Datasheets
M25P10-AVMP6TG by:

Flash, 128KX8, PDSO8, ROHS COMPLIANT, VFQFPN-8

Part Details for M25P10-AVMP6TG by Micron Technology Inc

Results Overview of M25P10-AVMP6TG by Micron Technology Inc

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M25P10-AVMP6TG Information

M25P10-AVMP6TG by Micron Technology Inc is a Flash Memory.
Flash Memories are under the broader part category of Memory Components.

Memory components are essential in electronics for computer processing. They can be volatile or non-volatile, depending on the desired function. Read more about Memory Components on our Memory part category page.

Price & Stock for M25P10-AVMP6TG

Part # Distributor Description Stock Price Buy
Quest Components FLASH, 128KX8, PDSO8 4
  • 1 $18.7819
  • 2 $17.5298
  • 5 $16.6950
$16.6950 / $18.7819 Buy Now
DISTI # M25P10-AVMP6TG
Avnet Silica NOR Flash SerialSPI 25V33V 1Mbit 128K x 8bit 15ns 8Pin VFQFPN EP TR (Alt: M25P10-AVMP6TG) RoHS: Compliant Min Qty: 4000 Package Multiple: 4000 Lead time: 143 Weeks, 0 Days Silica - 0
Buy Now

Part Details for M25P10-AVMP6TG

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M25P10-AVMP6TG Part Data Attributes

M25P10-AVMP6TG Micron Technology Inc
Buy Now Datasheet
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M25P10-AVMP6TG Micron Technology Inc Flash, 128KX8, PDSO8, ROHS COMPLIANT, VFQFPN-8
Pbfree Code Yes
Rohs Code Yes
Part Life Cycle Code Obsolete
Ihs Manufacturer MICRON TECHNOLOGY INC
Part Package Code QFP
Package Description HVSON,
Pin Count 8
Reach Compliance Code compliant
ECCN Code EAR99
HTS Code 8542.32.00.51
Additional Feature 40 MHZ CLOCK FREQUENCY AVAILABLE UPON REQUEST
Clock Frequency-Max (fCLK) 25 MHz
Endurance 100000 Write/Erase Cycles
JESD-30 Code R-PDSO-N8
Length 6 mm
Memory Density 1048576 bit
Memory IC Type FLASH
Memory Width 8
Number of Functions 1
Number of Terminals 8
Number of Words 131072 words
Number of Words Code 128000
Operating Mode SYNCHRONOUS
Operating Temperature-Max 85 °C
Operating Temperature-Min -40 °C
Organization 128KX8
Output Characteristics 3-STATE
Package Body Material PLASTIC/EPOXY
Package Code HVSON
Package Shape RECTANGULAR
Package Style SMALL OUTLINE, HEAT SINK/SLUG, VERY THIN PROFILE
Parallel/Serial SERIAL
Peak Reflow Temperature (Cel) 260
Programming Voltage 3 V
Qualification Status Not Qualified
Seated Height-Max 1 mm
Serial Bus Type SPI
Supply Voltage-Max (Vsup) 3.6 V
Supply Voltage-Min (Vsup) 2.7 V
Supply Voltage-Nom (Vsup) 3 V
Surface Mount YES
Technology CMOS
Temperature Grade INDUSTRIAL
Terminal Form NO LEAD
Terminal Pitch 1.27 mm
Terminal Position DUAL
Time@Peak Reflow Temperature-Max (s) 30
Type NOR TYPE
Width 5 mm
Write Protection HARDWARE/SOFTWARE

Alternate Parts for M25P10-AVMP6TG

This table gives cross-reference parts and alternative options found for M25P10-AVMP6TG. The Form Fit Function (FFF) tab will give you the options that are more likely to serve as direct pin-to-pin alternates or drop-in parts. The Functional Equivalents tab will give you options that are likely to match the same function of M25P10-AVMP6TG, but it may not fit your design. Always verify details of parts you are evaluating, as these parts are offered as suggestions for what you are looking for and are not guaranteed.

