LC88F5LA4ACS SANYO | Alldatasheet
Document overview
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Technical content
Features
Xstromy16 CPU
- 4G-byte address space
- General-purpose registers: 16 bits × 16registers Flash ROM
- Capable of onboard programming with a wide range of voltage levels (2.6 to 3.6V).
- Block-erasable in 128 or 1K byte units.
- Data written in 2-byte units.
- 98304 × 8 bits RAM
- 6144 × 8 bits CMOS IC FROM 96K byte, RAM 6K byte on-chip 16-bit 1-chip Microcontroller * This product is licensed from Silicon Storage Technology, Inc. (USA), and manufactured and sold by SANYO Semiconductor Co., Ltd. Specifications of any and all SANYO Semiconductor Co.,L td. products described or contained herein stipulate the performance, characteristics, and functions of the described products in the independent state, and are not guarantees of the performance, characteristics, and functions of the described products as mounted in the customer's products or equipment. To verify symptoms and states that cannot be evaluated in an independent device, the customer should always evaluate and test devices mounted in the customer 'sp r o d u c t so r equipment. Any and all SANYO Semiconductor Co.,Ltd. products described or contained herein are, with regard to "standard application", intended for the use as general el ectronics equipment (home appliances, AV equipment, communication device, office equipment, industrial equipment etc.). The products mentioned herein shall not be intended for use for any "special application" (medica l equipment whose purpose is to sustain life, aerospace instrument, nuclear control device, burning appliances, t ransportation machine, traffic signal system, safety equipment etc.) that shall require extremely high level of reliability and can directly threaten human lives in case of failure or malfunction of the product or may cause har m to human bodies, nor shall they grant any guarantee thereof. If you should intend to use our products for app lications outside the standard applications of our customer who is considering such use and/or outside the scope of our intended standard applications, please consult with us prior to the intended use. If there is n o consultation or inquiry before the intended use, our customer shall be solely responsible for the use.
No.A1860-2/33 Minimum instruction cycle time (tCYC)
- 100ns (10MHz) V DD = 2.6 to 3.6V
- 250ns (4MHz) V DD = 2.2 to 3.6V Ports
- Normal withstand voltage I/O ports Ports whose I/O direction can be designated in 1 bit units : 33 (P0n P1n, P20 to P25, P3n, P60 to P62)
- Oscillation/normal withstand voltage I/O ports : 2 (PC0, PC1)
- Oscillation pins : 2 (CF1, CF2)
- Reset pins : 1 (RESB)
- TEST pins : 1 (TEST)
- Power pins : 7 (V SS1 to 2, VSSA, VDD1 to 3, VDDA) Timers
- Timer 0: 16-bit timer that supports PWM/toggle outputs 1) 5-bit prescaler 2) 8-bit PWM × 2, 8-bit timer + 8-bit PWM mode selectable 3) Clock source selectable from system clock, OSC0, OSC1, and internal RC oscillator
- Timer 1: 16-bit timer with capture registers 1) 5-bit prescaler 2) May be divided into 2 channels of 8-bit timer 3) Clock source selectable from system clock, OSC0, OSC1, and internal RC oscillator
- Timer 2: 16-bit timer with capture registers 1) 4-bit prescaler 2) May be divided into 2 channels of 8-bit timer 3) Clock source selectable from system clock, OSC0, OSC1, and external events
- Timer 3: 16-bit timer that supports PWM/toggle outputs 1) 8-bit prescaler 2) 8-bit timer × 2ch or 8-bit timer + 8-bit PWM mode selectable 3) Clock source selectable from system clock, OSC0, OSC1, and external events
- Timer 4: 16-bit timer that supports toggle outputs 1) Clock source selectable from system clock and prescaler 0
- Timer 5: 16-bit timer that supports toggle outputs 1) Clock source selectable from system clock and prescaler 0 * Prescaler 0 and 1 are consisted of 4 bits and can choose their clock source from OSC0 or OSC1.
