K9F5608U0A-YCB0,K9F5608U0A-YIB0 FLASH MEMORY Document Title 32M x 8 Bit NAND Flash Memory Revision History Revision No. History Draft Date Remark Initial issue. July 17th 2000 Advanced Information 0.1 1. Support copy-back program - The copy-back program is configured to quickly and efficiently rewrite data stored in one page within the array to another page within the same array without utilizing an external memory. Since the time-con suming sequently-reading and its re-loading cycles are removed, the system performance is improved. The benefit is especially obvious when a portion of a block is updated so that the rest of the block also need to be copied to the newly assigned free block. Oct. 4th 2000 Preliminary 0.2 Nov. 20th 2000 1. Explain how pointer operation works in detail. 2. For partial page programming into the copied page - Once the copy-back Program is finished, any additional partial page programming into the copied pages is prohibited before erase. 3. Renamed GND input (pin # 6) on behalf of SE (pin # 6) - The SE input controls the access of the spare area. When SE is high, the spare area is not accessible for reading or programming. SE is rec ommended to be coupled to GND or Vcc and should not be toggled during reading or programming. => Connect this input pin to GND or set to static low state unless the sequential read mode excluding spare area is used. 4. Updated operation for tRST timing - If reset command(FFh) is written at Ready state, the device goes into Busy for maximum 5us. 0.3 1. In addition, explain WE function in pin description - The WE must be held high when outputs are activated. Mar. 2th 2001 0.4 1.Powerup sequence is added : Recovery time of minimum 1µs is required before internal circuit gets ready for any command sequences Jul. 22th 2001 ≈ 0.0 ~ 2.5V Preliminary ~ 2.5V High ≈ VCC WP 1µ ≈ WE 2. AC parameter tCLR(CLE to RE Delay, min 50ns) is added. 3. AC parameter tAR1 value : 100ns --> 20ns Note : For more detailed features and specifications including FAQ, please refer to Samsung’s Flash web site. http://www.intl.samsungsemi.com/Memory/Flash/datasheets.html The attached datasheets are prepared and approved by SAMSUNG Electronics. SAMSUNG Electronics CO., LTD. reserve the right to change the specifications. SAMSUNG Electronics will evaluate and reply to your requests and questions about device. If you have any questions, please contact the SAMSUNG branch office near you. 1 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 32M x 8 Bit NAND Flash Memory FEATURES GENERAL DESCRIPTION • Voltage Supply : 2.7V~3.6V • Organization - Memory Cell Array : (32M + 1024K)bit x 8bit - Data Register : (512 + 16)bit x8bit • Automatic Program and Erase - Page Program : (512 + 16)Byte - Block Erase : (16K + 512)Byte • 528-Byte Page Read Operation - Random Access : 10µs(Max.) - Serial Page Access : 50ns(Min.) • Fast Write Cycle Time - Program time : 200µs(Typ.) - Block Erase Time : 2ms(Typ.) • Command/Address/Data Multiplexed I/O Port • Hardware Data Protection - Program/Erase Lockout During Power Transitions • Reliable CMOS Floating-Gate Technology - Endurance : 100K Program/Erase Cycles - Data Retention : 10 Years • Command Register Operation • Intelligent Copy-Back • Package : - K9F5608U0A-YCB0/YIB0 : 48 - Pin TSOP I (12 x 20 / 0.5 mm pitch) The K9F5608U0A are a 32M(33,554,432)x8bit NAND Flash Memory with a spare 1,024K(1,048,576)x8bit. Its NAND cell provides the most cost-effective solution for the solid state mass storage market. A program operation programs the 528byte page in typical 200µs and an erase operation can be performed in typical 2ms on a 16K-byte block. Data in the page can be read out at 50ns cycle time per byte. The I/O pins serve as the ports for address and data input/output as well as command inputs. The on-chip write controller automates all program and erase functions including pulse repetition, where required, and internal verification and margining of data. Even the write-intensive systems can take advantage of the K9F5608U0A′s extended reliability of 100K program/erase cycles by providing ECC(Error Correcting Code) with real time mapping-out algorithm. The K9F5608U0A-YCB0/YIB0 is an optimum solution for large nonvolatile storage applications such as solid state file storage and other portable applications requiring non-volatility. PIN CONFIGURATION PIN DESCRIPTION K9F5608U0A-YCB0/YIB0 N.C N.C N.C N.C N.C GND R/B RE CE N.C N.C Vcc Vss N.C N.C CLE ALE WE WP N.C N.C N.C N.C N.C 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 48 47 46 45 44 43 42 41 40 39 38 37 36 35 34 33 32 31 30 29 28 27 26 25 N.C N.C N.C N.C I/O7 I/O6 I/O5 I/O4 N.C N.C N.C Vcc Vss N.C N.C N.C I/O3 I/O2 I/O1 I/O0 N.C N.C N.C N.C Pin Name I/O0 ~ I/O7 CLE Command Latch Enable ALE Address Latch Enable CE Chip Enable RE Read Enable WE Write Enable WP Write Protect GND GND input for enabling spare area R/B Ready/Busy output VCC Power VSS Ground N.C No Connection NOTE : Connect all VCC and VSS pins of each device to common power supply outputs. Do not leave VCC or VSS disconnected. 