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PDF FM25L16B Data sheet ( Hoja de datos )

Número de pieza FM25L16B
Descripción 16-Kbit (2K x 8) Serial (SPI) F-RAM
Fabricantes Cypress Semiconductor 
Logotipo Cypress Semiconductor Logotipo



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No Preview Available ! FM25L16B Hoja de datos, Descripción, Manual

FM25L16B
16-Kbit (2K × 8) Serial (SPI) F-RAM
16-Kbit (2K × 8) Serial (SPI) F-RAM
Features
16-Kbit ferroelectric random access memory (F-RAM) logically
organized as 2K × 8
High-endurance 100 trillion (1014) read/writes
151-year data retention (See the Data Retention and
Endurance table)
NoDelay™ writes
Advanced high-reliability ferroelectric process
Very fast serial peripheral interface (SPI)
Up to 20 MHz frequency
Direct hardware replacement for serial flash and EEPROM
Supports SPI mode 0 (0,0) and mode 3 (1,1)
Sophisticated write protection scheme
Hardware protection using the Write Protect (WP) pin
Software protection using Write Disable instruction
Software block protection for 1/4, 1/2, or entire array
Low power consumption
200 A active current at 1 MHz
3 A (typ) standby current
Low-voltage operation: VDD = 2.7 V to 3.6 V
Industrial temperature: –40 C to +85 C
Packages
8-pin small outline integrated circuit (SOIC) package
8-pin thin dual flat no leads (DFN) package
Restriction of hazardous substances (RoHS) compliant
Functional Description
The FM25L16B is a 16-Kbit nonvolatile memory employing an
advanced ferroelectric process. A ferroelectric random access
memory or F-RAM is nonvolatile and performs reads and writes
similar to a RAM. It provides reliable data retention for 151 years
while eliminating the complexities, overhead, and system level
reliability problems caused by serial flash, EEPROM, and other
nonvolatile memories.
Unlike serial flash and EEPROM, the FM25L16B performs write
operations at bus speed. No write delays are incurred. Data is
written to the memory array immediately after each byte is
successfully transferred to the device. The next bus cycle can
commence without the need for data polling. In addition, the
product offers substantial write endurance compared with other
nonvolatile memories. The FM25L16B is capable of supporting
1014 read/write cycles, or 100 million times more write cycles
than EEPROM.
These capabilities make the FM25L16B ideal for nonvolatile
memory applications requiring frequent or rapid writes.
Examples range from data collection, where the number of write
cycles may be critical, to demanding industrial controls where the
long write time of serial flash or EEPROM can cause data loss.
The FM25L16B provides substantial benefits to users of serial
EEPROM or flash as a hardware drop-in replacement. The
FM25L16B uses the high-speed SPI bus, which enhances the
high-speed write capability of F-RAM technology. The device
specifications are guaranteed over an industrial temperature
range of –40 C to +85 C.
For a complete list of related documentation, click here.
Logic Block Diagram
WP
CS
HOLD
SCK
SI
Instruction Decoder
Clock Generator
Control Logic
Write Protect
Instruction Register
Address Register
Counter
11
2Kx8
F-RAM Array
8
Data I/O Register
3
Nonvolatile Status
Register
SO
Cypress Semiconductor Corporation • 198 Champion Court
Document Number: 001-84485 Rev. *H
• San Jose, CA 95134-1709 • 408-943-2600
Revised January 27, 2017