- Base timer 1) Clock may be selected from OSC0 (32.768kHz crystal oscillator) and frequency-divided output of system clock. 2) Interrupts can be generated in 7 timing schemes. Real time clock 1) Calender with Jan. 1, 2000 to Dec.31, 2799 including automatic leap year calculation function. 2) Consisted of Independent second- minute-hour-day-month-year-century counters. 3) Programmable count-clock calibration function.
No.A1860-3/33 Serial interfaces
- SIO0: 8-bit synchronous SIO 1) LSB first/MSB first mode selectable 2) Supports data communication with a data length of 8 bits or less (1 to 8 bits specifiable) 3) Built-in 8-bit baudrate generator (4 tCYC to 512 tCYC transfer clocks) 4) Continuous/automatic data transmission (9- to 32768-bit units specifiable) 5) Interval function (intervals specifiable in 0 to 64 tSCK units) 6) Wakeup function
- SIO1: 8-bit synchronous SIO 1) LSB first/MSB first mode selectable 2) Supports data communication with a data length of 8 bits or less (1 to 8 bits specifiable) 3) Built-in 8-bit baudrate generator (4 tCYC to 512 tCYC transfer clocks) 4) Continuous/automatic data transmission (9- to 32768-bit units specifiable) 5) Interval function (intervals specifiable in 0 to 64 tSCK units) 6) Wakeup function
- SMIIC0: Single master I 2C/8-bit synchronous SIO Mode 0: Single-master mode communication Mode 1: Synchronous 8-bit serial I/O (MSB first)
- SLIIC0: Slave I2C/8-bit synchronous SIO Mode 0: I2C slave mode communication Mode 1: Synchronous 8-bit serial I/O (MSB first) Note: usable only with the external clock source
- UART0 1) Data length : 8 bits (LSB first) 2) Start bits : 1 bit 3) Stop bits : 1 bit 4) Parity bits : None/even parity/odd parity 5) Transfer rate : 4/8 cycle 6) Baudrate source clock : P07 input signal used as a 1 cycle signal (T0PWMH can be used as a clock source) or Timer 4 cycle. 7) Full duplex communication Note: The “cycle” refers to one period of the baudrate clock source.
- UART2 1) Data length : 8 bits (LSB first) 2) Start bits : 1 bit 3) Stop bits : 1/2 bit 4) Parity bits : None/even parity/odd parity 5) Transfer rate : 8 to 4096 cycle 6) Baudrate source clock : System clock/OSC0/OSC1/P25 input signal 7) Wakeup function 8) Full duplex communication Note: The “cycle” refers to one period of the baudrate clock source.
No.A1860-4/33 AD converter 1) 12/8 bits resolution selectable 2) Analog input: 14 channels 3) Comparator mode Watchdog timer 1) Driven by the base timer + internal watchdog timer dedicated counter 2) Interrupt or reset mode selectable Interrupts (peripheral function)
- 38 sources (24 modules), 13 vector addresses 1) Provides three levels (low (L), high (H), and highest (X)) of multiplex interrupt control. Any interrupt requests of the level equal to or lower than the current interrupt are not accepted. 2) When interrupt requests to two or more vector addresses occur at the same time, the interrupt of the highest level takes precedence over the other interrupts. For interrupts of the same level, the interrupt into the smallest vector address takes precedence. No. Vector Address Module 1 08000H Watchdog timer (1) 2 08004H Base timer (2) 3 08008H Timer 0 (2) 4 0800CH INT0 (1) 5 08014H INT1 (1) 6 08018H INT2 (1)/timer 1 (2)/UART2 (4) 7 0801CH INT3 (1)/timer 2 (4)/SMIIC0 (1)/SLIIC1 (1) 8 08020H INT4 (1)/timer 3 (2) 9 08024H INT5 (1)/timer 4 (1)/SIO1 (2) 10 08030H ADC (1)/timer 5 (1) 11 08034H INT6 (1) 12 08038H INT7 (1)/SIO0 (2)/SIO0(2) 13 0803CH Port 0 (3)/RTC (1)
- 3 priority levels selectable.
