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GS881Z18AT-225

GS881Z18AT-225

  • 厂商:

    GSI

  • 封装:

  • 描述:

    GS881Z18AT-225 - 9Mb Pipelined and Flow Through Synchronous NBT SRAM - GSI Technology

  • 数据手册
  • 价格&库存
GS881Z18AT-225 数据手册
GS881Z18/36AT-250/225/200/166/150/133 100-Pin TQFP Commercial Temp Industrial Temp Features • User-configurable Pipeline and Flow Through mode • NBT (No Bus Turn Around) functionality allows zero wait read-write-read bus utilization • Fully pin-compatible with both pipelined and flow through NtRAM™, NoBL™ and ZBT™ SRAMs • IEEE 1149.1 JTAG-compatible Boundary Scan • On-chip write parity checking; even or odd selectable • 2.5 V or 3.3 V +10%/–10% core power supply • 2.5 V or 3.3 V I/O supply • LBO pin for Linear or Interleave Burst mode • Pin-compatible with 2M, 4M, and 8M devices • Byte write operation (9-bit Bytes) • 3 chip enable signals for easy depth expansion • ZZ pin for automatic power-down • JEDEC-standard 100-lead TQFP package 9Mb Pipelined and Flow Through Synchronous NBT SRAM 250 MHz–133 MHz 2.5 V or 3.3 V VDD 2.5 V or 3.3 V I/O Because it is a synchronous device, address, data inputs, and read/ write control inputs are captured on the rising edge of the input clock. Burst order control (LBO) must be tied to a power rail for proper operation. Asynchronous inputs include the Sleep mode enable, ZZ and Output Enable. Output Enable can be used to override the synchronous control of the output drivers and turn the RAM's output drivers off at any time. Write cycles are internally self-timed and initiated by the rising edge of the clock input. This feature eliminates complex offchip write pulse generation required by asynchronous SRAMs and simplifies input signal timing. The GS881Z18/36AT may be configured by the user to operate in Pipeline or Flow Through mode. Operating as a pipelined synchronous device, in addition to the rising-edgetriggered registers that capture input signals, the device incorporates a rising-edge-triggered output register. For read cycles, pipelined SRAM output data is temporarily stored by the edge triggered output register during the access cycle and then released to the output drivers at the next rising edge of clock. The GS881Z18/36AT is implemented with GSI's high performance CMOS technology and is available in a JEDECstandard 100-pin TQFP package. Functional Description The GS881Z18/36AT is a 9Mbit Synchronous Static SRAM. GSI's NBT SRAMs, like ZBT, NtRAM, NoBL or other pipelined read/double late write or flow through read/single late write SRAMs, allow utilization of all available bus bandwidth by eliminating the need to insert deselect cycles when the device is switched from read to write cycles. Parameter Synopsis Pipeline 3-1-1-1 3.3 V 2.5 V Flow Through 2-1-1-1 3.3 V 2.5 V tKQ tCycle Curr (x18) Curr (x36) Curr (x18) Curr (x36) tKQ tCycle Curr (x18) Curr (x36) Curr (x18) Curr (x36) -250 -225 -200 -166 -150 -133 Unit 2.5 2.7 3.0 3.4 3.8 4.0 ns 4.0 4.4 5.0 6.0 6.7 7.5 ns 280 330 275 320 5.5 5.5 175 200 175 200 255 300 250 295 6.0 6.0 165 190 165 190 230 270 230 265 6.5 6.5 160 180 160 180 200 230 195 225 7.0 7.0 150 170 150 170 185 215 180 210 7.5 7.5 145 165 145 165 165 190 165 185 8.5 8.5 135 150 135 150 mA mA mA mA ns ns mA mA mA mA Rev: 1.03 11/2004 1/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 GS881Z18AT Pinout (Package T) VDDQ VSS NC NC DQ B DQB VSS VDDQ DQ B DQB FT VDD NC VSS DQ B DQB VDDQ VSS DQ B DQB DQPB NC VSS VDDQ NC NC NC NC NC NC 100 99 98 97 96 95 94 93 92 91 90 89 88 87 86 85 84 83 82 81 1 80 2 79 3 78 4 77 5 76 6 75 7 74 8 73 9 72 512K x 18 10 71 Top View 11 70 12 69 13 68 14 67 15 66 16 65 17 64 18 63 19 62 20 61 21 60 22 59 23 58 24 57 25 56 26 55 27 54 28 53 29 52 30 51 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 A A E1 E2 NC NC BB BA E3 VDD VSS CK W CKE G ADV NC A A A A NC NC VDDQ VSS NC DQPA DQA DQA VSS VDDQ DQA DQA VSS NC VDD ZZ DQA DQA VDDQ VSS DQA DQA NC NC VSS VDDQ NC NC NC Rev: 1.03 11/2004 LBO A A A A A1 A0 TMS TDI VSS VDD TDO TCK A A A A A A A 2/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 GS881Z36AT Pinout (Package T) DQPC DQC DQC VDDQ VSS DQC DQC DQ C DQC VSS VDDQ DQ C DQC FT VDD NC VSS DQ D DQD VDDQ VSS DQ D DQD DQD DQD VSS VDDQ DQD DQD DQPD 100 99 98 97 96 95 94 93 92 91 90 89 88 87 86 85 84 83 82 81 1 80 2 79 3 78 4 77 5 76 6 75 7 74 8 73 9 72 256K x 36 10 71 Top View 11 70 12 69 13 68 14 67 15 66 16 65 17 64 18 63 19 62 20 61 21 60 22 59 23 58 24 57 25 56 26 55 27 54 28 53 29 52 30 51 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 A A E1 E2 BD BC BB BA E3 VDD VSS CK W CKE G ADV NC A A A DQPB DQB DQB VDDQ VSS DQB DQB DQB DQB VSS VDDQ DQB DQB VSS NC VDD ZZ DQA DQA VDDQ VSS DQA DQA DQA DQA VSS VDDQ DQA DQA DQPA Rev: 1.03 11/2004 LBO A A A A A1 A0 TMS TDI VSS VDD TDO TCK A A A A A A A 3/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 100-Pin TQFP Pin Descriptions Symbol A 0, A 1 An CK BA BB BC BD W E1 E2 E3 G ADV CKE NC DQA DQB DQC DQD ZZ FT LBO VDD VSS VDDQ Type In In In In In In In In In In In In In In — I/O I/O I/O I/O In In In In In In Description Burst Address Inputs; Preload the burst counter Address Inputs Clock Input Signal Byte Write signal for data inputs DQA1–DQA9; active low Byte Write signal for data inputs DQB1–DQB9; active low Byte Write signal for data inputs DQC1–DQC9; active low Byte Write signal for data inputs DQD1–DQD9; active low Write Enable; active low Chip Enable; active low Chip Enable—Active High. For self decoded depth expansion Chip Enable—Active Low. For self decoded depth expansion