AT89C1051 ATMEL | Alldatasheet
Document overview
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Technical content
Features
- Compatible with MCS-51™ Products
- 1K Byte of Reprogrammable Flash Memory – Endurance: 1,000 Write/Erase Cycles
- 2.7V to 6V Operating Range
- Fully Static Operation: 0 Hz to 24 MHz
- Two-Level Program Memory Lock
- 64 bytes SRAM
- 15 Programmable I/O Lines
- One 16-Bit Timer/Counter
- Three Interrupt Sources
- Direct LED Drive Outputs
- On-Chip Analog Comparator
- Low Power Idle and Power Down Modes
Description
The AT89C1051 is a low-voltage, high-performance CMOS 8-bit microcomputer with 1K byte of Flash programmable and erasable read only memory (PEROM). The device is manufactured using Atmel’s high density nonvolatile memory technology and is compatible with the industry standard MCS-51™ instruction set. By combining a versatile 8-bit CPU with Flash on a monolithic chip, the Atmel AT89C1051 is a pow- erful microcomputer which provides a highly flexible and cost effective solution to many embedded control applications. The AT89C1051 provides the following standard features: 1K Byte of Flash, 64 bytes of RAM, 15 I/O lines, one 16-bit timer/counter, a three vector two-level interrupt archi- tecture, a precision analog comparator, on-chip oscillator and clock circuitry. In addi- tion, the AT89C1051 is designed with static logic for operation down to zero frequency and supports two software selectable power saving modes. The Idle Mode stops the CPU while allowing the RAM, timer/counters, serial port and interrupt system to con- tinue functioning. The Power Down Mode saves the RAM contents but freezes the oscillator disabling all other chip functions until the next hardware reset. 0366D-A–12/97 8-Bit Microcontroller with 1K Byte Flash AT89C1051 Pin Configuration PDIP/SOIC
RAM ADDR. REGISTER INSTRUCTION REGISTER B REGISTER INTERRUPT, AND TIMER BLOCKS STACK POINTERACC TMP2 TMP1 ALU PSW TIMING AND CONTROL PORT 3 LATCH PORT 3 DRIVERS P3.0 - P3.5 P3.7 PORT 1 LATCH PORT 1 DRIVERS P1.0 - P1.7 OSC GND RST ANALOG COMPARATOR VCC
tion Register (SFR) space is shown in the table below. cupied addresses may not be implemented on the chip. the new bits will always be 0. certain instructions to program this device. memory), whereas LJMP 410H would not. Table 1. AT89C1051 SFR Map and Reset Values
- Branching instructions: LCALL, LJMP, ACALL, AJMP, SJMP, JMP @A+DPTR These unconditional branching instructions will execute correctly as long as the programmer keeps in mind that the destination branching address must fall within the physical boundaries of the program memory size (locations 00H to 3FFH for the 89C1051). Violating the physical space limits may cause unknown program behavior. these conditional branching instructions the same rule above applies. Again, violating the memory boundaries may cause erratic execution. For applications involving interrupts the normal interrupt service routine address locations of the 80C51 family archi- tecture have been preserved. 2. MOVX-related instructions, Data Memory: The AT89C1051 contains 64 bytes of internal data mem- ory. Thus, in the AT89C1051 the stack depth is limited to 64 bytes, the amount of available RAM. External DATA memory access is not supported in this device, nor is exter- nal PROGRAM memory execution. Therefore, no MOVX [...] instructions should be included in the program. A typical 80C51 assembler will still assemble instructions, even if they are written in violation of the restrictions men- tioned above. It is the responsibility of the controller user to know the physical features and limitations of the device being used and adjust the instructions used correspond- ingly. Program Memory Lock Bits On the chip are two lock bits which can be left unpro- grammed (U) or can be programmed (P) to obtain the addi- tional features listed in the table below: Lock Bit Protection Modes(1) Note: 1. The Lock Bits can only be erased with the Chip Erase operation. Idle Mode In idle mode, the CPU puts itself to sleep while all the on- chip peripherals remain active. The mode is invoked by software. The content of the on-chip RAM and all the spe- cial functions registers remain unchanged during this mode. The idle mode can be terminated by any enabled interrupt or by a hardware reset. P1.0 and P1.1 should be set to ‘0’ if no external pullups are used, or set to ‘1’ if external pullups are used. It should be noted that when idle is terminated by a hard- ware reset, the device normally resumes program execu- tion, from where it left off, up to two machine cycles before the internal reset algorithm takes control. On-chip hardware inhibits access to internal RAM in this event, but access to the port pins is not inhibited. To eliminate the possibility of an unexpected write to a port pin when Idle is terminated by reset, the instruction following the one that invokes Idle should not be one that writes to a port pin or to external memory. Power Down Mode In the power down mode the oscillator is stopped, and the instruction that invokes power down is the last instruction executed. The on-chip RAM and Special Function Regis- ters retain their values until the power down mode is termi- nated. The only exit from power down is a hardware reset. Reset redefines the SFRs but does not change the on-chip RAM. The reset should not be activated before V CC is restored to its normal operating level and must be held active long enough to allow the oscillator to restart and sta- bilize. P1.0 and P1.1 should be set to ’0’ if no external pullups are used, or set to ’1’ if external pullups are used. Programming The Flash The AT89C1051 is shipped with the 1K byte of on-chip PEROM code memory array in the erased state (i.e., con- tents = FFH) and ready to be programmed. The code mem- ory array is programmed one byte at a time. Once the array is programmed, to re-program any non-blank byte, the entire memory array needs to be erased electrically. Internal Address Counter: The AT89C1051 contains an internal PEROM address counter which is always reset to 000H on the rising edge of RST and is advanced by apply- ing a positive going pulse to pin XTAL1. Program Lock Bits LB1 LB2 Protection Type 1 U U No program lock features.
