Datasheet MSM518221-30GS-K, MSM518221-25JS, MSM518221-40ZS, MSM518221-30ZS, MSM518221-40GS-K Datasheet (OKI)

...
Page 1
E2L0032-17-Y1
¡ Semiconductor MSM518221
¡ Semiconductor
This version: Jan. 1998
Previous version: Dec. 1996
MSM518221
262,214-Word ¥ 8-Bit Field Memory
DESCRIPTION
The OKI MSM518221 is a high performance 2-Mbit, 256K ¥ 8-bit, Field Memory. It is designed for high-speed serial access applications such as HDTVs, conventional NTSC TVs, VTRs, digital movies and Multi-media systems. The 2-Mbit capacity fits one field of a conventional NTSC TV screen.
Each of the 8-bit planes has separate serial write and read ports. These employ independent control clocks to support asynchronous read and write operations. Different clock rates are also supported, which allow alternate data rates between write and read data streams.
The MSM518221 provides high speed FIFO, First-In First-Out, operation without external refreshing: it refreshes its DRAM storage cells automatically, so that it appears fully static to the users. Moreover, fully static type memory cells and decoders for serial access enable the refresh free serial access operation, so that serial read and/or write control clock can be halted high or low for any duration as long as the power is on. Internal conflicts of memory access and refreshing operations are prevented by special arbitration logic.
The MSM518221's function is simple, and similar to a digital delay device whose delay-bit-length is easily set by reset timing. The delay length, and the number of read delay clocks between write and read, is determined by externally controlled write and read reset timings.
Additional SRAM serial registers, or line buffers for the initial access of 256 ¥ 8-bit enable high speed first-bit-access with no clock delay just after the write or read reset timings.
The MSM518221 is similar in operation and functionality to OKI 1-Mbit Field Memory MSM514221B. It has a write mask function or input enable function (IE), and read-data skipping function or output enable function (OE). The differences between write enable (WE) and input enable (IE), and between read enable (RE) and output enable (OE) are that WE and RE can stop serial write/read address increments, but IE and OE cannot stop the increment, when write/read clocking is continuously applied to MSM518221. The input enable (IE) function allows the user to write into selected locations of the memory only, leaving the rest of the memory contents unchanged. This facilitates data processing to display a "picture in picture" on a TV screen.
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¡ Semiconductor MSM518221
FEATURES
• Single power supply : 5 V ±10%
• 512 Rows ¥ 512 Columns ¥ 8 bits
• Fast FIFO (First-In First-Out) operation
• High speed asynchronous serial access Read/write cycle time 25 ns/30 ns/40 ns Access time 25 ns/25 ns/30 ns
• Functional compatibility with OKI MSM514221B
• Write mask function (Input enable control)
• Data skipping function (Output enable control)
• Self refresh (No refresh control is required)
• Package options : 28-pin 400 mil plastic ZIP (ZIP28-P-400-1.27) (Product : MSM518221-xxZS) 28-pin 400 mil plastic SOJ (SOJ28-P-400-1.27) (Product : MSM518221-xxJS) 28-pin 430 mil plastic SOP (SOP28-P-430-1.27-K) (Product : MSM518221-xxGS-K)
xx indicates speed rank.