Output Enable; active low Advance/Load; Burst address counter control pin Clock Input Buffer Enable; active low No Connect Byte A Data Input and Output pins Byte B Data Input and Output pins Byte C Data Input and Output pins Byte D Data Input and Output pins Power down control; active high Pipeline/Flow Through Mode Control; active low Linear Burst Order; active low. Core power supply Ground Output driver power supply Rev: 1.03 11/2004 4/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. Write Drivers BC Control Logic Data Coherency Sense Amps Rev: 1.03 11/2004 D K SA1 SA0 Burst Counter SA1’ SA0’ A0–An Q ADV K 18 Write Address Write Address LBO FT K K Register 1 Register 2 Match 5/31 Read, Write and Memory Array K Write Data W D K Q BA NC Parity Check D K DQa–DQn Write Data BB NC Q BD E1 Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. E2 GS881Z18/36A NBT SRAM Functional Block Diagram E3 FT Register 2 Register 1 CK K K CKE GS881Z18/36AT-250/225/200/166/150/133 © 2001, GSI Technology G GS881Z18/36AT-250/225/200/166/150/133 Functional Details Clocking Deassertion of the Clock Enable (CKE) input blocks the Clock input from reaching the RAM's internal circuits. It may be used to suspend RAM operations. Failure to observe Clock Enable set-up or hold requirements will result in erratic operation. Pipeline Mode Read and Write Operations All inputs (with the exception of Output Enable, Linear Burst Order and Sleep) are synchronized to rising clock edges. Single cycle read and write operations must be initiated with the Advance/Load pin (ADV) held low, in order to load the new address. Device activation is accomplished by asserting all three of the Chip Enable inputs (E1, E2 and E3). Deassertion of any one of the Enable inputs will deactivate the device. Function Read Write Byte “a” Write Byte “b” Write Byte “c” Write Byte “d” Write all Bytes Write Abort/NOP W H L L L L L L BA X L H H H L H BB X H L H H L H BC X H H L H L H BD X H H H L L H Read operation is initiated when the following conditions are satisfied at the rising edge of clock: CKE is asserted low, all three chip enables (E1, E2, and E3) are active, the write enable input signals W is deasserted high, and ADV is asserted low. The address presented to the address inputs is latched in to address register and presented to the memory core and control logic. The control logic determines that a read access is in progress and allows the requested data to propagate to the input of the output register. At the next rising edge of clock the read data is allowed to propagate through the output register and onto the output pins. Write operation occurs when the RAM is selected, CKE is active and the write input is sampled low at the rising edge of clock. The Byte Write Enable inputs (BA, BB, BC & BD) determine which bytes will be written. All or none may be activated. A write cycle with no Byte Write inputs active is a no-op cycle. The pipelined NBT SRAM provides double late write functionality, matching the write command versus data pipeline length (2 cycles) to the read command versus data pipeline length (2 cycles). At the first rising edge of clock, Enable, Write, Byte Write(s), and Address are registered. The Data In associated with that address is required at the third rising edge of clock. Flow Through Mode Read and Write Operations Operation of the RAM in Flow Through mode is very similar to operations in Pipeline mode. Activation of a read cycle and the use of the Burst Address Counter is identical. In Flow Through mode the device may begin driving out new data immediately after new address are clocked into the RAM, rather than holding new data until the following (second) clock edge. Therefore, in Flow Through mode the read pipeline is one cycle shorter than in Pipeline mode. Write operations are initiated in the same way, but differ in that the write pipeline is one cycle shorter as well, preserving the ability to turn the bus from reads to writes without inserting any dead cycles. While the pipelined NBT RAMs implement a double late write protocol, in Flow Through mode a single late write protocol mode is observed. Therefore, in Flow Through mode, address and control are registered on the first rising edge of clock and data in is required at the data input pins at the second rising edge of clock. Rev: 1.03 11/2004 6/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Synchronous Truth Table Operation Read Cycle, Begin Burst Read Cycle, Continue Burst NOP/Read, Begin Burst Dummy Read, Continue Burst Write Cycle, Begin Burst Write Cycle, Continue Burst Write Abort, Continue Burst Deselect Cycle, Power Down Deselect Cycle, Power Down Deselect Cycle, Power Down Deselect Cycle Deselect Cycle, Continue Sleep Mode Clock Edge Ignore, Stall Type Address CK CKE ADV W Bx E1 E2 E3 G ZZ R B R B W B B D D D D D External Next External Next External Next Next None None None None None None Current L-H L-H L-H L-H L-H L-H L-H L-H L-H L-H L-H L-H X L-H L L L L L L L L L L L L X H L H L H L H H L L L L H X X H X H X L X X X X X L X X X X X X X L L H X X X H X X X L X L X L X X H X X L X X X H X H X H X X X X L H X X X L X L X L X X X H X L X X X L L H H X X X X X X X X X X L L L L L L L L L L L L H L DQ Q Q High-Z High-Z D D Notes 1,10 2 1,2,10 3 1,3,10 High-Z 1,2,3,10 High-Z High-Z High-Z High-Z High-Z High-Z 4 1 1 Notes: 1. Continue Burst cycles, whether read or write, use the same control inputs. A Deselect continue cycle can only be entered into if a Deselect cycle is executed first. 