2 P U Further programming of the Flash
is disabled.
3 P P Same as mode 2, also verify is
disabled.
Programming Algorithm: To program the AT89C1051, the following sequence is recommended. 1. Power-up sequence: Apply power between VCC and GND pins Set RST and XTAL1 to GND 2. Set pin RST to ‘H’ Set pin P3.2 to ‘H’ 3. Apply the appropriate combination of ‘H’ or ‘L’ logic levels to pins P3.3, P3.4, P3.5, P3.7 to select one of the programming operations shown in the PEROM Pro- gramming Modes table. To Program and Verify the Array: 4. Apply data for Code byte at location 000H to P1.0 to P1.7. 5. Raise RST to 12V to enable programming. 6. Pulse P3.2 once to program a byte in the PEROM array or the lock bits. The byte-write cycle is self-timed and typically takes 1.2 ms. 7. To verify the programmed data, lower RST from 12V to logic ‘H’ level and set pins P3.3 to P3.7 to the appropiate levels. Output data can be read at the port P1 pins. 8. To program a byte at the next address location, pulse XTAL1 pin once to advance the internal address counter. Apply new data to the port P1 pins. 9. Repeat steps 5 through 8, changing data and advancing the address counter for the entire 1K byte array or until the end of the object file is reached. 10.Power-off sequence: set XTAL1 to ‘L’ set RST to ‘L’ Turn V CC power off Data Polling: The AT89C1051 features Data Polling to indicate the end of a write cycle. During a write cycle, an attempted read of the last byte written will result in the com- plement of the written data on P1.7. Once the write cycle has been completed, true data is valid on all outputs, and the next cycle may begin. Data Polling may begin any time after a write cycle has been initiated. Ready/Busy : The Progress of byte programming can also be monitored by the RDY/BSY output signal. Pin P3.1 is pulled low after P3.2 goes High during programming to indi- cate BUSY. P3.1 is pulled High again when programming is done to indicate READY. Program Verify: If lock bits LB1 and LB2 have not been programmed code data can be read back via the data lines for verification: 1. Reset the internal address counter to 000H by bringing RST from ’L’ to ’H’. 2. Apply the appropriate control signals for Read Code data and read the output data at the port P1 pins. 3. Pulse pin XTAL1 once to advance the internal address counter. 4. Read the next code data byte at the port P1 pins. 5. Repeat steps 3 and 4 until the entire array is read. The lock bits cannot be verified directly. Verification of the lock bits is achieved by observing that their features are enabled. Flash Programming Modes Note: 1. The internal PEROM address counter is reset to 000H on the rising edge of RST and is advanced by a positive pulse at XT AL1 pin. 2. Chip Erase requires a 10-ms PROG pulse. 3. P3.1 is pulled Low during programming to indicate RDY/BSY. Write Code Data(1)(3) 1 2 V LHHH Read Code Data(1) HH L L H H W r i t e L o c k B i t - 1 1 2 V HHHH Bit-2 12V H H L L C h i p E r a s e 1 2 V HLLL R e a d S i g n a t u r e B y t e H H LLLL (2)
blank memory byte can be re-programmed. Figure 3. Programming the Flash Memory Figure 4. Verifying the Flash Memory
Flash Programming and Verification Characteristics TA = 0°C to 70°C, VCC = 5.0 ± 10% Note: Only used in 12-volt programming mode. Flash Programming and Verification Waveforms Symbol Parameter Min Max Units VPP Programming Enable Voltage 11.5 12.5 V IPP Programming Enable Current 250 µA tDVGL Data Setup to PROG Low 1.0 µs tGHDX Data Hold After PROG 1.0 µs tEHSH P3.4 (ENABLE) High to VPP 1.0 µs tSHGL VPP Setup to PROG Low 10 µs tGHSL VPP Hold After PROG 10 µs tGLGH PROG Width 1 110 µs tELQV ENABLE Low to Data Valid 1.0 µs tEHQZ Data Float After ENABLE 01 . 0 µs tGHBL PROG High to BUSY Low 50 ns tWC Byte Write Cycle Time 2.0 ms tBHIH RDY/BSY to Increment Clock Delay 1.0 µs tIHIL Increment Clock High 200 ns