PRODUCT FAMILY
Family Access Time (Max.) Cycle Time (Min.) Package
MSM518221-25ZS 25 ns25 ns
MSM518221-30ZS 30 ns25 ns 400 mil 28-pin ZIP
MSM518221-40ZS 40 ns30 ns
MSM518221-25JS
MSM518221-30JS 30 ns25 ns 400 mil 28-pin SOJ
MSM518221-40JS 40 ns30 ns
MSM518221-30GS-K 30 ns25 ns
MSM518221-40GS-K 40 ns30 ns
25 ns25 ns
430 mil 28-pin SOP
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¡ Semiconductor MSM518221
PIN CONFIGURATION (TOP VIEW)
WE
D
IN
D
IN
V
DIN5
D
IN
SWCK
NC
OE
D
OUT
D
OUT
D
OUT
D
OUT
RSTR
1
3
0
2
5
7
CC
9
7
11
13
15
17
6
19
4
21
3
23
1
25
27
10
12
14
16
18
20
22
24
26
28
2
4
6
8
IE
DIN1
3
D
IN
4
D
IN
6
D
IN
RSTW
NC
RE
D
OUT
D
OUT
V
SS
D
OUT
D
OUT
SRCK
7
5
2
0
1
DIN4
2
5
D
IN
3
D
6
IN
7
4
D
IN
RSTW
5
623
SWCK
722
NC
821
RE
OE
9
7
D
10
OUT
6
D
11
OUT
5
D
12
OUT
D
4
13
OUT
14 15
V
SS
28
27
26
25
24
20
19
18
17
16
V
DIN3
D
D
D
IE
WE
NC
SRCK
RSTR
D
D
D
D
28-Pin Plastic SOJ 28-Pin Plastic SOP
CC
IN
IN
IN
OUT
OUT
OUT
OUT
D
1
4
IN
2
5
D
2
1
0
IN
D
IN
D
IN
RSTW
SWCK
6
3
7
4
5
6
NC
8
RE
OE
9
7
D
10
OUT
0
1
2
3
6
D
11
OUT
5
D
12
OUT
4
D
13
OUT
14 15
V
SS
28
27
26
25
24
23
227
21
20
19
18
17
16
V
CC
DIN3
D
IN
D
IN
D
IN
IE
WE
NC
SRCK
RSTR
D
OUT
D
OUT
D
OUT
D
OUT
2
1
0
0
1
2
3
28-Pin Plastic ZIP
Pin Name Function
SWCK
SRCK
RSTW
RSTR
D
IN
D
OUT
WE
RE
IE
OE
0 - 7
V
CC
V
SS
0 - 7
Serial Write Clock Serial Read Clock Write Enable Read Enable Input Enable Output Enable Write Reset Clock Read Reset Clock Data Input Data Output Power Supply (5 V) Ground (0 V)
NC No Connection
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D
(¥ 8)
OUT
OE
RE
RSTR SRCK
BLOCK DIAGRAM
¡ Semiconductor MSM518221
Data-out
Buffer (¥ 8)
71 Word
Sub-Register (¥ 8)
71 Word
Sub-Register (¥ 8)
Data-in
Buffer (¥ 8)
Serial
Read
Controller
512 Word Serial Read Register (¥ 8)
Read Line Buffer
Low-Half (¥ 8)
Read Line Buffer
High-Half (¥ 8)
256 (¥ 8)
256K (¥ 8)
Memory
Array
256 (¥ 8)
Write Line Buffer
Low-Half (¥ 8)
Write Line Buffer
High-Half (¥ 8)
512 Word Serial Write Register (¥ 8)
Serial
Write
Controller
256 (¥ 8)
256 (¥ 8)
X
Decoder
Read/Write
and Refresh
Controller
Clock
Oscillator
V
Generator
BB
4/16
D
IN
(¥ 8)
IE WE RSTW SWCK
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¡ Semiconductor MSM518221
OPERATION
Write Operation
The write operation is controlled by three clocks, SWCK, RSTW, and WE. Write operation is accomplished by cycling SWCK, and holding WE high after the write address pointer reset operation or RSTW. Each write operation, which begins after RSTW, must contain at least 80 active write cycles, i.e. SWCK cycles while WE is high. To transfer the last data to the DRAM array, which at that time is stored in the serial data registers attached to the DRAM array, an RSTW operation is required after the last SWCK cycle.
Write Reset : RSTW
The first positive transition of SWCK after RSTW becomes high resets the write address counters to zero. RSTW setup and hold times are referenced to the rising edge of SWCK. Because the write reset function is solely controlled by the SWCK rising edge after the high level of RSTW, the states of WE and IE are ignored in the write reset cycle. Before RSTW may be brought high again for a further reset operation, it must be low for at least two SWCK cycles.
Data Inputs : DIN0 - 7
Write Clock : SWCK
The SWCK latches the input data on chip when WE is high, and also increments the internal write address pointer. Data-in setup time tDS, and hold time tDH are referenced to the rising edge of SWCK.
Write Enable : WE
WE is used for data write enable/disable control. WE high level enables the input, and WE low level disables the input and holds the internal write address pointer. There are no WE disable time (low) and WE enable time (high) restrictions, because the MSM518221 is in fully static operation as long as the power is on. Note that WE setup and hold times are referenced to the rising edge of SWCK.
Input Enable : IE
IE is used to enable/disable writing into memory. IE high level enables writing. The internal write address pointer is always incremented by cycling SWCK regardless of the IE level. Note that IE setup and hold times are referenced to the rising edge of SWCK.
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¡ Semiconductor MSM518221
Read Operation
The read operation is controlled by three clocks, SRCK, RSTR, and RE. Read operation is accomplished by cycling SRCK, and holding RE high after the read address pointer reset operation or RSTR. Each read operation, which begins after RSTR, must contain at least 80 active read cycles, i.e. SRCK cycles while RE is high.