- Of interrupts of the same level, the one with the smallest vector address takes precedence.
- A number enclosed in parentheses denotes the number of sources. Subroutine Stack: 6K-byte RAM area
- Subroutine calls that automatically save PSW, interrupt vector calls: 6 bytes
- Subroutine calls that do not automatically save PSW: 4 bytes Multiplication/division instructions
- 16 bits × 16 bits (18 tCYC execution time)
- 16 bits ÷ 16 bits (18 to 19 tCYC execution time)
- 32 bits ÷ 16 bits (18 to 19 tCYC execution time) Oscillator circuits
- RC oscillator circuit (internal): For system clock
- CF oscillator circuit (built-in Rf circuit): For system clock (OSC1)
- VMRC oscillator circuit: For system clock (OSC1)
- Crystal oscillator circuit (built-in Rf circuit): For low-speed system clock (OSC0)
- SLRC oscillator circuit (internal): For system clock (In the case of exception processing) System clock divider function
- Can run on low current.
- 1/1 to 1/128 of the system clock frequency can be set.
No.A1860-5/33 Standby Function
- HALT mode: Halts instruction execution while allowing the peripheral circuits to continue operation. 1) Oscillation is not halted automatically. 2) Released by a system reset or occurrence of an interrupt.
- HOLD mode: Suspends instruction execution and the operation of the peripheral circuits. 1) OSC1, RC and OSC0 oscillators automatically stop. 2) There are the six ways of releasing the HOLD mode. (1) Setting the reset pin to the low level (2) Setting at least one of the INT0, INT1, INT2, INT3, INT4, INT5, INT6, and INT7 pins to the specified level (3) Having an interrupt source established at port 0 (4) Having an interrupt established at SIO0 or SIO1 (5) Having an interrupt established at UART2
- HOLDX mode: Suspends instruction execution and the operation of the peripheral circuits except those which run on OSC0. 1) OSC1 and RC oscillations automatically stop. 2) OSC0 maintains the state that is established when the HOLDX mode is entered. 3) There are seven ways of releasing the HOLDX mode. (1) Setting the reset pin to the low level (2) Setting at least one of the INT0, INT1, INT2, INT3, INT4, INT5, INT6, and INT7 pins to the specified level (3) Having an interrupt source established at port 0 (4) Having an interrupt source established at the base timer circuit (5) Having an interrupt established at SIO0 or SIO1 (6) Having an interrupt established at UART2 On-chip debugger function
- Supports software debugging with the IC mounted on the target board.
- Supports source line debugging and tracing functions, and breakpoint setting and real time display.
- Single-wire communication Power supply voltage
- VDD1, 2 : 2.2 to 3.6V.
- VDD3 : (I/O) 1.6 to 3.6V. * Voltage of VDD3 must be lower than VDD1. Package Form
- WLP46 (3.03 × 3.03): Lead-free and halogen-free type Development Tools
- On-chip debugger: EOCUIF1 + LC88F5LA4A
No.A1860-6/33 Package Dimensions unit : mm (typ) 3404 Pin Assignment SANYO: WLP46 (3.03×3.03) (Lead-free and halogen-free type) LC88F5LA4ACS G F E D C B A Top view Bottom view SANYO : WLP46(3.03X3.03) SIDE VIEW TOP VIEW SIDE VIEW BOTTOM VIEW 0.26 ABCEDFG
0.68 MAX
0.2 3.03 1234567 3.03 0.4 0.315 0.3150.4
