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ATMEGA64L-8MUR - VQFN / 64

ATMEGA64L-8MUR

Active
Microchip Technology

8MHZ, QFN/MLF, IND TEMP, GREEN, T&R 64 VQFN 9X9X1MM T/R ROHS COMPLIANT: YES

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ATMEGA64L-8MUR - VQFN / 64

ATMEGA64L-8MUR

Active
Microchip Technology

8MHZ, QFN/MLF, IND TEMP, GREEN, T&R 64 VQFN 9X9X1MM T/R ROHS COMPLIANT: YES

Technical Specifications

Parameters and characteristics commom to parts in this series

SpecificationATMEGA64L-8MURATmega64 Series
ConnectivityI2C, SPI, UART/USARTI2C, SPI, UART/USART
Core ProcessorAVRAVR
Core Size8-Bit8-Bit
Data Converters [custom]88
Data Converters [custom]1010
EEPROM Size2K x 82K x 8
Mounting TypeSurface MountSurface Mount
Number of I/O5353
Operating Temperature [Max]85 °C85 - 105 °C
Operating Temperature [Min]-40 °C-40 °C
Oscillator TypeInternalInternal
Package / Case64-VFQFN Exposed Pad64-VFQFN Exposed Pad, 64-TQFP
Program Memory Size64 KB64 KB
Program Memory TypeFLASHFLASH
RAM Size4K x 84K x 8
Speed8 MHz8 - 16 MHz
Supplier Device Package64-QFN (9x9)64-QFN (9x9), 64-TQFP
Voltage - Supply (Vcc/Vdd) [Max]5.5 V5.5 V
Voltage - Supply (Vcc/Vdd) [Min]2.7 V2.7 - 4.5 V

ATmega64 Series

Newer Device Available ATMEGA64A

PartVoltage - Supply (Vcc/Vdd) [Min]Voltage - Supply (Vcc/Vdd) [Max]Mounting TypeOscillator TypeRAM SizeConnectivityCore ProcessorCore SizeNumber of I/OData Converters [custom]Data Converters [custom]EEPROM SizePackage / CaseProgram Memory TypeSpeedSupplier Device PackageOperating Temperature [Max]Operating Temperature [Min]Program Memory Size
Microchip Technology
ATMEGA64L-8MU
2.7 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-VFQFN Exposed Pad
FLASH
8 MHz
64-QFN (9x9)
85 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64L-8AU
2.7 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-TQFP
FLASH
8 MHz
64-TQFP
85 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64L-8AQR
2.7 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-TQFP
FLASH
8 MHz
64-TQFP
105 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64L-8MQ
2.7 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-VFQFN Exposed Pad
FLASH
8 MHz
64-QFN (9x9)
105 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64-16AUR
4.5 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-TQFP
FLASH
16 MHz
64-TQFP
85 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64-16MUR
4.5 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-VFQFN Exposed Pad
FLASH
16 MHz
64-QFN (9x9)
85 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64L-8MQR
2.7 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-VFQFN Exposed Pad
FLASH
8 MHz
64-QFN (9x9)
105 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64L-8AUR
2.7 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-TQFP
FLASH
8 MHz
64-TQFP
85 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64-16AU
4.5 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-TQFP
FLASH
16 MHz
64-TQFP
85 °C
-40 °C
64 KB
Microchip Technology
ATMEGA64-16MU
4.5 V
5.5 V
Surface Mount
Internal
4K x 8
I2C, SPI, UART/USART
AVR
8-Bit
53
8
10
2K x 8
64-VFQFN Exposed Pad
FLASH
16 MHz
64-QFN (9x9)
85 °C
-40 °C
64 KB

Pricing

Prices provided here are for design reference only. For realtime values and availability, please visit the distributors directly

DistributorPackageQuantity$
ArrowN/A 1$ 6.91
25$ 6.73
100$ 6.56
DigikeyCut Tape (CT) 1$ 10.49
Digi-Reel® 1$ 10.49
Tape & Reel (TR) 4000$ 8.71
Microchip DirectT/R 1$ 10.49
25$ 9.62
100$ 8.71
1000$ 8.01
5000$ 7.62
NewarkEach (Supplied on Full Reel) 100$ 8.98

Description

General part information

ATmega64 Series

**Mature product; not recommended for new designs. Replaced by ATmega64A.**

ATmega64 is a low-power CMOS 8-bit microcontroller based on the AVR® enhanced RISC architecture. By executing powerful instructions in a single clock cycle, the ATmega64 achieves throughputs approaching one MIPS per MHz, allowing the system designer to optimize power consumption versus processing speed.