TA = -40°C to 85°C, VCC = 2.7V to 6.0V (unless otherwise noted) Notes: 1. Under steady state (non-transient) conditions, IOL must be externally limited as follows: Maximum IOL per port pin: 20 mA Maximum total IOL for all output pins: 80 mA If IOL exceeds the test condition, VOL may exceed the related specification. Pins are not guaranteed to sink current greater than the listed test conditions. 2. Minimum VCC for Power Down is 2V . Maximum Ratings” may cause permanent dam- age to the device. This is a stress rating only and functional operation of the device at these or any other conditions beyond those indicated in the operational sections of this specification is not implied. Exposure to absolute maximum rating conditions for extended periods may affect device reliability. Voltage on Any Pin Symbol Parameter Condition Min Max Units VIL Input Low Voltage -0.5 0.2 V CC - 0.1 V VIH Input High Voltage (Except XT AL1, RST) 0.2 V CC + 0.9 V CC + 0.5 V VIH1 Input High Voltage (XT AL1, RST) 0.7 V CC VCC + 0.5 V VOL Output Low Voltage(1) (Ports 1, 3) IOL = 20 mA, VCC = 5V IOL = 10 mA, VCC = 2.7V 0.50 V VOH Output High Voltage (Ports 1, 3) IOH = -80 µA, VCC = 5V ± 10% 2.4 V IOH = -30 µA0 . 7 5 V CC V IOH = -12 µA 0.9 V CC V IIL Logical 0 Input Current (Ports 1, 3) VIN = 0.45V -50 µA ITL Logical 1 to 0 T ransition Current (Ports 1, 3) VIN = 2V , VCC = 5V ± 10% -750 µA ILI Input Leakage Current (Port P1.0, P1.1) 0 < VIN < VCC ±10 µA VOS Comparator Input Offset Voltage VCC = 5V 20 mV VCM Comparator Input Common Mode Voltage 0V CC V RRST Reset Pulldown Resistor 50 300 K Ω C IO Pin Capacitance T est Freq. = 1 MHz, T A = 25°C 10 pF ICC Power Supply Current Active Mode, 12 MHz, V CC = 6V/3V 15/5.5 mA Idle Mode, 12 MHz, VCC = 6V/3V P1.0 & P1.1 = 0V or VCC 5/1 mA Power Down Mode(2) VCC = 6V P1.0 & P1.1 = 0V or VCC 100 µA VCC = 3V P1.0 & P1.1 = 0V or VCC 20 µA
Float Waveforms(1) Note: 1. For timing purposes, a port pin is no longer float- ing when a 100 mV change load voltage occurs. A port pin begins to float when a 100 mV change from the loaded V OH /VOL level occurs. AC Testing Input/Output Waveforms(1) Note: 1. AC Inputs during testing are driven at VCC - 0.5V for a logic 1 and 0.45V for a logic 0. Timing measurements are made at VIH min. for a logic 1 and VIL max. for a logic 0. External Clock Drive Waveforms External Clock Drive Symbol Parameter V CC = 2.7V to 6.0V V CC = 4.0V to 6.0V Units Min Max Min Max 1/tCLCL Oscillator Frequency 0 12 0 24 MHz tCLCL Clock Period 83.3 41.6 ns tCHCX High Time 30 15 ns tCLCX Low Time 30 15 ns tCLCH Rise Time 20 20 ns tCHCL Fall Time 20 20 ns
Notes: 1. XT AL1 tied to GND for ICC (power down) 2. P .1.0 and P1.1 = VCC or GND 3. Lock bits programmed AT89C1051 TYPICAL ICC - ACTIVE (85°C) 0 6 12 18 24 FREQUENCY (MHz) I C C m A Vcc=6.0V Vcc=5.0V Vcc=3.0V AT89C1051 TYPICAL ICC - IDLE (85°C) 0369 1 2 FREQUENCY (MHz) I C C m A Vcc=6.0V Vcc=5.0V Vcc=3.0V AT89C1051 TYPICAL ICC vs. VOLTAGE- POWER DOWN (85°C) 3.0V 4.0V 5.0V 6.0V Vcc VOLTAGE I C C µ A
Ordering Information
(MHz) Power Supply Ordering Code Package Operation Range 12 2.7V to 6.0V A T89C1051-12PC AT89C1051-12SC 20P3 20S Commercial (0°C to 70°C) AT89C1051-12PI AT89C1051-12SI 20P3 20S Industrial (-40°C to 85°C) AT89C1051-12P A AT89C1051-12SA 20P3 20S Automotive (-40°C to 105°C) 24 4.0V to 6.0V A T89C1051-24PC AT89C1051-24SC 20P3 20S Commercial (0°C to 70°C) AT89C1051-24PI AT89C1051-24SI 20P3 20S Industrial (-40°C to 85°C) Package Type 20P3 20 Lead, 0.300” Wide, Plastic Dual In-line Package (PDIP) 20S 20 Lead, 0.300” Wide, Plastic Gull Wing Small Outline (SOIC)