No.A1860-7/33 No. Name No. Name No. Name G1 TEST B4 P04/P04INT F7 P12/SCK0 E2 RESB D3 P05/P05INT F6 P13/U0TX F1 V SSA A5 P06/T0PWML G7 P14/T3OL/U0RX/INT2 E1 V SS1 B5 P07/T0PWMH/U0BRG E5 P15/T3OH/INT3 D2 PC0/XT1 A6 P37/T4O G6 P16/U2RX D1 PC1/XT2 C5 P36/SCK1 F5 P17/U2TX C1 V DD1 A7 P35/SI1/SB1 G5 P62 C2 V DDA B6 P34/SO1 F4 V DD3 B1 CF1 B7 P33/SM0DA G4 P20/INT4 A1 CF2 C6 P32/SM0CK E3 P21/INT5 B2 P00/P0INT/AN0 C7 P31/INT1/SM0DO G3 P22/SL0CK A2 P01/P0INT/AN1 D6 V DD2 F3 P23/SL0DA B3 P60/AN2 D7 V SS2 G2 P24/SL0DO/INT6 A3 P61/AN3 D5 P30/INT0 F2 P25/INT7/T5O C3 P02/P0INT E7 P10/SO0 A4 P03/P0INT E6 P11/SI0/SB0
No.A1860-8/33 System Block Diagram Clock generator CF RC X’tal Port 0 Port 1 SIO0 SIO1 SLIIC0 Timer 0 Timer 1 Timer 2 Timer 3 Port 2 Port 3 UART0 Timer 4 On-chip debugger Port 6 Xstromy16 CPU RAM FLASH ROM Base timer Watchdog timer INT0 to INT7 Timer 5 Low speed RC UART2 SMIIC0 AD RTC Port C VMRC
No.A1860-9/33 Pin Description Pin Name I/O Description VSS1, VSS2 - - Power supply VSSA - - Power supply for AD VDD1, VDD2 - + Power supply VDD3 - + Power supply for port2’s I/O VDDA - + Power supply for AD Port 0 P00 to P07 I/O • 8-bit I/O port
- I/O specifiable in 1-bit units
- Pull-up resistors can be turned on and off in 1 bit units
- HOLD release input (P00 to P03, P04, P05)
- Port 0 interrupt input (P00 to P03, P04, P05)
- Pin functions AN0 (P00) to AN1 (P01): AD converter input port P06: Timer 0L output P07: Timer 0L output/UART0 clock input Port 1 P10 to P17 I/O • 8-bit I/O port
- I/O specifiable in 1-bit units
- Pull-up resistors can be turned on and off in 1 bit units
- Pin functions P10: SIO0 data output P11: SIO0 data input/pulse input/output P12: SIO0 clock input/output P13: UART0 transmit P14: Timer 3L output/UART0 receive/ INT2 input/HOLD release/timer 2 event input/timer 2L capture input P15: Timer 3H output/ INT3 input/HOLD release/timer 2 event input/timer 2H capture input P16: UART2 receive P17: UART2 transmit Interrupt acknowledge type INT2, INT3: H level, L level, H edge, L edge, both edges Port 2 P20 to P25 I/O • 6-bit I/O port
- I/O specifiable in 1-bit units
- Pull-up resistors can be turned on and off in 1 bit units
- Pin functions P20: INT4 input/HOLD release input/timer 3 event input/timer 2L capture input/timer 2H capture input P21: INT5 input/HOLD release input/timer 3 event input/timer 2L capture input/timer 2H capture input P22: SLIIC0 clock input/output P23: SLIIC0 bus input/output/data input P24: SLIIC0 data output (used in 3-wire SIO mode)/ INT6 input/HOLD release input P25: Timer 5 output/ INT7 input/HOLD release input Interrupt acknowledge type INT4, INT5, INT6, INT7: H level, L level, H edge, L edge, both edges Port 3 P30 to P37 I/O • 8-bit I/O port
- I/O specifiable in 1-bit units
- Pull-up resistors can be turned on and off in 1 bit units
- Pin functions P30: INT0 input/HOLD release/timer 2L capture input P31: INT1 input/HOLD release/timer 2H capture input/SMIIC0 data output (used in 3-wire SIO mode) P32: SMIIC0 clock input/output P33: SMIIC0 bus input/output/data input P34: SIO1 data output P35: SIO1 data input/bus input/output P36: SIO1 clock input/output P37: Timer 4 output Interrupt acknowledge type INT0, INT1: H level, L level, H edge, L edge, both edges Continued on next page.