2 Pin Function Data Input/Outputs FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 Figure 1. FUNCTIONAL BLOCK DIAGRAM VCC VSS A9 - A24 X-Buffers Latches & Decoders A0 - A 7 Y-Buffers Latches & Decoders 256M + 8M Bit NAND Flash ARRAY (512 + 16)Byte x 65536 Page Register & S/A A8 Y-Gating Command Command Register CE RE WE VCC VSS I/O Buffers & Latches Control Logic & High Voltage Generator Output Driver Global Buffers I/0 0 I/0 7 CLE ALE WP Figure 2. ARRAY ORGANIZATION 1 Block =32 Pages = (16K + 512) Byte 64K Pages (=2,048 Blocks) 1st half Page Register 2nd half Page Register (=256 Bytes) (=256 Bytes) 1 Page = 528 Byte 1 Block = 528 Byte x 32 Pages = (16K + 512) Byte 1 Device = 528Bytes x 32Pages x 2048 Blocks = 264 Mbits 8 bit 512Byte 16 Byte I/O 0 ~ I/O 7 Page Register 512 Byte 1st Cycle 16 Byte I/O 0 I/O 1 I/O 2 I/O 3 I/O 4 I/O 5 I/O 6 I/O 7 A0 A1 A2 A3 A4 A5 A6 A7 2nd Cycle A9 A10 A11 A12 A13 A14 A15 A16 3rd Cycle A17 A18 A19 A20 A21 A22 A23 A24 NOTE : Column Address : Starting Address of the Register. 00h Command(Read) : Defines the starting address of the 1st half of the register. 01h Command(Read) : Defines the starting address of the 2nd half of the register. * A8 is set to "Low" or "High" by the 00h or 01h Command. * The device ignores any additional input of address cycles than reguired. 3 Column Address Row Address (Page Address) K9F5608U0A-YCB0,K9F5608U0A-YIB0 FLASH MEMORY PRODUCT INTRODUCTION The K9F5608U0A is a 264Mbit(276,824,064 bit) memory organized as 65,536 rows(pages) by 528 columns. Spare sixteen columns are located from column address of 512 to 527. A 528-byte data register is connected to memory cell arrays accommodating data transfer between the I/O buffers and memory during page read and page program operations. The memory array is made up of 16 cells that are serially connected to form a NAND structure. Each of the 16 cells resides in a different page. A block consists of the 32 pages formed by two NAND structures, totaling 8448 NAND structures of 16 cells. The array organization is shown in Figure 2. The program and read operations are executed on a page basis, while the erase operation is executed on a block basis. The memory array consists of 2048 separately erasable 16K-byte blocks. It indicates that the bit by bit erase operation is prohibited on the K9F5608U0A. The K9F5608U0A has addresses multiplexed into 8 I/O′s. This scheme dramatically reduces pin counts and allows systems upgrades to future densities by maintaining consistency in system board design. Command, address and data are all written through I/O′s by bringing WE to low while CE is low. Data is latched on the rising edge of WE. Command Latch Enable(CLE) and Address Latch Enable(ALE) are used to multiplex command and address respectively, via the I/O pins. All commands require one bus cycle except for Block Erase command which requires two cycles: one cycle for erase-setup and another for erase-execution after block address loading. The 32M byte physical space requires 25 addresses, thereby requiring three cycles for byte-level addressing: column address, low row address and high row address, in that order. Page Read and Page Program need the same three address cycles following the required command input. In Block Erase operation, however, only the two row address cycles are used. Device operations are selected by writing specific commands into the command register. Table 1 defines the specific commands of the K9F5608U0A. Table 1. COMMAND SETS Function 1st. Cycle 2nd. Cycle Read 1 00h/01h Read 2 50h(2) - Read ID 90h - Reset FFh - Page Program 80h 10h Copy-Back Program 00h 8Ah Block Erase 60h D0h Read Status 70h - Acceptable Command during Busy - (1) NOTE : 1. The 00h command defines starting address of the 1st half of registers. The 01h command defines starting address of the 2nd half of registers. After data access on the 2nd half of register by the 01h command, the status pointer is automatically moved to the 1st half register(00h) on the next cycle. 2. The 50h command is valid only when the GND input(pin # 6) is low level. Caution : Any undefined command inputs are prohibited except for above command set of Table 1. 4 O O K9F5608U0A-YCB0,K9F5608U0A-YIB0 FLASH MEMORY PIN DESCRIPTION Command Latch Enable(CLE) The CLE input controls the activating path for commands sent to the command register. When active high, commands are latched into the command register through the I/O ports on the rising edge of the WE signal. Address Latch Enable(ALE) The ALE input controls the activating path for address to the internal address registers. Addresses are latched on the rising edge of WE with ALE high. Chip Enable(CE) The CE input is the device selection control. When CE goes high during a read operation the device is returned to standby mode. However, when the device is in the Busy state during program or erase, CE high is ignored, and does not return the device to standby mode. Write Enable(WE) The WE input controls writes to the I/O port. Commands, address and data are latched on the rising edge of the WE pulse. The WE must be held high when outputs are activated. Read Enable(RE) The RE input is the serial data-out control, and when active drives the data onto the I/O bus. Data is valid tREA after the falling edge of RE which also increments the internal column address counter by one. GND (Pin # 6) Connect this input pin to GND or set to