Read Reset : RSTR
The first positive transition of SRCK after RSTR becomes high resets the read address counters to zero. RSTR setup and hold times are referenced to the rising edge of SRCK. Because the read reset function is solely controlled by the SRCK rising edge after the high level of RSTR, the states of RE and OE are ignored in the read reset cycle. Before RSTR may be brought high again for a further reset operation, it must be low for at least two SRCK cycles.
Data Out : D
OUT
0 - 7
Read Clock : SRCK
Data is shifted out of the data registers. It is triggered by the rising edge of SRCK when RE is high during a read operation. The SRCK input increments the internal read address pointer when RE is high. The three-state output buffer provides direct TTL compatibility (no pullup resistor required). Data out is the same polarity as data in. The output becomes valid after the access time interval tAC that begins with the rising edge of SRCK. There are no output valid time restrictions on MSM518221.
Read Enable : RE
The function of RE is to gate of the SRCK clock for incrementing the read pointer. When RE is high before the rising edge of SRCK, the read pointer is incremented. When RE is low, the read pointer is not incremented. RE setup times (t
RENS
and t
) and RE hold times (t
RDSS
RENH
and t
RDSH
) are
referenced to the rising edge of the SRCK clock.
Output Enable : OE
OE is used to enable/disable the outputs. OE high level enables the outputs. The internal read address pointer is always incremented by cycling SRCK regardless of the OE level. Note that OE setup and hold times are referenced to the rising edge of SRCK.
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Page 7
¡ Semiconductor MSM518221
Power-up and Initialization
On power-up, the device is designed to begin proper operation after at least 100 ms after VCC has stabilized to a value within the range of recommended operating conditions. After this 100 ms stabilization interval, the following initialization sequence must be performed. Because the read and write address counters are not valid after power-up, a minimum of 80 dummy write operations (SWCK cycles) and read operations (SRCK cycles) must be performed, followed by an RSTW operation and an RSTR operation, to properly initialize the write and the read address pointer. Dummy write cycles/RSTW and dummy read cycles/RSTR may occur simultaneously. If these dummy read and write operations start while VCC and/or the substrate voltage has not stabilized, it is necessary to perform an RSTR operation plus a minimum of 80 SRCK cycles plus another RSTR operation, and an RSTW operation plus a minimum of 80 SRCK cycles plus another RSTW operation to properly initialize read and write address pointers.
Old/New Data Access
There must be a minimum delay of 600 SWCK cycles between writing into memory and reading out from memory. If reading from the first field starts with an RSTR operation, before the start of writing the second field (before the next RSTW operation), then the data just written will be read out. The start of reading out the first field of data may be delayed past the beginning of writing in the second field of data for as many as 70 SWCK cycles. If the RSTR operation for the first field read-out occurs less than 70 SWCK cycles after the RSTW operation for the second field write-in, then the internal buffering of the device assures that the first field will still be read out. The first field of data that is read out while the second field of data is written is called "old data". In order to read out "new data", i.e., the second field written in, the delay between an RSTW operation and an RSTR operation must be at least 600 SRCK cycles. If the delay between RSTW and RSTR operations is more than 71 but less than 600 cycles, then the data read out will be undetermined. It may be "old data" or "new" data, or a combination of old and new data. Such a timing should be avoided.
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Page 8
¡ Semiconductor MSM518221
ELECTRICAL CHARACTERISTICS
Absolute Maximum Ratings
Parameter Symbol Condition Rating
Input Output Voltage
Output Current
Power Dissipation
Operating Temperature
Storage Temperature
V
T
I
OS
P
D
T
opr
T
stg
at Ta = 25°C, V
Ta = 25°C
Ta = 25°C
SS
Recommended Operating Conditions
Parameter Symbol Min. UnitTyp. Max.
Power Supply Voltage
Power Supply Voltage
Input High Voltage
Input Low Voltage
V
CC
V
SS
V
IH
V
IL
4.5
0
2.4
–1.0
5.0
V
0
CC
0
DC Characteristics
Parameter Symbol Condition Min.