2. Dummy Read and Write abort can be considered NOPs because the SRAM performs no operation. A Write abort occurs when the W pin is sampled low but no Byte Write pins are active so no write operation is performed. 3. G can be wired low to minimize the number of control signals provided to the SRAM. Output drivers will automatically turn off during write cycles. 4. If CKE High occurs during a pipelined read cycle, the DQ bus will remain active (Low Z). If CKE High occurs during a write cycle, the bus will remain in High Z. 5. X = Don’t Care; H = Logic High; L = Logic Low; Bx = High = All Byte Write signals are high; Bx = Low = One or more Byte/Write signals are Low 6. All inputs, except G and ZZ must meet setup and hold times of rising clock edge. 7. Wait states can be inserted by setting CKE high. 8. This device contains circuitry that ensures all outputs are in High Z during power-up. 9. A 2-bit burst counter is incorporated. 10. The address counter is incriminated for all Burst continue cycles. Rev: 1.03 11/2004 7/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Pipelined and Flow Through Read Write Control State Diagram D B Deselect R W D D W R R New Read B New Write W B R W R W B Burst Read D Burst Write D B Key Input Command Code Notes: 1. The Hold command (CKE Low) is not shown because it prevents any state change. ƒ Transition Current State (n) Next State (n+1) n n+1 2. W, R, B, and D represent input command codes as indicated in the Synchronous Truth Table. n+2 n+3 Clock (CK) Command ƒ Current State ƒ Next State ƒ ƒ Current State and Next State Definition for Pipelined and Flow Through Read/Write Control State Diagram Rev: 1.03 11/2004 8/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Pipeline Mode Data I/O State Diagram Intermediate BW High Z (Data In) D R Intermediate W Intermediate Intermediate RB Data Out (Q Valid) D Intermediate W R High Z B D Intermediate Key Input Command Code Notes: 1. The Hold command (CKE Low) is not shown because it prevents any state change. ƒ Transition Current State (n) Transition Next State (n+2) Intermediate State (N+1) 2. W, R, B, and D represent input command codes as indicated in the Truth Tables. n n+1 n+2 n+3 Clock (CK) Command ƒ Current State ƒ Intermediate State ƒ Next State ƒ Current State and Next State Definition for Pipeline Mode Data I/O State Diagram Rev: 1.03 11/2004 9/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Flow Through Mode Data I/O State Diagram BW High Z (Data In) D R W RB Data Out (Q Valid) D W R High Z B D Key Input Command Code Notes: 1. The Hold command (CKE Low) is not shown because it prevents any state change. ƒ Transition Current State (n) Next State (n+1) n n+1 2. W, R, B, and D represent input command codes as indicated in the Truth Tables. n+2 n+3 Clock (CK) Command ƒ Current State ƒ Next State ƒ ƒ Current State and Next State Definition for: Pipeline and Flow through Read Write Control State Diagram Rev: 1.03 11/2004 10/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Burst Cycles Although NBT RAMs are designed to sustain 100% bus bandwidth by eliminating turnaround cycle when there is transition from read to write, multiple back-to-back reads or writes may also be performed. NBT SRAMs provide an on-chip burst address generator that can be utilized, if desired, to further simplify burst read or write implementations. The ADV control pin, when driven high, commands the SRAM to advance the internal address counter and use the counter generated address to read or write the SRAM. The starting address for the first cycle in a burst cycle series is loaded into the SRAM by driving the ADV pin low, into Load mode. Burst Order The burst address counter wraps around to its initial state after four addresses (the loaded address and three more) have been accessed. The burst sequence is determined by the state of the Linear Burst Order pin (LBO). When this pin is low, a linear burst sequence is selected. When the RAM is installed with the LBO pin tied high, Interleaved burst sequence is selected. See the tables below for details. Mode Pin Functions Mode Name Burst Order Control Output Register Control Power Down Control FLXDrive Output Impedance Control Pin Name LBO FT ZZ ZQ State L H L H or NC L or NC H L H or NC Function Linear Burst Interleaved Burst Flow Through Pipeline Active Standby, IDD = ISB High Drive (Low Impedance) Low Drive (High Impedance) Note: There is a pull-down device on the ZZ pin, so this input pin can be unconnected and the chip will operate in the default states as specified in the above tables. Burst Counter Sequences Linear Burst Sequence A[1:0] A[1:0] A[1:0] A[1:0] 1st address 2nd address 3rd address 4th address 00 01 10 11 01 10 11 00 10 11 00 01 11 00 01 10 Interleaved Burst Sequence A[1:0] A[1:0] A[1:0] A[1:0] 1st address 2nd address 3rd address 4th address 00 01 10 11 01 00 11 10 10 11 00 01 11 10 01 00 Note: The burst counter wraps to initial state on the 5th clock. Note: The burst counter wraps to initial state on the 5th clock. BPR 1999.05.18 Rev: 1.03 11/2004 11/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Sleep Mode During normal operation, ZZ must be pulled low, either by the user or by it’s internal pull down resistor. When ZZ is pulled high, the SRAM will enter a Power Sleep mode after 2 cycles. At this time, internal state of the SRAM is preserved. When ZZ returns to low, the SRAM operates normally after ZZ recovery time. Sleep mode is a low current, power-down mode in which the device is deselected and current is reduced to ISB2. The duration of Sleep mode is dictated by