static low state unless the sequential read mode excluding spare area is used. I/O Port : I/O 0 ~ I/O 7 The I/O pins are used to input command, address and data, and to output data during read operations. The I/O pins float to high-z when the chip is deselected or when the outputs are disabled. Write Protect(WP) The WP pin provides inadvertent write/erase protection during power transitions. The internal high voltage generator is reset when the WP pin is active low. Ready/Busy(R/B) The R/B output indicates the status of the device operation. When low, it indicates that a program, erase or random read operation is in process and returns to high state upon completion. It is an open drain output and does not float to high-z condition when the chip is deselected or when outputs are disabled. 5 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 ABSOLUTE MAXIMUM RATINGS Parameter Voltage on any pin relative to VSS Temperature Under Bias K9F5608U0A-YCB0 Symbol Rating VIN -0.6 to + 4.6 VCC -0.6 to + 4.6 K9F5608U0A-YCB0 V -10 to +125 TBIAS K9F5608U0A-YIB0 Storage Temperature Unit °C -40 to +125 TSTG °C -65 to +150 K9F5608U0A-YIB0 NOTE : 1. Minimum DC voltage is -0.6V on input/output pins. During transitions, this level may undershoot to -2.0V for periods <30ns. Maximum DC voltage on input/output pins is VCC,+0.3V which, during transitions, may overshoot to VCC+2.0V for periods <20ns. 2. Permanent device damage may occur if ABSOLUTE MAXIMUM RATINGS are exceeded. Functional operation should be restricted to the conditions as detailed in the operational sections of this data sheet. Exposure to absolute maximum rating conditions for extended periods may affect reliability. RECOMMENDED OPERATING CONDITIONS (Voltage reference to GND, K9F5608U0A-YCB0 :TA=0 to 70°C, K9F5608U0A-YIB0:TA=-40 to 85°C) Symbol Min Typ. Max Unit Supply Voltage Parameter VCC 2.7 3.3 3.6 V Supply Voltage VSS 0 0 0 V DC AND OPERATING CHARACTERISTICS(Recommended operating conditions otherwise noted.) Parameter Operating Current Symbol Sequential Read ICC1 Program ICC2 Erase ICC3 Stand-by Current(TTL) ISB1 Stand-by Current(CMOS) ISB2 Test Conditions Min Typ Max - 10 20 - - 10 20 - - 10 20 - - 1 - 10 50 tRC=50ns, CE=VIL, IOUT=0mA CE=VIH, WP=GND input (Pin #6) = 0V/VCC CE=VCC-0.2, WP=GND input (Pin #6) = 0V/VCC Input Leakage Current ILI VIN=0 to 3.6V - - ±10 Output Leakage Current ILO VOUT=0 to 3.6V - - ±10 Input High Voltage VIH - 2.0 - VCC+0.3 Input Low Voltage, All inputs VIL - -0.3 - 0.8 Output High Voltage Level VOH IOH=-400µA 2.4 - - Output Low Voltage Level VOL IOL=2.1mA - - 0.4 Output Low Current(R/B) IOL(R/B) VOL=0.4V 8 10 - 6 Unit mA µA V mA FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 VALID BLOCK Parameter Valid Block Number Symbol Min Typ. Max Unit NVB 2013 - 2048 Blocks NOTE : 1. The K9F5608U0A may include invalid blocks when first shipped. Additional invalid blocks may develop while being used. The number of valid blocks is presented with both cases of invalid blocks considered. Invalid blocks are defined as blocks that contain one or more bad bits. Do not erase or program factory-marked bad blocks. Refer to the attached technical notes for a appropriate management of invalid blocks. 2. The 1st block, which is placed on 00h block address, is fully guaranteed to be a valid block, does not require Error Correction. AC TEST CONDITION (K9F5608U0A-YCB0 :TA=0 to 70°C, K9F5608U0A-YIB0:TA=-40 to 85°C, VCC=2.7V~3.6V unless otherwise) Parameter Value Input Pulse Levels 0.4V to 2.4V Input Rise and Fall Times 5ns Input and Output Timing Levels 1.5V Output Load (3.0V +/-10%) 1 TTL GATE and CL=50pF Output Load (3.3V +/-10%) 1 TTL GATE and CL=100pF CAPACITANCE(TA=25°C, VCC=3.3V, f=1.0MHz) Item Symbol Test Condition Min Max Unit Input/Output Capacitance CI/O VIL=0V - 10 pF Input Capacitance CIN VIN=0V - 10 pF NOTE : Capacitance is periodically sampled and not 100% tested. MODE SELECTION CLE ALE CE RE GND WP H L L WE H X X Mode L H L H X X Address Input(3clock) H L L H X H Command Input L H L H X H L L L H L L L H L L L H X X X X Read Mode Write Mode Command Input Address Input(3clock) (3) L/H H Data Input L/H(3) X Sequential Read & Data Output H (3) L/H X During Read(Busy) X L/H(3) H During Program(Busy) X X X X X X H During Erase(Busy) X X(1) X X X X L Write Protect X X H X X 0V/VCC(2) 0V/VCC(2) Stand-by NOTE : 1. X can be VIL or VIH. 2. WP should be biased to CMOS high or CMOS low for standby. 3. When GND input is high, spare area is deselected. Program/Erase Characteristics Parameter Program Time Number of Partial Program Cycles in the Same Page Block Erase Time Main Array Spare Array Symbol Min Typ Max Unit tPROG - 200 500 µs - - 2 cycles - - 3 cycles - 2 3 ms Nop tBERS 7 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 AC Timing Characteristics for Command / Address / Data Input Parameter Symbol Min Max Unit CLE Set-up Time tCLS 0 - ns CLE Hold Time tCLH 10 - ns CE Setup Time tCS 0 - ns CE Hold Time tCH 10 - ns WE Pulse Width tWP 25(1) - ns ALE Setup Time tALS 0 - ns ALE Hold Time tALH 10 - ns Data Setup Time tDS 20 - ns Data Hold Time tDH 10 - ns Write Cycle Time tWC 50 - ns WE High Hold Time tWH 15 - ns NOTE : 1. If tCS is set less than 10ns, tWP must be minimum 35ns, otherwise, tWP