
t
DC  
DC  
CKHZ  
CKLZ  
NO  
OPERATION  
READ  
WRITE  
READ  
Flow-Through Read-to-Write-to-Read (OE Controlled)[15, 18, 24, 25]  
t
CYC1  
t
t
CH1  
CL1  
CLK  
CE  
CE  
0
1
t
t
HC  
SC  
t
t
HW  
SW  
R/W  
t
t
HW  
SW  
A
A
A
A
D
A
A
n+5  
n
n+1  
n+2  
n+3  
n+4  
ADDRESS  
t
t
HD  
SD  
t
t
HA  
SA  
D
n+2  
n+3  
t
DATA  
t
OE  
IN  
DC  
t
t
CD1  
CD1  
t
CD1  
Q
Q
n+4  
n
DATA  
OUT  
t
OHZ  
t
t
DC  
CKLZ  
OE  
READ  
WRITE  
READ  
Document #: 38-06039 Rev. *A  
Page 12 of 19  
CY7C09089/99  
CY7C09189/99  
Switching Waveforms (continued)  
Pipelined Read with Address Counter Advance[27]  
t
CYC2  
t
t
CH2  
CL2  
CLK  
t
t
HA  
SA  
ADDRESS  
A
n
t
t
t
t
SAD  
HAD  
ADS  
t
t
t
t
SAD  
HAD  
CNTEN  
SCN  
HCN  
SCN  
HCN  
t
CD2  
DATA  
OUT  
Q
Q
Q
Q
Q
Q
n+3  
x-1  
x
n
n+1  
n+2  
t
READ  
DC  
COUNTER HOLD  
READ WITH COUNTER  
READ WITH COUNTER  
EXTERNAL  
ADDRESS  
Flow-Through Read with Address Counter Advance[27]  
t
CYC1  
t
t
CH1  
CL1  
CLK  
t
t
HA  
SA  
A
n
ADDRESS  
t
t
t
SAD  
HAD  
ADS  
t
t
t
t
SAD  
HAD  
CNTEN  
t
SCN  
HCN  
SCN  
HCN  
t
CD1  
Q
Q
Q
Q
Q
n+2  
DATA  
n+3  
x
n
n+1  
OUT  
t
DC  
READ  
WITH  
READ  
COUNTER HOLD  
READ WITH COUNTER  
EXTERNAL  
ADDRESS  
COUNTER  
Note:  
27. CE0 and OE = VIL; CE1, R/W and CNTRST = VIH  
.
Document #: 38-06039 Rev. *A  
Page 13 of 19  
CY7C09089/99  
CY7C09189/99  
Switching Waveforms (continued)  
Write with Address Counter Advance (Flow-Through or Pipelined Outputs)[28, 29]  
t
CYC2  
t
t
CH2  
CL2  
CLK  
t
t
HA  
SA  
A
ADDRESS  
n
INTERNAL  
ADDRESS  
A
A
A
A
A
n+4  
n
n+1  
n+2  
n+3  
t
t
HAD  
SAD  
ADS  
CNTEN  
t
t
HCN  
SCN  
D
D
D
D
D
D
n+4  
DATA  
n
n+1  
n+1  
n+2  
n+3  
IN  
t
t
HD  
SD  
WRITE EXTERNAL  
ADDRESS  
WRITE WITH WRITE COUNTER  
COUNTER HOLD  
WRITE WITH COUNTER  
Notes:  
28. CE0 and R/W = VIL; CE1 and CNTRST = VIH  
.
29. The Internal Addressis equal to the External Addresswhen ADS = VIL and equals the counter output when ADS = VIH  
.
Document #: 38-06039 Rev. *A  
Page 14 of 19  
CY7C09089/99  
CY7C09189/99  
Switching Waveforms (continued)  
Counter Reset (Pipelined Outputs)[17, 24, 30, 31]  
t
CYC2  
t
t
CH2  
CL2  
CLK  
t
t
HA  
SA  
A
A
ADDRESS  
n
n+1  
INTERNAL  
ADDRESS  
A
0
1
A
A
n+1  
X
n
t
t
HW  
SW  
R/W  
ADS  
t
t
SAD  
HAD  
t
t
SCN  
HCN  
CNTEN  
t
t
HRST  
SRST  
CNTRST  
t
t
HD  
SD  
DATA  
D
IN  
0
DATA  
Q
Q
Q
n
OUT  
0
1
COUNTER  
RESET  
WRITE  
ADDRESS 0  
READ  
ADDRESS 0  
READ  
ADDRESS 1  
READ  
ADDRESS n  
Notes:  
30. CE0 = VIL; CE1 = VIH  
.