the length of time the ZZ is in a high state. After entering Sleep mode, all inputs except ZZ become disabled and all outputs go to High-Z The ZZ pin is an asynchronous, active high input that causes the device to enter Sleep mode. When the ZZ pin is driven high, ISB2 is guaranteed after the time tZZI is met. Because ZZ is an asynchronous input, pending operations or operations in progress may not be properly completed if ZZ is asserted. Therefore, Sleep mode must not be initiated until valid pending operations are completed. Similarly, when exiting Sleep mode during tZZR, only a Deselect or Read commands may be applied while the SRAM is recovering from Sleep mode. Sleep Mode Timing Diagram tKH tKC CK tZZR tZZS ZZ tZZH tKL Designing for Compatibility The GSI NBT SRAMs offer users a configurable selection between Flow Through mode and Pipelinemode via the FT signal found on Pin 14. Not all vendors offer this option, however most mark Pin 14 as VDD or VDDQ on pipelined parts and VSS on flow through parts. GSI NBT SRAMs are fully compatible with these sockets. Pin 66, a No Connect (NC) on GSI’s GS8160Z18/36 NBT SRAM, the Parity Error open drain output on GSI’s GS881Z18/36A NBT SRAM, is often marked as a power pin on other vendor’s NBT compatible SRAMs. Specifically, it is marked VDD or VDDQ on pipelined parts and VSS on flow through parts. Users of GSI NBT devices who are not actually using the ByteSafe™ parity feature may want to design the board site for the RAM with Pin 66 tied high through a 1k ohm resistor in Pipeline mode applications or tied low in Flow Through mode applications in order to keep the option to use non-configurable devices open. Rev: 1.03 11/2004 12/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Absolute Maximum Ratings (All voltages reference to VSS) Symbol VDD VDDQ VI/O VIN IIN IOUT PD TSTG TBIAS Description Voltage on VDD Pins Voltage in VDDQ Pins Voltage on I/O Pins Voltage on Other Input Pins Input Current on Any Pin Output Current on Any I/O Pin Package Power Dissipation Storage Temperature Temperature Under Bias Value –0.5 to 4.6 –0.5 to 4.6 –0.5 to VDDQ +0.5 (≤ 4.6 V max.) –0.5 to VDD +0.5 (≤ 4.6 V max.) +/–20 +/–20 1.5 –55 to 125 –55 to 125 Unit V V V V mA mA W o o C C Note: Permanent damage to the device may occur if the Absolute Maximum Ratings are exceeded. Operation should be restricted to Recommended Operating Conditions. Exposure to conditions exceeding the Absolute Maximum Ratings, for an extended period of time, may affect reliability of this component. Power Supply Voltage Ranges Parameter 3.3 V Supply Voltage 2.5 V Supply Voltage 3.3 V VDDQ I/O Supply Voltage 2.5 V VDDQ I/O Supply Voltage Symbol VDD3 VDD2 VDDQ3 VDDQ2 Min. 3.0 2.3 3.0 2.3 Typ. 3.3 2.5 3.3 2.5 Max. 3.6 2.7 3.6 2.7 Unit V V V V Notes Notes: 1. The part numbers of Industrial Temperature Range versions end the character “I”. Unless otherwise noted, all performance specifications quoted are evaluated for worst case in the temperature range marked on the device. 2. Input Under/overshoot voltage must be –2 V > Vi < VDDn+2 V not to exceed 4.6 V maximum, with a pulse width not to exceed 20% tKC. Rev: 1.03 11/2004 13/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 VDDQ3 Range Logic Levels Parameter VDD Input High Voltage VDD Input Low Voltage VDDQ I/O Input High Voltage VDDQ I/O Input Low Voltage Symbol VIH VIL VIHQ VILQ Min. 2.0 –0.3 2.0 –0.3 Typ. — — — — Max. VDD + 0.3 0.8 VDDQ + 0.3 0.8 Unit V V V V Notes 1 1 1,3 1,3 Notes: 1. The part numbers of Industrial Temperature Range versions end the character “I”. Unless otherwise noted, all performance specifications quoted are evaluated for worst case in the temperature range marked on the device. 2. Input Under/overshoot voltage must be –2 V > Vi < VDDn+2 V not to exceed 4.6 V maximum, with a pulse width not to exceed 20% tKC. 3. VIHQ (max) is voltage on VDDQ pins plus 0.3 V. VDDQ2 Range Logic Levels Parameter VDD Input High Voltage VDD Input Low Voltage VDDQ I/O Input High Voltage VDDQ I/O Input Low Voltage Symbol VIH VIL VIHQ VILQ Min. 0.6*VDD –0.3 0.6*VDD –0.3 Typ. — — — — Max. VDD + 0.3 0.3*VDD VDDQ + 0.3 0.3*VDD Unit V V V V Notes 1 1 1,3 1,3 Notes: 1. The part numbers of Industrial Temperature Range versions end the character “I”. Unless otherwise noted, all performance specifications quoted are evaluated for worst case in the temperature range marked on the device. 2. Input Under/overshoot voltage must be –2 V > Vi < VDDn+2 V not to exceed 4.6 V maximum, with a pulse width not to exceed 20% tKC. 3. VIHQ (max) is voltage on VDDQ pins plus 0.3 V. Recommended Operating Temperatures Parameter Ambient Temperature (Commercial Range Versions) Ambient Temperature (Industrial Range Versions) Symbol TA TA Min. 0 –40 Typ. 25 25 Max. 70 85 Unit °C °C Notes 2 2 Notes: 1. The part numbers of Industrial Temperature Range versions end the character “I”. Unless otherwise noted, all performance specifications quoted are evaluated for worst case in the temperature range marked on the device. 2. Input Under/overshoot voltage must be –2 V > Vi < VDDn+2 V not to exceed 4.6 V maximum, with a pulse width not to exceed 20% tKC. Rev: 1.03 11/2004 14/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Undershoot Measurement and Timing VIH VDD + 2.0 V VSS 50% VSS – 2.0 V 50% tKC VIL 50% VDD Overshoot Measurement and Timing 50% tKC Capacitance (TA = 25oC, f = 1 MHZ, VDD = 2.5 V) Parameter Input Capacitance Input/Output Capacitance Note: These parameters are sample tested. Symbol CIN CI/O Test conditions VIN = 0 V VOUT = 0 V Typ. 4 6 Max. 5 7 Unit pF pF AC Test Conditions Parameter Input high level Input low level Input slew rate Input reference level Output reference level Output load Conditions VDD – 0.2 V 0.2 V 1 V/ns VDD/2 VDDQ/2 Fig. 1 Notes: 1. Include scope and jig capacitance. 