may be minimum 25ns. AC Characteristics for Operation Parameter Symbol Min Max Unit tR - 10 µs tAR1 20 - ns ALE to RE Delay(Read cycle) tAR2 50 - ns CLE to RE Delay tCLR 50 - ns Ready to RE Low tRR 20 - ns RE Pulse Width tRP 30 - ns Data Transfer from Cell to Register ALE to RE Delay( ID read ) WE High to Busy tWB - 100 ns Read Cycle Time tRC 50 - ns RE Access Time tREA - 35 ns RE High to Output Hi-Z tRHZ 15 30 ns CE High to Output Hi-Z tCHZ - 20 ns RE High Hold Time tREH 15 - ns Output Hi-Z to RE Low tIR 0 - ns Last RE High to Busy(at sequential read) tRB - 100 CE High to Ready(in case of interception by CE at read) tCRY - CE High Hold Time(at the last serial read)(2) tCEH 100 - ns 50 +tr(R/B) ns (1) ns CE Low to Status Output tCEA - 45 ns WE High to RE Low tWHR 60 - ns tREADID - 35 ns tRST - 5/10/500(3) µs RE access time(Read ID) Device Resetting Time(Read/Program/Erase) NOTE : 1. The time to Ready depends on the value of the pull-up resistor tied R/B pin. 2. To break the sequential read cycle, CE must be held high for longer time than tCEH. 3. If reset command(FFh) is written at Ready state, the device goes into Busy for maximum 5us. 8 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 NAND Flash Technical Notes Invalid Block(s) Invalid blocks are defined as blocks that contain one or more invalid bits whose reliability is not guaranteed by Samsung. The information regarding the invalid block(s) is so called as the invalid block information. Devices with invalid block(s) have the same quality level or as devices with all valid blocks and have the same AC and DC characteristics. An invalid block(s) does not affect the performance of valid block(s) because it is isolated from the bit line and the common source line by a select transistor. The system design must be able to mask out the invalid block(s) via address mapping. The 1st block, which is placed on 00h block address, is fully guaranteed to be a valid block, does not require Error Correction. Identifying Invalid Block(s) All device locations are erased(FFh) except locations where the invalid block(s) information is written prior to shipping. The invalid block(s) status is defined by the 6th byte in the spare area. Samsung makes sure that either the 1st or 2nd page of every invalid block has non-FFh data at the column address of 517. Since the invalid block information is also erasable in most cases, it is impossible to recover the information once it has been erased. Therefore, the system must be able to recognize the invalid block(s) based on the original invalid block information and create the invalid block table via the following suggested flow chart(Figure 1). Any intentional erasure of the original invalid block information is prohibited. Start Set Block Address = 0 Increment Block Address Create (or update) Invalid Block(s) Table No * Check "FFh" at the column address 517 of the 1st and 2nd page in the block Check "FFh" ? Yes No Last Block ? Yes End Figure 1. Flow chart to create invalid block table. 9 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 NAND Flash Technical Notes (Continued) Error in write or read operation Over its life time, the additional invalid blocks may develop with NAND Flash memory. Refer to the qualification report for the actual data.The following possible failure modes should be considered to implement a highly reliable system. In the case of status read failure after erase or program, block replacement should be done. Because program status fail during a page program does not affect the data of the other pages in the same block, block replacement can be executed with a page-sized buffer by finding an erased empty block and reprogramming the current target data and copying the rest of the replaced block. To improve the efficiency of memory space, it is recommended that the read or verification failure due to single bit error be reclaimed by ECC without any block replacement. The said additional block failure rate does not include those reclaimed blocks. Failure Mode Status Read after Erase --> Block Replacement Program Failure Status Read after Program --> Block Replacement Read back ( Verify after Program) --> Block Replacement or ECC Correction Single Bit Failure Verify ECC -> ECC Correction Write Read Detection and Countermeasure sequence Erase Failure ECC : Error Correcting Code --> Hamming Code etc. Example) 1bit correction & 2bit detection Program Flow Chart If ECC is used, this verification operation is not needed. Start Write 00h Write 80h Write Address Write Address Wait for tR Time Write Data Write 10h Verify Data No * Program Error Read Status Register Yes Program Completed I/O 6 = 1 ? or R/B = 1 ? * Program Error Yes No No * I/O 0 = 0 ? Yes 10 : If program operation results in an error, map out the block including the page in error and copy the target data to another block. FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 NAND Flash Technical Notes (Continued) Erase Flow Chart Read Flow Chart Start Start Write 60h Write 00h Write Block Address Write Address Write D0h Read Data Read Status Register ECC Generation No I/O 6 = 1 ? or R/B = 1 ? Reclaim the Error No Verify ECC Yes Yes * Erase Error No Page Read Completed I/O 0 = 0 ? Yes Erase Completed * : If erase operation results in an error, map out the failing block and replace it with another block. Block Replacement 1st ∼ (n-1)th { nth Block A 2 an error occurs. (page) 1st ∼ (n-1)th nth Buffer memory of the controller. { Block B 1 (page) * Step1 When an error happens in the nth page of the Block ’A’ during erase or program operation. * Step2 Copy the nth page data of the Block ’A’ in the buffer memory to the nth page of another free block. (Block ’B’) * Step3 Then, copy the data in the 1st ~ (n-1)th page to the same location of the Block ’B’. * Step4 Do not erase or program to Block ’A’ by creating an ’invalid Block’ table or other appropriate scheme. 