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PDF BR24G01FV-3 Data sheet ( Hoja de datos )

Número de pieza BR24G01FV-3
Descripción Serial EEPROM Series Standard EEPROM
Fabricantes ROHM Semiconductor 
Logotipo ROHM Semiconductor Logotipo



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Datasheet
Serial EEPROM Series Standard EEPROM
I2C BUS EEPROM (2-Wire)
BR24G01-3
General Description
BR24G01-3 is a serial EEPROM of I2C BUS Interface Method
Features
Packages W(Typ) x D(Typ) x H(Max)
„ Completely conforming to the world standard I2C
BUS.
All controls available by 2 ports of serial clock
(SCL) and serial data (SDA)
„ Other devices than EEPROM can be connected to
the same port, saving microcontroller port
„ 1.6V to 5.5V Single Power Source Operation most
suitable for battery use
„ 1.6V to 5.5V wide limit of operating voltage, possible
FAST MODE 400kHz operation
„ Page Write Mode useful for initial value write at
factory shipment
„ Self-timed Programming Cycle
„ Low Current Consumption
„ Prevention of Write Mistake
¾ Write (Write Protect) Function added
¾ Prevention of Write Mistake At Low Voltage
„ More than 1 million write cycles
„ More than 40 years data retention
„ Noise filter built in SCL / SDA terminal
„ Initial delivery state FFh
DIP-T8
9.30mm x 6.50mm x 7.10mm
TSSOP-B8
3.00mm x 6.40mm x 1.20mm
SOP8
5.00mm x 6.20mm x 1.71mm
TSSOP-B8J
3.00mm x 4.90mm x 1.10mm
SOP- J8
4.90mm x 6.00mm x 1.65mm
MSOP8
2.90mm x 4.00mm x 0.90mm
BR24G01-3
Capacity Bit Format
Type
BR24G01-3
BR24G01F-3
BR24G01FJ-3
1Kbit
128×8
BR24G01FV-3
BR24G01FVT-3
BR24G01FVJ-3
BR24G01FVM-3
BR24G01NUX-3
SSOP-B8
3.00mm x 6.40mm x 1.35mm
VSON008X2030
2.00mm x 3.00mm x 0.60mm
Figure 1.
Power Source
Voltage
1.6V to 5.5V
Package
DIP-T8
SOP8
SOP-J8
SSOP-B8
TSSOP-B8
TSSOP-B8J
MSOP8
VSON008X2030
Product structureSilicon monolithic integrated circuit
www.rohm.com
©2013 ROHM Co., Ltd. All rights reserved.
TSZ2211114001
This product has no designed protection against radioactive rays
1/33
TSZ02201-0R2R0G100160-1-2
31.May.2013 Rev.003

1 page




BR24G01FV-3 pdf
BR24G01-3
Typical Performance Curves
6
Ta=-40
5 Ta= 25
Ta= 85
4
3
SPEC
2
1
0
0 12 3 45 6
Supply Voltage: Vcc(V)
Figure 4. Input High Voltage1,2 vs Supply Voltage
(A0, A1, A2, SCL, SDA, WP)
Datasheet
6
Ta=-40
5 Ta= 25
Ta= 85
4
3
2
1
SPEC
0
0 12 3 45 6
Supply Voltage: Vcc(V)
Figure 5. Input Low Voltage1,2 vs Supply Voltage
(A0, A1, A2, SCL, SDA, WP)
1
Ta=-40
Ta= 25
0.8 Ta= 85
0.6
SPEC
0.4
0.2
0
0 12 3 45 6
Output Low Current : IOL(mA)
Figure 6. Output Low Voltage1 vs Output Low Current
(VCC=2.5V)
1
Ta=-40
Ta= 25
0.8 Ta= 85
0.6
0.4
SPEC
0.2
0
01 234 56
Output Low Current : IOL(mA)
Figure 7. Output Low Voltage2 vs Output Low Current
(VCC=1.6V)
www.rohm.com
©2013 ROHM Co., Ltd. All rights reserved.
TSZ2211115001
5/33
TSZ02201-0R2R0G100160-1-2
31.May.2013 Rev.003

5 Page





BR24G01FV-3 arduino
BR24G01-3
Typical Performance Curvescontinued
Datasheet
0.6
0.5
Ta=-40℃
0.4
Ta= 25℃
Ta= 85℃
0.3
0.2
0.1
0
0
SPEC
12 34 5
Supply Voltage: Vcc(V)
6
Figure 28. Noise Spike Width vs Supply Voltage
(SCL LOW)
0.6
0.5
Ta=-40℃
0.4 Ta= 25℃
Ta= 85℃
0.3
0.2
0.1
0
0
SPEC
1 234 5
Supply Voltage: Vcc(V)
6
Figure 30. Noise Spike Width vs Supply Voltage
(SDA LOW)
0.6
0.5
Ta=-40℃
0.4 Ta= 25℃
Ta= 85℃
0.3
0.2
0.1
0
0
SPEC
12 345
Supply Voltage: Vcc(V)
6
Figure 29. Noise Spike Width vs Supply Voltage
(SDA HIGH)
1.2
SPEC
1
0.8
Ta=-40℃
Ta= 25℃
0.6 Ta= 85℃
0.4
0.2
0
01 234 56
Supply Voltage: Vcc(v)
Figure 31. WP Hold Time vs Supply Voltage
www.rohm.com
©2013 ROHM Co., Ltd. All rights reserved.
TSZ2211115001
11/33
TSZ02201-0R2R0G100160-1-2
31.May.2013 Rev.003

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