2. Test conditions as specified with output loading as shown in Fig. 1 unless otherwise noted. 3. Device is deselected as defined by the Truth Table. Output Load 1 DQ 50Ω VDDQ/2 * Distributed Test Jig Capacitance 30pF* Rev: 1.03 11/2004 15/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 DC Electrical Characteristics Parameter Input Leakage Current (except mode pins) ZZ Input Current FT Input Current Output Leakage Current Output High Voltage Output High Voltage Output Low Voltage Symbol IIL IIN1 IIN2 IOL VOH2 VOH3 VOL Test Conditions VIN = 0 to VDD VDD ≥ VIN ≥ VIH 0 V ≤ VIN ≤ VIH VDD ≥ VIN ≥ VIL 0 V ≤ VIN ≤ VIL Output Disable, VOUT = 0 to VDD IOH = –8 mA, VDDQ = 2.375 V IOH = –8 mA, VDDQ = 3.135 V IOL = 8 mA Min –1 uA –1 uA –1 uA –100 uA –1 uA –1 uA 1.7 V 2.4 V — Max 1 uA 1 uA 100 uA 1 uA 1 uA 1 uA — — 0.4 V Rev: 1.03 11/2004 16/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. Operating Currents -250 Mode Symbol 0 to 70°C Unit 290 40 180 20 260 20 165 10 290 30 180 20 260 15 165 10 20 20 85 60 90 65 30 20 80 60 30 20 30 30 85 65 175 10 155 10 165 10 150 10 20 20 75 50 270 15 235 15 245 15 215 15 225 15 160 10 30 30 80 55 190 20 170 20 180 20 165 15 175 15 155 15 185 10 140 10 20 20 64 50 300 30 265 30 275 30 240 25 250 25 205 20 215 20 165 15 195 10 150 10 30 30 70 55 175 10 155 10 165 10 150 10 160 10 140 10 150 10 135 10 190 20 150 15 170 10 135 10 20 20 60 50 270 20 235 20 245 20 215 15 225 15 185 15 195 15 170 15 180 15 145 10 200 20 160 15 180 10 145 10 30 30 65 55 190 20 170 20 180 20 165 15 175 15 155 15 165 15 150 15 160 15 140 10 155 10 125 10 170 15 140 10 155 10 125 10 20 20 50 45 300 40 265 35 275 35 240 30 250 30 205 25 215 25 190 25 200 25 170 20 180 20 150 10 165 10 135 10 180 15 150 10 165 10 135 10 30 30 55 50 mA mA mA mA mA mA mA mA mA mA mA mA -225 0 to 70°C –40 to 85°C 0 to 70°C –40 to 85°C 0 to 70°C –40 to 85°C 0 to 70°C –40 to 85°C 0 to 70°C –40 to 85°C -200 -166 -150 -133 Rev: 1.03 11/2004 –40 to 85°C Pipeline (x36) Flow Through Pipeline (x18) Flow Through Pipeline (x36) Flow Through IDDQ IDD IDDQ IDD IDDQ ISB ISB IDD IDD Pipeline (x18) Flow Through Pipeline — Flow Through Pipeline — Flow Through IDD IDD IDDQ IDD IDDQ IDD IDDQ IDD IDDQ IDD IDDQ Parameter Test Conditions Operating Current 3.3 V Device Selected; All other inputs ≥VIH or ≤ VIL Output open 17/31 Operating Current 2.5 V Device Selected; All other inputs ≥VIH or ≤ VIL Output open Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. Standby Current ZZ ≥ VDD – 0.2 V Deselect Current Device Deselected; All other inputs ≥ VIH or ≤ VIL GS881Z18/36AT-250/225/200/166/150/133 © 2001, GSI Technology Notes: 1. IDD and IDDQ apply to any combination of VDD3, VDD2, VDDQ3, and VDDQ2 operation. 2. All parameters listed are worst case scenario. GS881Z18/36AT-250/225/200/166/150/133 AC Electrical Characteristics Parameter Clock Cycle Time Clock to Output Valid Pipeline Clock to Output Invalid Clock to Output in Low-Z Setup time Hold time Clock Cycle Time Clock to Output Valid Flow Through Clock to Output Invalid Clock to Output in Low-Z Setup time Hold time Clock HIGH Time Clock LOW Time Clock to Output in High-Z G to Output Valid G to output in Low-Z G to output in High-Z ZZ setup time ZZ hold time ZZ recovery Symbol tKC tKQ tKQX tLZ tS tH tKC tKQ tKQX tLZ1 tS tH tKH tKL tHZ1 tOE tOLZ1 tOHZ1 tZZS2 tZZH2 tZZR 1 -250 Min 4.0 — 1.5 1.5 1.2 0.2 5.5 — 3.0 3.0 1.5 0.5 1.3 1.5 1.5 — 0 — 5 1 20 Max — 2.5 — — — — — 5.5 — — — — — — 2.3 2.3 — 2.3 — — — -225 Min 4.4 — 1.5 1.5 1.3 0.3 6.0 — 3.0 3.0 1.5 0.5 1.3 1.5 1.5 — 0 — 5 1 20 Max — 2.7 — — — — — 6.0 — — — — — — 2.5 2.5 — 2.5 — — — -200 Min 5.0 — 1.5 1.5 1.4 0.4 6.5 — 3.0 3.0 1.5 0.5 1.3 1.5 1.5 — 0 — 5 1 20 Max — 3.0 — — — — — 6.5 — — — — — — 3.0 3.2 — 3.0 — — — -166 Min 6.0 — 1.5 1.5 1.5 0.5 7.0 — 3.0 3.0 1.5 0.5 1.3 1.5 1.5 — 0 — 5 1 20 Max — 3.4 — — — — — 7.0 — — — — — — 3.0 3.5 — 3.0 — — — -150 Min 6.7 — 1.5 1.5 1.5 0.5 7.5 — 3.0 3.0 1.5 0.5 1.5 1.7 1.5 — 0 — 5 1 20 Max — 3.8 — — — — — 7.5 — — — — — — 3.0 3.8 — 3.0 — — — -133 Min 7.5 — 1.5 1.5 1.5 0.5 8.5 — 3.0 3.0 1.5 0.5 1.7 2 1.5 — 0 — 5 1 20 Max — 4.0 — — — — — 8.5 — — — — — — 3.0 4.0 — 3.0 — — — Unit ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns Notes: 1. These parameters are sampled and are not 100% tested. 2. ZZ is an asynchronous signal. However, in order to be recognized on any given clock cycle, ZZ must meet the specified setup and hold times as specified above. Rev: 1.03 11/2004 18/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Pipeline Mode Timing Write A Read B Suspend tKH tKL Read C tKC Write D writeno-op Read E Deselect CK tH tS A A tH tS B C D E CKE tH tS E* tH tS ADV tH tS W tH tS tS tH Bn tH tS tLZ tKQ Q(B) Q(C) D(D) Q(E) tHZ tKQX DQ D(A) Rev: 1.03 11/2004 19/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Flow Through Mode Timing Write A Write B Write B+1 tKL tKH CK Read C tKC Cont Read D Write E Read F Write G tH tS CKE tH tS E tH tS ADV tH tS W tH tS Bn tH tS A0–An A B C D E F G tKQ tH tS DQ D(A) D(B) tKQ tLZ D(B+1) Q(C) tKQX tHZ Q(D) tLZ D(E) Q(F) tKQX D(G) tOLZ tOE tOHZ G *Note: E = High(False) if E1 = 1 or E2 = 0 or E3 = 1 JTAG Port Operation Overview The JTAG Port on this RAM operates in a manner that is compliant with IEEE Standard 1149.1-1990, a serial boundary scan interface standard (commonly referred to as JTAG). The JTAG Port input interface levels scale with VDD. The JTAG output drivers are powered by VDDQ. Disabling the JTAG Port It is possible to use this device without utilizing the JTAG port. The port is reset at power-up and will remain inactive unless clocked. TCK, TDI, and TMS are designed with internal pull-up circuits.To assure normal operation of the RAM with the JTAG Port unused, TCK, TDI, and TMS may be left floating or tied to either VDD or VSS. TDO should be left unconnected. Rev: 1.03 11/2004 20/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 JTAG Port Registers JTAG Pin Descriptions Pin TCK TMS Pin Name Test Clock Test Mode Select I/O In In Description Clocks all TAP events. All inputs are captured on the rising edge of TCK and all outputs propagate from the falling edge of TCK. The TMS input is sampled on the rising edge of TCK. This is the command input for the TAP controller state machine. An undriven TMS input will produce the same result as a logic one input level. The TDI input is sampled on the rising edge of TCK. This is the input side of the serial registers placed between TDI and TDO. The register placed between TDI and TDO is determined by the state of the TAP Controller state machine and the instruction that is currently loaded in the TAP Instruction Register (refer to the TAP Controller State Diagram). An undriven TDI pin will produce the same result as a logic one input level. TDI Test Data In In TDO Test Data Out Output that is active depending on the state of the TAP state machine. Output changes in Out response to the falling edge of TCK. This is the output side of the serial registers placed between TDI and TDO. Note: This device does not have a TRST (TAP Reset) pin. TRST is optional in IEEE 1149.1. The Test-Logic-Reset state is entered while TMS is held high for five rising edges of TCK. The TAP Controller is also reset automaticly at power-up. Overview The various JTAG registers, refered to as Test Access Port orTAP Registers, are selected (one at a time) via the sequences of 1s and 0s applied to TMS as TCK is strobed. Each of the TAP Registers is a serial shift register that captures serial input data on the rising edge of TCK and pushes serial data out on the next falling edge of TCK. When a register is selected, it is placed between the TDI and TDO pins. Instruction Register The Instruction Register holds the instructions that are executed by the TAP controller when it is moved into the Run, Test/Idle, or the various data register states. Instructions are 3 bits long. The Instruction Register can be loaded when it is placed between the TDI and TDO pins. The Instruction Register is automatically preloaded with the IDCODE instruction at power-up or whenever the controller is placed in Test-Logic-Reset state. Bypass Register The Bypass Register is a single bit register that can be placed between TDI and TDO. It allows serial test data to be passed through the RAM’s JTAG Port to another device in the scan chain with as little delay as possible. Boundary Scan Register The Boundary Scan Register is a collection of flip flops that can be preset by the logic level found on the RAM’s input or I/O pins. The flip flops are then daisy chained together so the levels found can be shifted serially out of the JTAG Port’s TDO pin. The Boundary Scan Register also includes a number of place holder flip flops (always set to a logic 1). The relationship between the device pins and the bits in the Boundary Scan Register is described in the Scan Order Table following. The Boundary Scan Register, under the control of the TAP Controller, is loaded with the contents of the RAMs I/O ring when the controller is in Capture-DR state and then is placed between the TDI and TDO pins when the controller is moved to Shift-DR state. SAMPLE-Z, SAMPLE/PRELOAD and EXTEST instructions can be used to activate the Boundary Scan Register. Rev: 1.03 11/2004 21/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 JTAG TAP Block Diagram · · · 108 · · · · · · · · 1 Boundary Scan Register 0 Bypass Register 210 0 Instruction Register TDI ID Code Register 31 30 29 TDO · ··· 210 Control Signals TMS TCK Test Access Port (TAP) Controller Identification (ID) Register The ID Register is a 32-bit register that is loaded with a device and vendor specific 32-bit code when the controller is put in Capture-DR state with the IDCODE command loaded in the Instruction Register. The code is loaded from a 32-bit on-chip ROM. It describes various attributes of the RAM as indicated below. The register is then placed between the TDI and TDO pins when the controller is moved into Shift-DR state. Bit 0 in the register is the LSB and the first to reach TDO when shifting begins. Rev: 1.03 11/2004 22/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Tap Controller Instruction Set ID Register Contents Die Revision Code Bit # x36 x18 GSI Technology JEDEC Vendor ID Code Presence Register 0 1 1 Not Used I/O Configuration 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 X X X X X X X X 0 0 0 0 0 0 X X 1 1 0 0 0 0 1 1 0 0 0 0 0 0 0 0 1 1 0 0 0 1 0 0 0 0 0 011011001 0 011011001 Overview There are two classes of instructions defined in the Standard 1149.1-1990; the standard (Public) instructions, and device specific (Private) instructions. Some Public instructions are mandatory for 1149.1 compliance. Optional Public instructions must be implemented in prescribed ways. The TAP on this device may be used to monitor all input and I/O pads, and can be used to load address, data