11 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 Pointer Operation of K9F5608U0A Samsung NAND Flash has three address pointer commands as a substitute for the two most significant column addresses. ’00h’ command sets the pointer to ’A’ area(0~255byte), ’01h’ command sets the pointer to ’B’ area(256~511byte), and ’50h’ command sets the pointer to ’C’ area(512~527byte). With these commands, the starting column address can be set to any of a whole page(0~527byte). ’00h’ or ’50h’ is sustained until another address pointer command is inputted. ’01h’ command, however, is effective only for one operation. After any operation of Read, Program, Erase, Reset, Power_Up is executed once with ’01h’ command, the address pointer returns to ’A’ area by itself. To program data starting from ’A’ or ’C’ area, ’00h’ or ’50h’ command must be inputted before ’80h’ command is written. A complete read operation prior to ’80h’ command is not necessary. To program data starting from ’B’ area, ’01h’ command must be inputted right before ’80h’ command is written. Table 1. Destination of the pointer Command Pointer position Area 00h 01h 50h 0 ~ 255 byte 256 ~ 511 byte 512 ~ 527 byte 1st half array(A) 2nd half array(B) spare array(C) "A" area (00h plane) "B" area (01h plane) 256 Byte 256 Byte "A" "B" "C" area (50h plane) 16 Byte "C" Internal Page Register Pointer select commnad (00h, 01h, 50h) Pointer Figure 2. Block Diagram of Pointer Operation (1) Command input sequence for programming ’A’ area The address pointer is set to ’A’ area(0~255), and sustained Address / Data input 00h 80h Address / Data input 10h 00h ’A’,’B’,’C’ area can be programmed. It depends on how many data are inputted. 80h 10h ’00h’ command can be omitted. (2) Command input sequence for programming ’B’ area The address pointer is set to ’B’ area(256~512), and will be reset to ’A’ area after every program operation is executed. Address / Data input 01h 80h Address / Data input 10h 01h ’B’, ’C’ area can be programmed. It depends on how many data are inputted. 80h 10h ’01h’ command must be rewritten before every program operation (3) Command input sequence for programming ’C’ area The address pointer is set to ’C’ area(512~527), and sustained Address / Data input 50h 80h Address / Data input 10h 50h Only ’C’ area can be programmed. 80h ’50h’ command can be omitted. 12 10h FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 System Interface Using CE don’t-care. For an easier system interface, CE may be inactive during the data-loading or sequential data-reading as shown below. The internal 528byte page registers are utilized as seperate buffers for this operation and the system design gets more flexible. In addition, for voice or audio applications which use slow cycle time on the order of u-seconds, de-activating CE during the data-loading and reading would provide significant savings in power consumption. Figure 3. Program Operation with CE don’t-care. CLE CE don’t-care ≈ ≈ CE WE ALE I/O0~7 80h Start Add.(3Cycle) Data Input (Min. 10ns) Data Input 10h (Max. 45ns) tCS tCH tCEA CE CE tREA RE tWP WE I/O0~7 out Timing requirements : If CE is exerted high during sequential Timing requirements : If CE is is exerted high during data-loading, tCS must be minimum 10ns and tWC must be increased accordingly. data-reading, the falling edge of CE to valid data(tCEA) must be kept greater than 45ns. Figure 4. Read Operation with CE don’t-care. CLE CE don’t-care CE ≈ Must be held low during tR. RE ALE tR R/B WE I/O0~7 00h Data Output(sequential) Start Add.(3Cycle) 13 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 * Command Latch Cycle CLE tCLS tCLH tCS tCH CE tWP WE tALS tALH ALE tDH tDS Command I/O0~7 * Address Latch Cycle tCLS CLE tCS tWC tWC CE tWP tWP tWP WE tWH tALH tALS tWH tALH tALS tALS tALH ALE tDS I/O0~7 tDH tDS tDH A9~A16 A0~A7 14 tDS tDH A17~A24 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 * Input Data Latch Cycle tCLH CLE tCH CE tWC tALS tWP ≈ ALE tWP tWP WE tWH tDH tDS tDH tDS tDH ≈ tDS I/O0~7 DIN 511 DIN 1 ≈ DIN 0 * Serial access Cycle after Read(CLE=L, WE=H, ALE=L) tRC ≈ CE tREH ≈ tREA tREA tCHZ* tREA RE tRHZ* Dout I/O0~7 Dout ≈ tRHZ* Dout ≈ tRR R/B NOTES : Transition is measured ±200mV from steady state voltage with load. This parameter is sampled and not 100% tested. 