Input Leakage Current
Output Leakage Current
Output "H" Level Voltage
Output "L" Level Voltage
Operating Current
Standby Current
I
0 < VI < V
LI
I
LO
V
OH
V
OL
I
1
Minimum Cycle Time, Output Open
CC
I
CC2
+ 1, Other Pins Tested at V = 0 V
CC
0 < VO < V
I
= –1 mA
OH
I
OL
Input Pin = V
= 2 mA
CC
-25
-30
-40
/ V
IH
IL
–1.0 to 7.0
0 to 70
–55 to 150
–10
–10
2.4
50
1
5.5
0
VCC + 1
0.8
Max. Unit
10
10
0.4
60
50
40
5
Unit
V
mA
W
°C
°C
V
V
V
V
mA
mA
V
V
mA
mA
Capacitance
Input Capacitance (D
Output Capacitance (D
Parameter Unit
, SWCK, SRCK, RSTW, RSTR, WE, RE, IE, OE)
IN
)
OUT
(Ta = 25°C, f = 1 MHz)
Symbol Max.
C
I
C
O
7
7
pF
pF
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¡ Semiconductor MSM518221
AC Characteristics
AC
DS
DH
SRC
t
T
MSM518221-25
6
6
9
9
5
6
4
5
0
5
4
5
0
5— 5 5— 5
5
0
10
9
9
0
5
0 5
0
5 0
5 5
5
5
5
0
10RSTR Hold Time 10 10 ns
25
25
3
Parameter
Access Time from SRCK
D
Hold Time from SRCK
OUT
Enable Time from SRCK
D
OUT
SWCK "H" Pulse Width
SWCK "L" Pulse Width
Input Data Setup Time
Input Data Hold Time
WE Enable Setup Time
WE Enable Hold Time
WE Disable Setup Time
WE Disable Hold Time
IE Enable Setup Time
IE Enable Hold Time
IE Disable Setup Time
IE Disable Hold Time WE "H" Pulse Width WE "L" Pulse Width IE "H" Pulse Width
IE "L" Pulse Width
RSTW Setup Time
RSTW Hold Time
SRCK "H" Pulse Width
SRCK "L" Pulse Width
RE Enable Setup Time
RE Enable Hold Time
RE Disable Setup Time RE Disable Hold Time
OE Enable Setup Time
OE Enable Hold Time OE Disable Setup Time
OE Disable Hold Time RE "H" Pulse Width
RE "L" Pulse Width
OE "H" Pulse Width
OE "L" Pulse Width
RSTR Setup Time
SWCK Cycle Time 30 40 ns
SRCK Cycle Time 30 40 ns
Symbol Unit
t
t
DDCK
t
DECK
t
WSWH
t
WSWL
t
t
t
WENS
t
WENH
t
WDSS
t
WDSH
t
IENS
t
IENH
t
IDSS
t
IDSH
t
WWEH
t
WWEL
t
WIEH
t
WIEL
t
RSTWS
t
RSTWH
t
WSRH
t
WSRL
t
RENS
t
RENH
t
RDSS
t
RDSH
t
OENS
t
OENH
t
ODSS
t
ODSH
t
WREH
t
WREL
t
WOEH
t
WOEL
t
RSTRS
t
RSTRH
t
SWC
t
Transition Time (Rise and Fall) 3 3 ns30
(VCC = 5 V ±10%, Ta = 0°C to 70°C)
MSM518221-30 MSM518221-40
Max.Min.
25
25
12
12
25
6
6
25
5
6
4
5
0
5
4
5
0
6
6
17
17
5
6
4
5
0
5
4
5
0
Max.Min.Max.Min.
30
25
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
5—5—ns
10
10
ns
10 10 ns —
— —
— —
— —
10
10
10
12
12
10
10
10
10
0
0
5
0 5
0
5
— —
— —
5
— —
0
10
10
10
17
17
10
10
10
10
0
0
5
0 5
0
5 0
5
— —
— —
— —
0
ns
ns
ns
ns
ns
ns
ns
ns
ns ns
ns
ns ns0
ns ns
ns
ns
ns
ns
——
——
——
30 30
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¡ Semiconductor MSM518221
Notes: 1. Input signal reference levels for the parameter measurement are VIH = 3.0 V and V
= 0 V. The transition time tT is defined to be a transition time that signal transfers between VIH = 3.0 V and VIL = 0 V.
2. AC measurements assume tT = 3 ns.
3. Read address must have more than a 600 address delay than write address in every cycle when asynchronous read/write is performed.
4. Read must have more than a 600 address delay than write in order to read the data written in a current series of write cycles which has been started at last write reset cycle: this is called "new data read". When read has less than a 70 address delay than write, the read data are the data written in a previous series of write cycles which had been written before the last write reset cycle: this is called "old data read".
5. When the read address delay is between more than 71 and less than 599, read data will be undetermined. However, normal write is achieved in this address condition.