31. No dead cycle exists during counter reset. A READ or WRITE cycle may be coincidental with the counter reset.  
Document #: 38-06039 Rev. *A  
Page 15 of 19  
CY7C09089/99  
CY7C09189/99  
Read/Write and Enable Operation[32, 33, 34]  
Inputs  
Outputs  
I/O0I/O8  
High-Z  
OE  
CLK  
CE0  
CE1  
R/W  
Operation  
X
H
X
X
Deselected[35]  
X
X
L
X
L
L
L
L
X
L
High-Z  
DIN  
Deselected[35]  
Write  
H
H
H
H
X
DOUT  
High-Z  
Read[33]  
H
X
Outputs Disabled  
Address Counter Control Operation[32, 36, 37, 38]  
Previous  
Address Address CLK ADS CNTEN CNTRST  
I/O  
Mode  
Operation  
X
An  
X
X
X
X
X
H
L
H
H
Dout(0)  
Reset  
Counter Reset to Address 0  
X
L
Dout(n)  
Dout(n)  
Load  
Hold  
Address Load into Counter  
An  
H
External Address BlockedCounter  
Disabled  
X
An  
H
L
H
Dout(n+1) Increment Counter EnabledInternal Address  
Generation  
Notes:  
32. X= Dont Care,” “H= VIH, L= VIL.  
33. ADS, CNTEN, CNTRST = Dont Care.”  
34. OE is an asynchronous input signal.  
35. When CE changes state in the pipelined mode, deselection and read happen in the following clock cycle.  
36. CE0 and OE = VIL; CE1 and R/W = VIH  
.
37. Data shown for flow-through mode; pipelined mode output will be delayed by one cycle.  
38. Counter operation is independent of CE0 and CE1.  
Document #: 38-06039 Rev. *A  
Page 16 of 19  
CY7C09089/99  
CY7C09189/99  
Ordering Information  
64K x8 Synchronous Dual-Port SRAM  
Speed  
Package  
Name  
Operating  
Range  
(ns)  
6.5[1]  
7.5  
9
Ordering Code  
CY7C09089-6AC  
Package Type  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
A100  
A100  
A100  
A100  
Commercial  
Commercial  
Commercial  
Commercial  
CY7C09089-7AC  
CY7C09089-9AC  
CY7C09089-12AC  
12  
128K x8 Synchronous Dual-Port SRAM  
Speed  
Package  
Name  
Operating  
Range  
(ns)  
6.5  
7.5  
9
Ordering Code  
Package Type  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
CY7C09099-6AC  
A100  
A100  
A100  
A100  
A100  
Commercial  
Commercial  
Commercial  
Industrial  
CY7C09099-7AC  
CY7C09099-9AC  
CY7C09099-9AI  
CY7C09099-12AC  
12  
Commercial  
64K x9 Synchronous Dual-Port SRAM  
Speed  
Package  
Name  
Operating  
Range  
(ns)  
6.5  
7.5  
9
Ordering Code  
Package Type  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
CY7C09189-6AC  
A100  
A100  
A100  
A100  
Commercial  
Commercial  
Commercial  
Commercial  
CY7C09189-7AC  
CY7C09189-9AC  
CY7C09189-12AC  
12  
128K x9 Synchronous Dual-Port SRAM  
Speed  
Package  
Name  
Operating  
Range  
(ns)  
6.5  
7.5  
9
Ordering Code  
Package Type  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
100-Pin Thin Quad Flat Pack  
CY7C09199-6AC  
A100  
A100  
A100  
A100  
A100  
Commercial  
Commercial  
Commercial  
Industrial  
CY7C09199-7AC  
CY7C09199-9AC  
CY7C09199-9AI  
CY7C09199-12AC  
12  
Commercial  
Document #: 38-06039 Rev. *A  
Page 17 of 19  
CY7C09089/99  
CY7C09189/99  
Package Diagram  
100-Pin Thin Plastic Quad Flat Pack (TQFP) A100  
51-85048-B  
Document #: 38-06039 Rev. *A  
Page 18 of 19  
© Cypress Semiconductor Corporation, 2001. The information contained herein is subject to change without notice. Cypress Semiconductor Corporation assumes no responsibility for the use  
of any circuitry other than circuitry embodied in a Cypress Semiconductor product. Nor does it convey or imply any license under patent or other rights. Cypress Semiconductor does not authorize  
its products for use as critical components in life-support systems where a malfunction or failure may reasonably be expected to result in significant injury to the user. The inclusion of Cypress  
Semiconductor products in life-support systems application implies that the manufacturer assumes all risk of such use and in doing so indemnifies Cypress Semiconductor against all charges.  
CY7C09089/99  
CY7C09189/99  
Document Title: CY7C09089/99, CY7C09189/99 64K/128K x 8/9 Synchronous Dual Port Static RAM  
Document Number: 38-06039  
Issue  
Orig. of  
REV.  
**  
ECN NO.  
110187  
Date  
Change Description of Change  
10/21/01  
12/27/02  
SZV  
RBI  
Change from Spec number: 38-00663 to 38-06039  
Added power up information to maximum ratings information.  
*A  
122289  
Document #: 38-06039 Rev. *A  
Page 19 of 19  

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