15 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 * Status Read Cycle tCLR CLE tCLS tCLH tCS CE tCH tWP WE tCEA tCHZ tWHR RE tDH tDS I/O0~7 tIR tREA tRHZ Status Output 70h READ1 OPERATION(READ ONE PAGE) CLE tCEH CE tCHZ tWC WE tWB tCRY tAR2 ALE tR tRHZ tRC ≈ RE I/O0~7 00h or 01h A0 ~ A7 A9 ~ A16 Column Address R/B A17 ~ A24 Dout N Page(Row) Address Busy 16 Dout N+1 Dout N+2 Dout N+3 ≈ ≈ tRR Dout 527 tRB FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 READ1 OPERATION (INTERCEPTED BY CE) CLE CE WE tWB tCHZ tAR2 ALE tRC tR RE tRR I/O0~7 00h or 01h A9 ~ A16 A0 ~ A7 Column Address A17 ~ A24 Dout N Dout N+1 Dout N+2 Dout N+3 Page(Row) Address Busy R/B READ2 OPERATION (READ ONE PAGE) CLE CE WE tR tWB tAR2 ALE ≈ tRR I/O0~7 50h A0 ~ A7 Dout 511+M A9 ~ A16 A17 ~ A24 R/B Dout 511+M+1 ≈ RE Dout 527 Selected Row M Address A0~A3 : Valid Address A4~A7 : Don′t care 512 16 Start address M 17 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 SEQUENTIAL ROW READ OPERATION (WITHIN A BLOCK) CLE CE WE ≈ ≈ ALE Dout N A0 ~ A7 A9 ~ A16 A17 ~ A24 Dout N+1 Dout N+2 Dout 0 ≈ Ready Dout 527 Dout 2 Dout 527 Busy Busy R/B Dout 1 ≈ 00h ≈ I/O0~7 ≈ RE M M+1 N Output Output PAGE PROGRAM OPERATION CLE CE tWC tWC tWC WE tWB tPROG ALE I/O0~7 80h A0 ~ A7 A9 ~ A16 A17 ~ A24 Sequential Data Column Input Command Address Page(Row) Address ≈ ≈ RE Din Din Din 10h 527 N N+1 Program 1 up to 528 Byte Data Command Serial Input 18 I/O0 Read Status Command ≈ R/B 70h I/O0=0 Successful Program I/O0=1 Error in Program FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 COPY-BACK PROGRAM OPERATION CLE CE tWC WE tWB tWB tPROG ALE tR RE 00h 8Ah A0~A7 A9~A16 A17~A24 70h A0~A7 A9~A16 A17~A24 Program Column Page(Row) Column Page(Row) Address Address CommandAddress ≈ R/B Busy Busy I/O0 Read Status Command Address ≈ I/O0~7 I/O0=0 Successful Program I/O0=1 Error in Program BLOCK ERASE OPERATION (ERASE ONE BLOCK) CLE CE tWC WE tBERS tWB ALE RE I/O0~7 60h A9 ~ A16 A17 ~ A24 DOh 70h I/O 0 Busy R/B Auto Block Erase Setup Command Erase Command ≈ Page(Row) Address Read Status Command 19 I/O0=0 Successful Erase I/O0=1 Error in Erase FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 MANUFACTURE & DEVICE ID READ OPERATION tCLR CLE CE WE ALE tAR1 RE tREADID I/O 0 ~ 7 90h Read ID Command 00h ECh Address. 1cycle Maker Code 20 75h Device Code K9F5608U0A-YCB0,K9F5608U0A-YIB0 FLASH MEMORY DEVICE OPERATION PAGE READ Upon initial device power up, the device defaults to Read1 mode. This operation is also initiated by writing 00h to the command register along with three address cycles. Once the command is latched, it does not need to be written for the following page read operation. Three types of operations are available : random read, serial page read and sequential row read. The random read mode is enabled when the page address is changed. The 528 bytes of data within the selected page are transferred to the data registers in less than 10µs(tR). The system controller can detect the completion of this data transfer(tR) by analyzing the output of R/B pin. Once the data in a page is loaded into the registers, they may be read out in 50ns cycle time by sequentially pulsing RE. High to low transitions of the RE clock output the data stating from the selected column address up to the last column address(column 511 or 527 depending on the state of GND input pin). After the data of last column address is clocked out, the next page is automatically selected for sequential row read. Waiting 10µs again allows reading the selected page. The sequential row read operation is terminated by bringing CE high. The way the Read1 and Read2 commands work is like a pointer set to either the main area or the spare area. The spare area of bytes 512 to 527 may be selectively accessed by writing the Read2 command with GND input pin low. Addresses A0 to A3 set the starting address of the spare area while addresses A4 to A7 are ignored. Unless the operation is aborted, the page address is automatically incremented for sequential row read as in Read1 operation and spare sixteen bytes of each page may be sequentially read. The Read1 command(00h/01h) is needed to move the pointer back to the main area. Figures 3 through 6 show typical sequence and timings for each read operation. Figure 3. Read1 Operation CLE CE WE ALE tR R/B RE I/O0~7 00h Start Add.(3Cycle) Data Output(Sequential) A0 ~ A7 & A9 ~ A24 (00h Command) 1st half array (01h Command)* 2st half array Data Field Spare Field 1st half array 2st half array Data Field Spare Field * After data access on 2nd half array by 01h command, the start pointer is automatically moved to 1st half array (00h) at next cycle. 21 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 Figure 4. Read2 Operation CLE CE WE ALE tR R/B RE I/O0~7 Start Add.(3Cycle) 50h Data Output(Sequential) A0 ~ A3 & A9 ~ A24 (A4 ~ A7 : Don't Care) Spare Field 1st half array 2nd half array Data Field Spare Field I/O0 ~ 7 tR tR R/B 00h ≈ Figure 5. Sequential Row Read1 Operation Data Output Start Add.(3Cycle) Data Output 1st 01h 1st half array 1st half array 2nd half array 1st 2nd Nth Block Data Field Spare Field Nth (528 Byte) (GND input=H, 00h Command) (GND input=L, 01h Command) 2nd half array Data Output 2nd (528 Byte) A0 ~ A7 & A9 ~ A24 (GND input=L, 00h Command) tR 1st half array 2nd half array 1st 2nd Nth 1st 2nd Nth Data Field Spare Field Data Field Spare Field The Sequential Read 1 and 2 operation is allowed only within a block and after the last page of a block is readout, the sequential read operation must be terminated by bringing CE high. When the page address moves onto the next block, read command and address must be given. 