1 page




FM25L16B pdf
FM25L16B
the slave responds through the SO pin. Multiple slave devices
may share the SI and SO lines as described earlier.
The FM25L16B has two separate pins for SI and SO, which can
be connected with the master as shown in Figure 3.
For a microcontroller that has no dedicated SPI bus, a
general-purpose port may be used. To reduce hardware
resources on the controller, it is possible to connect the two data
pins (SI, SO) together and tie off (HIGH) the HOLD and WP pins.
Figure 4 shows such a configuration, which uses only three pins.
Most Significant Bit (MSB)
The SPI protocol requires that the first bit to be transmitted is the
Most Significant Bit (MSB). This is valid for both address and
data transmission.
The 16-Kbit serial F-RAM requires a 2-byte address for any read
or write operation. Because the address is only 11 bits, the first
five bits which are fed in are ignored by the device. Although
these three bits are ‘don’t care’, Cypress recommends that these
bits be set to 0s to enable seamless transition to higher memory
densities.
Serial Opcode
After the slave device is selected with CS going LOW, the first
byte received is treated as the opcode for the intended operation.
FM25L16B uses the standard opcodes for memory accesses.
Invalid Opcode
If an invalid opcode is received, the opcode is ignored and the
device ignores any additional serial data on the SI pin until the
next falling edge of CS, and the SO pin remains tristated.
Status Register
FM25L16B has an 8-bit Status Register. The bits in the Status
Register are used to configure the device. These bits are
described in Table 3 on page 7.
Figure 3. System Configuration with SPI port
SCK
MOSI
MISO
SPI
Microcontroller
CS1
HOLD1
WP1
CS2
HOLD2
WP2
SCK SI SO
FM25L16B
CS HOLD WP
SCK SI SO
FM25L16B
CS HOLD WP
Figure 4. System Configuration without SPI port
P1.0
P1.1
Microcontroller
SCK SI SO
FM25L16B
CS HOLD WP
P1.2
SPI Modes
FM25L16B may be driven by a microcontroller with its SPI
peripheral running in either of the following two modes:
SPI Mode 0 (CPOL = 0, CPHA = 0)
SPI Mode 3 (CPOL = 1, CPHA = 1)
For both these modes, the input data is latched in on the rising
edge of SCK starting from the first rising edge after CS goes
active. If the clock starts from a HIGH state (in mode 3), the first
rising edge after the clock toggles is considered. The output data
is available on the falling edge of SCK.
Document Number: 001-84485 Rev. *H
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FM25L16B arduino
FM25L16B
Maximum Ratings
Exceeding maximum ratings may shorten the useful life of the
device. These user guidelines are not tested.
Storage temperature ................................ –55 C to +125 C
Maximum accumulated storage time
At 125 °C ambient temperature ................................. 1000 h
At 85 °C ambient temperature ................................ 10 Years
Ambient temperature
with power applied ................................... –55 °C to +125 °C
Supply voltage on VDD relative to VSS .........–1.0 V to +5.0 V
Input voltage ............. –1.0 V to +5.0 V and VIN < VDD+1.0 V
DC voltage applied to outputs
in High Z state .................................... –0.5 V to VDD + 0.5 V
Transient voltage (< 20 ns)
on any pin to ground potential ............ –2.0 V to VDD + 2.0 V
DC Electrical Characteristics
Package power dissipation capability
(TA = 25 °C) ................................................................. 1.0 W
Surface mount lead soldering temperature
(3 seconds) .............................................................. +260 C
DC output current (1 output at a time, 1s duration) .... 15 mA
Electrostatic Discharge Voltage
Human Body Model (AEC-Q100-002 Rev. E) ................... 2 kV
Charged Device Model (AEC-Q100-011 Rev. B) .............. 500 V
Latch up current ..................................................... > 140 mA
Operating Range
Range
Industrial
Ambient Temperature (TA)
VDD
–40 C to +85 C
2.7 V to 3.6 V
Over the Operating Range
Parameter
Description
Test Conditions
Min Typ [3] Max Unit
VDD
IDD
ISB
ILI
ILO
VIH
VIL
VOH
VOL
VHYS[4]
Power supply
2.7 3.3 3.6 V
VDD supply current
SCK toggling between VDD fSCK = 1 MHz
– 0.3 V and VSS, other
inputs VSS or VDD – 0.3 V.
fSCK = 20 MHz
SO = Open.
– 0.2 mA
– 3 mA
VDD standby current
CS = VDD. All other inputs VSS or VDD.
3
6 A
Input leakage current
VSS < VIN < VDD
– – ±1 A
Output leakage current
VSS < VOUT < VDD
– – ±1 A
Input HIGH voltage
0.7 × VDD – VDD + 0.3 V
Input LOW voltage
– 0.3
– 0.3 × VDD V
Output HIGH voltage
IOH = –2 mA
VDD – 0.8
–V
Output LOW voltage
IOL = 2 mA
– – 0.4 V
Input Hysteresis (CS and SCK pin)
0.05 × VDD
–V
Notes
3. Typical values are at 25 °C, VDD = VDD(typ). Not 100% tested.
4. This parameter is characterized and not 100% tested.
Document Number: 001-84485 Rev. *H
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