No.A1860-10/33 Continued from preceding page. Pin Name I/O Description Port 6 P60 to P62 I/O • 3-bit I/O port
- I/O specifiable in 1-bit units
- Pull-up resistors can be turned on and off in 1 bit units
- Pin functions AN2 (P60) to AN3 (P61): AD converter input port Port C PC0 to PC1 I/O • 2-bit I/O port
- I/O specifiable in 1-bit units
- Pin functions PC0: 32.768kHz crystal oscillator input (XT1) PC1: 32.768kHz crystal oscillator output (XT2) TEST I/O • TEST pin
- Used to communicate with on-chip debugger.
- Connects an external 100kΩ pull-down resistor. RESB I Reset pin CF1 I Ceramic resonator input pin CF2 O Ceramic resonator output pin Port Output Types The table below lists the types of port outputs and the presence/absence of a pull-up resistor. Data can be read into any input port even if it is in the output mode. Port Name Option Selected in Units of Output Type Pull-up Resistor P00 to P07 P60 to P62 CMOS P10 to P17 P20 to P25 P30 to P37 1 bit Able to program special functions’ output type from CMOS output or Nch-opendrain Programmable PC0 - N-channel open drain (32.768kHz crystal oscillator input) None PC1 - Nch-open drain (32.768kHz crystal oscillator output) None * Make the following connection to minimize the noise input to the VDD1 pin and prolong the backup time. * Power supply must be VDD1 ≤ VDD3. * Be sure to electrically short the VSS1, VSS2 and VSSA pins. Example 1: When data is being backed up in the HOLD mode, the H level signals to the output ports are fed by the backup capacitors. LSI Power supply VSS1 For Backup VSS2V SSA VDD3 VDDA VDD1 VDD2 Power supply
No.A1860-11/33 Example 2: When data is being backed up in the HOLD mode, the H level output at any ports is not sustained and is unpredictable. Specification Parameter Symbol Applicable Pin /Remarks Conditions VDD[V] min typ max unit VDD max V DD1, VDD2, VDDA V DD1=VDD2=VDDA -0.3 +4.0 Maximum supply voltage VDD3 max V DD3 V DD3≤VDD -0.3 +4.0 Input voltage V I(1) CF1, RESB -0.3 VDD +0.3 VIO(1) Ports 0, 1, 3 Port 6 PC0, PC1 -0.3 VDD +0.3 Input/output voltage VIO(2) Ports 2 V DD3≤VDD -0.3 VDD3 +0.3 V IOPH (1) P04 to P07, P62 Ports 1, 2, 3 CMOS output selected Per applicable pin -7.5 Peak output current IOPH (2) P00 to P03 P60 to P61 Per applicable pin -4.5 IOMH (1) P04 to P07, P62 Ports 1, 2, 3 CMOS output selected Per applicable pin -5 Average output current (Note 1-1) IOMH (2) P00 to P03 P60 to P61 Per applicable pin -2.5 ΣIOAH (1) P60 to P61 P00 to P03 Total of currents at applicable pins -10 ΣIOAH (2) P04 to P07 P31 to p37 Total of currents at applicable pins -15 ΣIOAH (3) Port 1 P30, P62 Total of currents at applicable pins -15 ΣIOAH (4) P04 to P07, P62 Ports 1, 3 Total of currents at applicable pins -30 High level output current Total output current ΣIOAH (5) Port 2 Total of currents at applicable pins -15 mA Note 1-1: Average output current refers to the average of output currents measured for a period of 100ms. Continued on next page. For backup VDD3 VDDA VDD1 LSI VSS1V SS2V SSA VDD2 Power supply Power supply
No.A1860-12/33 Continued from preceding page. Specification Parameter Symbol Applicable Pin /Remarks Conditions VDD[V] min typ max unit IOPL(1) P04 to P07, P62 Ports 1, 2, 3 Per applicable pin 12.5Peak output current IOPL(2) P00 to P03 P60 to P61 PC0 to PC1 Per applicable pin 7.5 IOML(1) P04 to P07, P62 Port 1, 2, 3 Per applicable pin 10Average output current (Note 1-1) IOML(2) P00 to P03 P60 to P61 PC0 to PC1 Per applicable pin ΣIOAL(1) PC0 to PC1 Total of currents at applicable pins 10 ΣIOAL(2) P60 to P61 P00 to P03 Total of currents at applicable pins 10 ΣIOAL(3) P00 to P03 P60 to P61 PC0 to PC1 Total of currents at applicable pins 15 ΣIOAL(4) P04 to P07 P31 to P37 Total of currents at applicable pins 30 ΣIOAL(5) Ports 1, 2 P30, P62 Total of currents at applicable pins 60 Low level output current Total output current ΣIOAL(6) P04 to P07, P62 Ports 1, 2, 3 Total of currents at applicable pins 80 mA Allowable power dissipation Pd max WLP46 (3.03 ×3.03) Ta=-40 to +85 °C With thermal resistance board (Note 1-2) T.B.D mW Operating ambient temperature Topr -40 +85 Storage ambient temperature Tstg -55 +125 Note 1-1: Average output current refers to the average of output currents measured for a period of 100ms. Note 1-2: Thermal resistance board is used.