6. Outputs are measured with a load equivalent to 1 TTL load and 30 pF. Output reference levels are VOH = 2.4 V and VOL = 0.8 V.
IL
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¡ Semiconductor MSM518221
TIMING WAVEFORM
Write Cycle Timing (Write Reset)
n cycle 0 cycle 1 cycle 2 cycle
V
SWCK
RSTW
D
IN
t
t
t
t
T
t
DS
RSTWS
t
DH
RSTWH
WSWH
t
SWC
t
WSWL
n0123
V
V V
V V
IH
IL
IH
IL
IH
IL
WE
IE
Write Cycle Timing (Write Enable)
n cycle Disable cycle Disable cycle n+1 cycle
SWCK
WE
D
t
WENH
t
WWEL
IN
n n+2n+1
t
WDSH
t
WWEH
t
WDSS
t
WENS
V
IH
V
IL
V
IH
V
IL
V
IH
V
IL
V
IH
V
IL
V
IH
V
IL
IE
RSTW
V V
V V
11/16
IH
IL
IH
IL
Page 12
¡ Semiconductor MSM518221
Write Cycle Timing (Input Enable)
n cycle
n+1 cycle n+2 cycle n+3 cycle
SWCK
t
IENH
IE
t
WIEL
D
IN
n n+4n+3
WE
RSTW
Read Cycle Timing (Read Reset)
t
IDSH
t
WIEH
t
IDSS
t
IENS
V
IH
V
IL
V
IH
V
IL
V
IH
V
IL
V
IH
V
IL
V
IH
V
IL
SRCK
RSTR
D
OUT
RE
OE
n cycle 0 cycle 1 cycle 2 cycle
t
t
t
t
T
RSTRS
t
AC
RSTRH
WSRH
t
DDCK
t
SRC
t
WSRL
n-1n012
V
IH
V
IL
V
IH
V
IL
V
OH
V
OL
V
IH
V
IL
V
IH
V
IL
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Page 13
¡ Semiconductor MSM518221
Read Cycle Timing (Read Enable)
n cycle Disable cycle Disable cycle n+1 cycle
SRCK
V V
IH
IL
t
RENH
t
RDSH
RE
t
t
WREL
D
OUT
n-1 n n+1
WREH
OE
RSTR
Read Cycle Timing (Output Enable)
n cycle n+1 cycle n+2 cycle n+3 cycle
SRCK
t
RDSS
t
RENS
V
IH
V
IL
V
OH
V
OL
V
IH
V
IL
V
IH
V
IL
V
IH
V
IL
OE
D
OUT
RE
RSTR
t
OENH
t
WOEN
t
ODSH
t
WOEH
n-1 n n+3Hi-Z
t
ODSS
t
OENS
t
DECK
V V
V V
V V
V V
13/16
IH
IL
OH
OL
IH
IL
IH
IL
Page 14
¡ Semiconductor MSM518221
PACKAGE DIMENSIONS
(Unit : mm)
ZIP28-P-400-1.27
Mirror finish
Package material Lead frame material Pin treatment Solder plate thickness Package weight (g)
Epoxy resin 42 alloy Solder plating 5 mm or more
1.85 TYP.
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Page 15
¡ Semiconductor MSM518221
(Unit : mm)
SOJ28-P-400-1.27
Mirror finish
Package material Lead frame material Pin treatment Solder plate thickness Package weight (g)
Epoxy resin 42 alloy Solder plating 5 mm or more
1.30 TYP.
Notes for Mounting the Surface Mount Type Package
The SOP, QFP, TSOP, SOJ, QFJ (PLCC), SHP and BGA are surface mount type packages, which are very susceptible to heat in reflow mounting and humidity absorbed in storage. Therefore, before you perform reflow mounting, contact Oki’s responsible sales person for the product name, package name, pin number, package code and desired mounting conditions (reflow method, temperature and times).
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Page 16
¡ Semiconductor MSM518221
(Unit : mm)
SOP28-P-430-1.27-K
Mirror finish
Package material Lead frame material Pin treatment Solder plate thickness Package weight (g)
Epoxy resin 42 alloy Solder plating 5 mm or more
0.75 TYP.
Notes for Mounting the Surface Mount Type Package
The SOP, QFP, TSOP, SOJ, QFJ (PLCC), SHP and BGA are surface mount type packages, which are very susceptible to heat in reflow mounting and humidity absorbed in storage. Therefore, before you perform reflow mounting, contact Oki’s responsible sales person for the product name, package name, pin number, package code and desired mounting conditions (reflow method, temperature and times).
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