MC9S12NE64VTU Freescale Semiconductor, MC9S12NE64VTU Datasheet - Page 61

IC MCU 25MHZ ETHERNET/PHY 80TQFP

MC9S12NE64VTU

Manufacturer Part Number
MC9S12NE64VTU
Description
IC MCU 25MHZ ETHERNET/PHY 80TQFP
Manufacturer
Freescale Semiconductor
Series
HCS12r
Datasheet

Specifications of MC9S12NE64VTU

Mfg Application Notes
MC9S12NE64 Integrated Ethernet Controller Implementing an Ethernet Interface with the MC9S12NE64 Web Server Development with MC9S12NE64 and Open TCP
Core Processor
HCS12
Core Size
16-Bit
Speed
25MHz
Connectivity
EBI/EMI, Ethernet, I²C, SCI, SPI
Peripherals
POR, PWM, WDT
Number Of I /o
38
Program Memory Size
64KB (64K x 8)
Program Memory Type
FLASH
Ram Size
8K x 8
Voltage - Supply (vcc/vdd)
2.375 V ~ 3.465 V
Data Converters
A/D 8x10b
Oscillator Type
Internal
Operating Temperature
-40°C ~ 105°C
Package / Case
80-TQFP Exposed Pad, 80-eTQFP, 80-HTQFP, 80-VQFP
Data Bus Width
16 bit
Data Ram Size
8 KB
Interface Type
I2C, SCI, SPI
Maximum Clock Frequency
25 MHz
Number Of Programmable I/os
70
Number Of Timers
16 bit
Operating Supply Voltage
- 0.3 V to + 3 V
Maximum Operating Temperature
+ 105 C
Mounting Style
SMD/SMT
Minimum Operating Temperature
- 65 C
On-chip Adc
10 bit
For Use With
EVB9S12NE64E - BOARD EVAL FOR 9S12NE64DEMO9S12NE64E - DEMO BOARD FOR 9S12NE64
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Eeprom Size
-
Lead Free Status / Rohs Status
 Details

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1.4.2.2
1.4.2.2.1
This will be the most common usage of the secured MCU. Everything will appear the same as if the MCU
were not secured, with the exception of BDM operation. The BDM operation will be blocked.
1.4.2.2.2
The user may wish to execute from external memory with a secured microcontroller. This is accomplished
by resetting directly into expanded mode. The internal FLASH will be disabled. BDM operations will be
blocked.
1.4.2.3
In order to unsecure the microcontroller, the internal FLASH must be erased. This can be performed
through an external program in expanded mode.
After the user has erased the FLASH, the MCU can be reset into special single chip mode. This invokes a
program that verifies the erasure of the internal FLASH. After this program completes, the user can erase
and program the FLASH security bits to the unsecured state. This is generally performed through the
BDM, but the user could also change to expanded mode (by writing the mode bits through the BDM) and
jumping to an external program (again through BDM commands). Note that if the MCU goes through a
reset before the security bits are reprogrammed to the unsecure state, the MCU will be secured again.
1.5
The microcontroller features three main low-power modes. See the respective block description chapter
for information on the module behavior in stop, pseudo stop, and wait mode. An important source of
information about the clock system is the clock and reset generator (CRG) block description chapter.
1.5.1
Executing the CPU STOP instruction stops all clocks and the oscillator thus putting the chip in fully static
mode. Wakeup from this mode can be performed via reset or external interrupts.
1.5.2
This mode is entered by executing the CPU STOP instruction. In this mode, the oscillator stays running
and the real-time interrupt (RTI) or watchdog (COP) sub module can stay active. Other peripherals are
turned off. This mode consumes more current than the full stop mode, but the wakeup time from this mode
is significantly shorter.
Freescale Semiconductor
Low-Power Modes
Stop
Pseudo Stop
Operation of the Secured Microcontroller
Unsecuring the Microcontroller
Normal Single Chip Mode
Executing from External Memory
MC9S12NE64 Data Sheet, Rev 1.0
Low-Power Modes
61

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