No.A1860-13/33 Allowable Operating Conditions at Ta = -40°C to +85°C, VSS1 = VSS2 = VSSA = 0V Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit 0.098μs≤tCYC≤66μs 2.6 3.6Operating supply voltage (Note 2-1) VDD(1) V DD1=VDD2=VDDA 0.245μs≤tCYC≤66μs 2.2 3.6 Memory sustaining supply voltage VHD V DD1=VDD2=VDDA RAM and register contents sustained in HOLD mode 1.8 3.6 VIH(1) Ports 0, 1, 3, 6 2.2 to 3.6 0.7V DD V DD VIH(2) CF1, RESB PC0, PC1 2.2 to 3.6 0.75V DD V DD VIH(3) P32, P33 I 2C side 2.2 to 3.6 0.7V DD V DD High level input voltage VIL(1) Ports 0, 1, 3, 6 2.2 to 3.6 V SS 0.25V DD VIL(2) CF1, RESB PC0, PC1 2.2 to 3.6 V SS 0.25V DD VIL(3) P32, P33 I 2C side 2.2 to 3.6 V SS 0.3V DD Low level input voltage V 2.6 to 3.6 0.098 66Instruction cycle time (Note 2-2) tCYC 2.2 to 3.6 0.245 66 μs 2.6 to 3.6 0.1 10
- CF2 pin open
- System clock frequency division ratio = 1/1
- External system clock DUTY50±5% 2.2 to 3.6 0.1 4 2.6 to 3.6 0.2 20 External system clock frequency FEXCF(1) CF1
- CF2 pin open
- System clock frequency division ratio = 1/2 2.2 to 3.6 0.2 8 MHz Note 2-1: VDD≥2.6V must be maintained when making onboard programming into flash ROM. Note 2-2: Relationship between tCYC and oscillation frequency is 1/FmCF when frequency division ratio is 1/1 and 2/FmCF when the ratio is 1/2. Continued on next page.
No.A1860-14/33 Continued from preceding page Specification Parameter Symbol Applicable Pin /Remarks Conditions VDD[V] min typ max unit FmCF(1) CF1, CF2 10MHz ceramic oscillator mode See Fig. 1. 2.2 to 3.6 10 FmCF(2) CF1, CF2 4MHz ceramic oscillator mode See Fig. 1. 2.2 to 3.6 4 FmMRC(1) Multivaliable RC oscillation When SEL4M=0 center range setting (Note 2-4) 2.6 to 3.6 7.5 10 12.5 FmMRC(2) Multivaliable RC oscillation When SEL4M=1 center range setting (Note 2-4) 2.2 to 3.6 2 4 6 MHz FmSLRC Internal low-speed RC oscillation 2.2 to 3.6 18 30 45 Oscillation frequency range (Note 2-3) FsX'tal XT1, XT2 32.768kHz crystal oscillator mode kHz Note 2-3: See Tables 1 and 2 for oscillator constant values. Note 2-4: To change to a multivaliable RC oscillation as a system clock, wait more than 20μs oscllation stabilizing time after multivaliable RC oscillation is disabled to enabled.