22 FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 I/O0~7 tR tR R/B 50h ≈ Figure 6. Sequential Row Read2 Operation (GND Input=Fixed Low) Start Add.(3Cycle) Data Output 1st A0 ~ A3 & A9 ~ A24 tR Data Output Data Output 2nd (16Byte) Nth (16Byte) (A4 ~ A7 : Don′t Care) 1st Block Nth Data Field Spare Field PAGE PROGRAM The device is programmed basically on a page basis, but it does allow multiple partial page programing of a byte or consecutive bytes up to 528, in a single page program cycle. The number of consecutive partial page programming operation within the same page without an intervening erase operation should not exceed 2 for main array and 3 for spare array. The addressing may be done in any random order in a block. A page program cycle consists of a serial data loading period in which up to 528 bytes of data may be loaded into the page register, followed by a non-volatile programming period where the loaded data is programmed into the appropriate cell. Serial data loading can be started from 2nd half array by moving pointer. About the pointer operation, please refer to the attached technical notes. The serial data loading period begins by inputting the Serial Data Input command(80h), followed by the three cycle address input and then serial data loading. The bytes other than those to be programmed do not need to be loaded.The Page Program confirm command(10h) initiates the programming process. Writing 10h alone without previously entering the serial data will not initiate the programming process. The internal write controller automatically executes the algorithms and timings necessary for program and verify, thereby freeing the system controller for other tasks. Once the program process starts, the Read Status Register command may be entered, with RE and CE low, to read the status register. The system controller can detect the completion of a program cycle by monitoring the R/B output, or the Status bit(I/O 6) of the Status Register. Only the Read Status command and Reset command are valid while programming is in progress. When the Page Program is complete, the Write Status Bit(I/O 0) may be checked(Figure 7). The internal write verify detects only errors for "1"s that are not successfully programmed to "0"s. The command register remains in Read Status command mode until another valid command is written to the command register. Figure 7. Program Operation tPROG R/B I/O0~7 80h Address & Data Input 10h 70h A0 ~ A7 & A9 ~ A24 528 Byte Data I/O0 Fail 23 Pass FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 COPY-BACK PROGRAM The copy-back program is configured to quickly and efficiently rewrite data stored in one page within the array to another page within the same array without utilizing an external memory. Since the time-consuming sequently-reading and its re-loading cycles are removed, the system performance is improved. The benefit is especially obvious when a portion of a block is updated and the rest of the block also need to be copied to the newly assigned free block. The operation for performing a copy-back is a sequential execution of page-read without burst-reading cycle and copying-program with the address of destination page. A normal read operation with "00h" command with the address of the source page moves the whole 528byte data into the internal buffer. As soon as the Flash returns to Ready state, copy-back programming command "8Ah" may be given with three address cycles of target page followed. The data stored in the internal buffer is then programmed directly into the memory cells of the destination page. Once the Copy-Back Program is finished, any additional partial page programming into the copied pages is prohibited before erase. Since the memory array is internally partitioned into two different planes, copy-back program is allowed only within the same memory plane. Thus, A14, the plane address, of source and destination page address must be the same. "When there is a program-failure at Copy-Back operation, error is reported by pass/fail status. But, if Copy-Back operations are accumulated over time, bit error due to charge loss is not checked by external error detection/correction scheme. For this reason, two bit error correction is recommended for the use of Copy-Back operation." Figure 8. Copy-Back Program Operation tR tPROG R/B I/O0~7 Add.(3Cycles) 00h 8Ah A0 ~ A7 & A9 ~ A24 Source Address Add.