or control signals into the RAM or to preload the I/O buffers. When the TAP controller is placed in Capture-IR state the two least significant bits of the instruction register are loaded with 01. When the controller is moved to the Shift-IR state the Instruction Register is placed between TDI and TDO. In this state the desired instruction is serially loaded through the TDI input (while the previous contents are shifted out at TDO). For all instructions, the TAP executes newly loaded instructions only when the controller is moved to Update-IR state. The TAP instruction set for this device is listed in the following table. Rev: 1.03 11/2004 23/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 JTAG Tap Controller State Diagram 1 Test Logic Reset 0 1 1 1 0 Run Test Idle Select DR 0 1 Select IR 0 1 Capture DR 0 Capture IR 0 Shift DR 1 1 0 1 Shift IR 1 0 Exit1 DR 0 Exit1 IR 0 Pause DR 1 0 Pause IR 1 0 Exit2 DR 1 0 Exit2 IR 1 0 Update DR 1 0 Update IR 1 0 Instruction Descriptions BYPASS When the BYPASS instruction is loaded in the Instruction Register the Bypass Register is placed between TDI and TDO. This occurs when the TAP controller is moved to the Shift-DR state. This allows the board level scan path to be shortened to facilitate testing of other devices in the scan path. SAMPLE/PRELOAD SAMPLE/PRELOAD is a Standard 1149.1 mandatory public instruction. When the SAMPLE / PRELOAD instruction is loaded in the Instruction Register, moving the TAP controller into the Capture-DR state loads the data in the RAMs input and I/O buffers into the Boundary Scan Register. Boundary Scan Register locations are not associated with an input or I/O pin, and are loaded with the default state identified in the Boundary Scan Chain table at the end of this section of the datasheet. Because the RAM clock is independent from the TAP Clock (TCK) it is possible for the TAP to attempt to capture the I/O ring contents while the input buffers are in transition (i.e. in a metastable state). Although allowing the TAP to sample metastable inputs will not harm the device, repeatable results cannot be expected. RAM input signals must be stabilized for long enough to meet the TAPs input data capture set-up plus hold time (tTS plus tTH). The RAMs clock inputs need not be paused for any other TAP operation except capturing the I/O ring contents into the Boundary Scan Register. Moving the controller to Shift-DR state then places the boundary scan register between the TDI and TDO pins. EXTEST EXTEST is an IEEE 1149.1 mandatory public instruction. It is to be executed whenever the instruction register is loaded with all logic 0s. The EXTEST command does not block or override the RAM’s input pins; therefore, the RAM’s internal state is still determined by its input pins. Rev: 1.03 11/2004 24/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Typically, the Boundary Scan Register is loaded with the desired pattern of data with the SAMPLE/PRELOAD command. Then the EXTEST command is used to output the Boundary Scan Register’s contents, in parallel, on the RAM’s data output drivers on the falling edge of TCK when the controller is in the Update-IR state. Alternately, the Boundary Scan Register may be loaded in parallel using the EXTEST command. When the EXTEST instruction is selected, the sate of all the RAM’s input and I/O pins, as well as the default values at Scan Register locations not associated with a pin, are transferred in parallel into the Boundary Scan Register on the rising edge of TCK in the Capture-DR state, the RAM’s output pins drive out the value of the Boundary Scan Register location with which each output pin is associated. IDCODE The IDCODE instruction causes the ID ROM to be loaded into the ID register when the controller is in Capture-DR mode and places the ID register between the TDI and TDO pins in Shift-DR mode. The IDCODE instruction is the default instruction loaded in at power up and any time the controller is placed in the Test-Logic-Reset state. SAMPLE-Z If the SAMPLE-Z instruction is loaded in the instruction register, all RAM outputs are forced to an inactive drive state (highZ) and the Boundary Scan Register is connected between TDI and TDO when the TAP controller is moved to the Shift-DR state. RFU These instructions are Reserved for Future Use. In this device they replicate the BYPASS instruction. Rev: 1.03 11/2004 25/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 JTAG Port AC Test Conditions Parameter Input high level Input low level Input slew rate Input reference level Output reference level Conditions VDD – 0.2 V 0.2 V 1 V/ns VDDQ/2 VDDQ/2 DQ JTAG Port AC Test Load 50Ω VDDQ/2 * Distributed Test Jig Capacitance 30pF* Notes: 1. Include scope and jig capacitance. 2. Test conditions as shown unless otherwise noted. JTAG TAP Instruction Set Summary Instruction EXTEST IDCODE SAMPLE-Z RFU SAMPLE/ PRELOAD GSI RFU Code 000 001 010 011 100 101 110 Description Places the Boundary Scan Register between TDI and TDO. Preloads ID Register and places it between TDI and TDO. Captures I/O ring contents. Places the Boundary Scan Register between TDI and TDO. Forces all RAM output drivers to High-Z. Do not use this instruction; Reserved for Future Use. Replicates BYPASS instruction. Places Bypass Register between TDI and TDO. Captures I/O ring contents. Places the Boundary Scan Register between TDI and TDO. GSI private instruction. Do not use this instruction; Reserved for Future Use. Replicates BYPASS instruction. Places Bypass Register between TDI and TDO. Notes 1 1, 2 1 1 1 1 1 1 BYPASS 111 Places Bypass Register between TDI and TDO. Notes: 1. Instruction codes expressed in binary, MSB on left, LSB on right. 