Part Number Manufacturer Composite Price Description Compare
M25P10-AVMP6G Micron Technology Inc Check for Price Flash, 128KX8, PDSO8, ROHS COMPLIANT, VFQFPN-8 M25P10-AVMP6TG vs M25P10-AVMP6G
M25P10-AVMP6TG Numonyx Memory Solutions Check for Price Flash, 128KX8, PDSO8, ROHS COMPLIANT, VFQFPN-8 M25P10-AVMP6TG vs M25P10-AVMP6TG
M25P10-AVMP6G Numonyx Memory Solutions Check for Price Flash, 128KX8, PDSO8, ROHS COMPLIANT, VFQFPN-8 M25P10-AVMP6TG vs M25P10-AVMP6G
M25P10-AVMP6T Micron Technology Inc Check for Price Flash, 128KX8, PDSO8, VFQFPN-8 M25P10-AVMP6TG vs M25P10-AVMP6T
Part Number Manufacturer Composite Price Description Compare
M25P40-VMC6TP/4A Micron Technology Inc Check for Price Flash, 512KX8, PDSO8, 4 X 3 MM, ROHS COMPLIANT, UFDFP-8 M25P10-AVMP6TG vs M25P40-VMC6TP/4A
S25FL002D0FNFI001 Spansion Check for Price EEPROM, 2MX1, Serial, CMOS, PDSO8, 6 X 5 MM, LEAD FREE, WSON-8 M25P10-AVMP6TG vs S25FL002D0FNFI001
S25FL040A0LNFI20 Spansion Check for Price Flash, 4MX1, PDSO8, 5 X 6 MM, LEAD FREE, PLASTIC, USON-8 M25P10-AVMP6TG vs S25FL040A0LNFI20
M25PE10VMP6TP Micron Technology Inc Check for Price Flash, 128KX8, PDSO8, 6 X 5 MM, ROHS COMPLIANT, VFQFP-8 M25P10-AVMP6TG vs M25PE10VMP6TP
M25P40-VMP6TG Micron Technology Inc Check for Price Flash, 512KX8, 6 X 5 MM, ROHS COMPLIANT, VFQFPN-8 M25P10-AVMP6TG vs M25P40-VMP6TG
W25X80LSNIG Winbond Electronics Corp Check for Price Flash, 8MX1, PDSO8, 0.150 INCH, GREEN, PLASTIC, SOIC-8 M25P10-AVMP6TG vs W25X80LSNIG
M25PX32STVMP6EA Micron Technology Inc Check for Price Flash, 4MX8, PDSO8, 6 X 5 MM, ROHS COMPLIANT, VFQFP-8 M25P10-AVMP6TG vs M25PX32STVMP6EA
W25Q32BWZEIP Winbond Electronics Corp Check for Price Flash, 4MX8, 8 X 6 MM, GREEN, WSON-8 M25P10-AVMP6TG vs W25Q32BWZEIP
XC1765LPD8C AMD Xilinx Check for Price Configuration Memory, 64KX1, Serial, CMOS, PDIP8, PLASTIC, DIP-8 M25P10-AVMP6TG vs XC1765LPD8C
W25Q32BWZEIG Winbond Electronics Corp Check for Price Flash, 4MX8, 8 X 6 MM, GREEN, WSON-8 M25P10-AVMP6TG vs W25Q32BWZEIG

M25P10-AVMP6TG Related Parts

M25P10-AVMP6TG Frequently Asked Questions (FAQ)

  • The M25P10-AVMP6TG has a minimum of 100,000 erase cycles per sector, and a total of 1,000,000 erase cycles for the entire device.

  • The HOLD# pin should be pulled high during power-up and power-down to prevent unwanted commands from being executed. It's recommended to connect a pull-up resistor to VCC.

  • The M25P10-AVMP6TG supports clock frequencies up to 104 MHz. However, it's recommended to use a clock frequency of 50 MHz or lower to ensure reliable operation.

  • The WP# pin is active low and should be connected to VCC or left floating to enable write operations. Connecting it to GND will enable write protection. Note that the WP# pin only protects the status register and does not affect the data stored in the device.

  • The Deep Power-Down (DP) mode is used to reduce power consumption to a minimum. In this mode, the device is in a low-power state, and all commands are ignored. The DP mode is typically used in battery-powered applications where power consumption needs to be minimized.

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