(3Cycles) 70h A0 ~ A7 & A9 ~ A24 Destination Address I/O0 Pass Fail BLOCK ERASE The Erase operation is done on a block(16K Byte) basis. Block address loading is accomplished in two cycles initiated by an Erase Setup command(60h). Only address A14 to A24 is valid while A9 to A13 is ignored. The Erase Confirm command(D0h) following the block address loading initiates the internal erasing process. This two-step sequence of setup followed by execution command ensures that memory contents are not accidentally erased due to external noise conditions. At the rising edge of WE after the erase confirm command input, the internal write controller handles erase and erase-verify. When the erase operation is completed, the Write Status Bit(I/O 0) may be checked. Figure 8 details the sequence. Figure 9. Block Erase Operation tBERS R/B I/O0~7 60h Address Input(2Cycle) 70h D0h I/O0 Block Add. : A9 ~ A24 Fail 24 Pass FLASH MEMORY K9F5608U0A-YCB0,K9F5608U0A-YIB0 READ STATUS The device contains a Status Register which may be read to find out whether program or erase operation is completed, and whether the program or erase operation is completed successfully. After writing 70h command to the command register, a read cycle outputs the content of the Status Register to the I/O pins on the falling edge of CE or RE, whichever occurs last. This two line control allows the system to poll the progress of each device in multiple memory connections even when R/B pins are common-wired. RE or CE does not need to be toggled for updated status. Refer to table 2 for specific Status Register definitions. The command register remains in Status Read mode until further commands are issued to it. Therefore, if the status register is read during a random read cycle, a read command(00h or 50h) should be given before sequential page read cycle. Table2. Read Status Register Definition I/O # Status Definition I/O 0 Program / Erase "0" : Successful Program / Erase "1" : Error in Program / Erase I/O 1 "0" I/O 2 "0" Reserved for Future Use I/O 3 "0" I/O 4 "0" I/O 5 "0" I/O 6 Device Operation I/O 7 Write Protect "0" : Busy "1" : Ready "0" : Protected "1" : Not Protected READ ID The device contains a product identification mode, initiated by writing 90h to the command register, followed by an address input of 00h. Two read cycles sequentially output the manufacture code(ECh), and the device code (75h) respectively. The command register remains in Read ID mode until further commands are issued to it. Figure 10 shows the operation sequence. Figure 10. Read ID Operation tCLR CLE tCEA CE WE tAR1 ALE tWHR RE I/O0~7 90h tREA 00h Address. 1cycle ECh Maker code 25 75h Device code K9F5608U0A-YCB0,K9F5608U0A-YIB0 FLASH MEMORY RESET The device offers a reset feature, executed by writing FFh to the command register. When the device is in Busy state during random read, program or erase mode, the reset operation will abort these operations. The contents of memory cells being altered are no longer valid, as the data will be partially programmed or erased. The command register is cleared to wait for the next command, and the Status Register is cleared to value C0h when WP is high. Refer to table 3 for device status after reset operation. If the device is already in reset state a new reset command will not be accepted by the command register. The R/B pin transitions to low for tRST after the Reset command is written. Refer to Figure 11 below. Figure 11. RESET Operation tRST R/B I/O0~7 FFh Table3. Device Status Operation Mode After Power-up After Reset Read 1 Waiting for next command 26 Package Dimensions FLASH MEMORY READY/BUSY The device has a R/B output that provides a hardware method of indicating the completion of a page program, erase and random read completion. The R/B pin is normally high but transitions to low after program or erase command is written to the command register or random read is started after address loading. It returns to high when the internal controller has finished the operation. The pin is an open-drain driver thereby allowing two or more R/B outputs to be Or-tied. Because pull-up resistor value is related to tr(R/B) and current drain during busy(ibusy) , an appropriate value can be obtained with the following reference chart(Fig 12). Its value can be determined by the following guidance. Rp ibusy VCC Ready Vcc R/B open drain output 2.0V 0.8V Busy tf tr GND Device Fig 12 Rp vs tr ,tf & Rp vs ibusy @ Vcc = 3.3V, Ta = 25°C , CL = 100pF tr,tf [s] Ibusy 300n 200n 290 3m 1.65 189 1.1 2m tr 96 100n 4.2 0.825 tf 1K 4.2 4.2 4.2 2K 3K Rp(ohm) 4K Rp value guidance Rp(min) = 3.2V VCC(Max.) - VOL(Max.) IOL + ΣIL = 8mA + ΣIL where IL is the sum of the input currents of all devices tied to the R/B pin. Rp(max) is determined by maximum permissible limit of tr 27 1m Ibusy [A] 381 3.3 K9F5608U0A-YCB0,K9F5608U0A-YIB0 FLASH MEMORY Data Protection & Powerup sequence The device is designed to offer protection from any involuntary program/erase during power-transitions. An internal voltage detector disables all functions whenever Vcc is below about 2V. WP pin provides hardware protection and is recommended to be kept at VIL during power-up and power-down and recovery time of minimum 1µs is required before internal circuit gets ready for any command sequences as shown in Figure 13. The two step command sequence for program/erase provides additional software protection. ≈ Figure 13. AC Waveforms for Power Transition ~ 2.5V VCC ≈ High ≈ WP 10µs ≈ WE 28 ~ 2.5V Package Dimensions FLASH MEMORY PACKAGE DIMENSIONS 48-PIN LEAD PLASTIC THIN SMALL OUT-LINE PACKAGE TYPE(I) 48 - TSOP1 - 1220F 0.10 MAX 0.004 Unit :mm/Inch #48 #24 #25 0.50 0.0197 12.40 0.488 MAX ( 0.25 ) 0.010 #1 12.00 0.472 +0.003 0.008-0.001 0.20 -0.03 +0.07 20.00±0.20 0.787±0.008 1.00±0.05 0.039±0.002 0~8¡Æ 0.45~0.75 0.018~0.030 +0.003 0.005-0.001 +0.075 18.40±0.10 0.724±0.004 0.125 0.035 0.25 0.010 TYP 1.20 0.047MAX ( 0.50 ) 0.020 29 0.05 0.002 MIN