2. Default instruction automatically loaded at power-up and in test-logic-reset state. Rev: 1.03 11/2004 26/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 JTAG Port Recommended Operating Conditions and DC Characteristics Parameter 3.3 V Test Port Input High Voltage 3.3 V Test Port Input Low Voltage 2.5 V Test Port Input High Voltage 2.5 V Test Port Input Low Voltage TMS, TCK and TDI Input Leakage Current TMS, TCK and TDI Input Leakage Current TDO Output Leakage Current Test Port Output High Voltage Test Port Output Low Voltage Test Port Output CMOS High Test Port Output CMOS Low Symbol VIHJ3 VILJ3 VIHJ VILJ IINHJ IINLJ IOLJ VOHJ VOLJ VOHJC VOLJC Min. 2.0 –0.3 0.6 * VDD –0.3 –300 –1 –1 1.7 — VDDQ – 100 mV — Max. VDD3 +0.3 0.8 VDD2 +0.3 0.3 * VDD 1 100 1 — 0.4 — 100 mV Unit Notes V V V V uA uA uA V V V V 1 1 1 1 2 3 4 5, 6 5, 7 5, 8 5, 9 Notes: 1. Input Under/overshoot voltage must be –2 V > Vi < VDDn +2 V not to exceed 4.6 V maximum, with a pulse width not to exceed 20% tTKC. 2. VILJ ≤ VIN ≤ VDDn 3. 0 V ≤ VIN ≤ VILJn 4. Output Disable, VOUT = 0 to VDDn 5. The TDO output driver is served by the VDDQ supply. 6. IOHJ = –4 mA 7. IOLJ = + 4 mA 8. IOHJC = –100 uA 9. IOHJC = +100 uA JTAG Port Timing Diagram tTKC TCK tTH tTS TDI tTH tTS TMS tTKQ TDO tTH tTS Parallel SRAM input tTKH tTKL Rev: 1.03 11/2004 27/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 JTAG Port AC Electrical Characteristics Parameter TCK Cycle Time TCK Low to TDO Valid TCK High Pulse Width TCK Low Pulse Width TDI & TMS Set Up Time TDI & TMS Hold Time Symbol tTKC tTKQ tTKH tTKL tTS tTH Min 50 — 20 20 10 10 Max — 20 — — — — Unit ns ns ns ns ns ns Boundary Scan (BSDL Files) For information regarding the Boundary Scan Chain, or to obtain BSDL files for this part, please contact our Applications Engineering Department at: apps@gsitechnology.com. Rev: 1.03 11/2004 28/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 TQFP Package Drawing (Package T) L Symbol A1 A2 b c D D1 E E1 e L L1 Y θ θ c Pin 1 Description Standoff Body Thickness Lead Width Lead Thickness Terminal Dimension Package Body Terminal Dimension Package Body Lead Pitch Foot Length Lead Length Coplanarity Lead Angle Min. Nom. Max 0.05 1.35 0.20 0.09 21.9 19.9 15.9 13.9 — 0.45 — 0.10 1.40 0.30 — 22.0 20.0 16.0 14.0 0.65 0.60 1.00 0.15 1.45 0.40 0.20 22.1 20.1 16.1 14.1 — 0.75 — 0.10 L1 e b D D1 A1 Y A2 E1 E 0° — 7° Notes: 1. All dimensions are in millimeters (mm). 2. Package width and length do not include mold protrusion. Rev: 1.03 11/2004 29/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 Ordering Information—GSI NBT Synchronous SRAM Org 512K x 18 512K x 18 512K x 18 512K x 18 512K x 18 512K x 18 256K x 36 256K x 36 256K x 36 256K x 36 256K x 36 256K x 36 512K x 18 512K x 18 512K x 18 512K x 18 512K x 18 512K x 18 256K x 36 256K x 36 256K x 36 256K x 36 256K x 36 Part Number1 GS881Z18AT-250 GS881Z18AT-225 GS881Z18AT-200 GS881Z18AT-166 GS881Z18AT-150 GS881Z18AT-133 GS881Z36AT-250 GS881Z36AT-225 GS881Z36AT-200 GS881Z36AT-166 GS881Z36AT-150 GS881Z36AT-133 GS881Z18AT-250I GS881Z18AT-225I GS881Z18AT-200I GS881Z18AT-166I GS881Z18AT-150I GS881Z18AT-133I GS881Z36AT-250I GS881Z36AT-225I GS881Z36AT-200I GS881Z36AT-166I GS881Z36AT-150I Type NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through NBT Pipeline/Flow Through Package TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP TQFP Speed2 (MHz/ns) 250/5.5 225/6 200/6.5 166/7 150/7.5 133/8.5 250/5.5 225/6 200/6.5 166/7 150/7.5 133/8.5 250/5.5 225/6 200/6.5 166/7 150/7.5 133/8.5 250/5.5 225/6 200/6.5 166/7 150/7.5 TA3 C C C C C C C C C C C C I I I I I I I I I I I Status 256K x 36 GS881Z36AT-133I NBT Pipeline/Flow Through TQFP 133/8.5 I Notes: 1. Customers requiring delivery in Tape and Reel should add the character “T” to the end of the part number. Example: GS881Z36A-150IT. 2. The speed column indicates the cycle frequency (MHz) of the device in Pipeline mode and the latency (ns) in Flow Through mode. Each device is Pipeline/Flow through mode-selectable by the user . 3. TA = C = Commercial Temperature Range. TA = I = Industrial Temperature Range. 4. GSI offers other versions this type of device in many different configurations and with a variety of different features, only some of which are covered in this data sheet. See the GSI Technology web site (www.gsitechnology.com) for a complete listing of current offerings Rev: 1.03 11/2004 30/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com. GS881Z18/36AT-250/225/200/166/150/133 9Mb Sync SRAM Datasheet Revision History DS/DateRev. Code: Old; New 881Z18A_r1 Types of Changes Format or Content Page;Revisions;Reason • Creation of new datasheet • Updated AC Characteristics table • Updated FT power numbers • Updated Mb references from 8Mb to 9Mb • Removed ByteSafe references • Changed DP pin to NC • Updated ZZ recovery time diagram • Updated AC Test Conditions table and removed Output Load 2 diagram • Removed Preliminary banner • Removed pin locations from pin description table • Removed BSR table • Updated format • Updated mechanical drawings • Updated timing diagrams 881Z18A_r1; 881Z18A_r1_01 Content 881Z18A_r1_01; 881Z18A_r1_02 881Z18A_r1_02; 881Z18A_r1_03 Content Format/Content Rev: 1.03 11/2004 31/31 © 2001, GSI Technology Specifications cited are subject to change without notice. For latest documentation see http://www.gsitechnology.com.
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