No.A1860-15/33 Specification Parameter Symbol Applicable/ Remarks Conditions VDD[V] min typ max unit IIH(1) Ports 0, 1, 3, 6 PC0, PC1 RESB Output disabled Pull-up resistor off VIN=VDD (including output Tr. off leakage current) 2.2 to 3.6 1 IIH(2) CF1 V IN=VDD 2.2 to 3.6 15 High level input current IIH(3) Port 2 Output disabled Pull-up resistor off VIN=VDD3 VDD3= 1.6V to 3.6V (including output Tr. off leakage current) 2.2 to 3.6 1 IIL(1) Ports 0, 1, 3, 6 PC0, PC1 RESB Output disabled Pull-up resistor off VIN=VSS (including output Tr. off leakage current) 2.2 to 3.6 -1 IIL(2) CF1 V IN=VSS 2.2 to 3.6 -15 Low level input current IIL(3) Port 2 Output disabled Pull-up resistor off VIN=VSS3 VDD3= 1.6V to 3.6V (including output Tr. off leakage current) 2.2 to 3.6 -1 μA VOH(1) I OH=-0.6mA 2.6 to 3.6 V DD-0.4 VOH(2) Ports 0, 1, 3, 6 IOH=-0.4mA 2.2 to 3.6 V DD-0.4 VOH(3) I OH=-0.6mA VOH(4) I OH=-0.4mA High level output voltage VOH(5) Port 2 IOH=-0.2mA VOL(1) I OL=3.0mA 2.6 to 3.6 0.4 VOL(2) Ports 0, 1, 6 P30 to P31, P34 to P37 IOL=1.3mA 2.2 to 3.6 0.4 VOL(3) P32, P33 I OL=3.0mA 2.2 to 3.6 0.4 VOL(4) I OL=3.0mA VOL(5) P20 to P21, P24 to P25 IOL=1.3mA VOL(6) I OL=3.0mA Low level output voltage VOL(7) P22, P23 IOL=3.0mA V Rpu(1) Ports 0, 1, 3, 6 V OH=0.9VDD 2.2 to 3.6 18 55 150 Rpu(2) V OH=0.9VDD VDD3=2.2V to 3.6V 2.2 to 3.6 18 55 150 Pull-up resistor Rpu(3) Port 2 VOH=0.9VDD VDD3=1.6V to 2.2V 2.2 to 3.6 30 80 200 kΩ VHYS(1) RESB 2.2 to 3.6 0.1V DD VHYS(2) Port 2 V DD3= 1.6V to 3.6V PnFSA=1 or other function is in input state 2.2 to 3.6 0.1V DD3 Hysteresis voltage VHYS(3) Ports 0, 1, 3 PnFSA= 1 or other function is in input state 2.2 to 3.6 0.1V DD V Pin capacitance CP All pins Pi ns other than that under test VIN=VSS, f=1MHz, Ta=25°C 2.2 to 3.6 10 pF
No.A1860-16/33 Serial I/O Characteristics at Ta = -40 to +85°C, VSS1 = VSS2 = VSSA = 0V Serial I/O Characteristics (Wakeup Function Disabled) (Note 4-1-1) Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Period tSCK(1) 4 Low level pulse width tSCKL(1) tSCKH(1)
- See Fig. 6. tSCKHA(1) • Automatic communication mode
- See Fig. 6. tSCKHBSY(1a) • Automatic communication mode
- See Fig. 6. Input clock High level pulse width tSCKHBSY(1b) SCK0 (P12)
- Mode other than automatic communication mode
- See Fig. 6. 2.2 to 3.6 Period tSCK(2) tCYC Low level pulse width tSCKL(2) tSCKH(2)
- CMOS output selected
- See Fig. 6. tSCK tSCKHA(2) • Automatic communication mode
- CMOS output selected
- See Fig. 6. tSCKHBSY(2a) • Automatic communication mode
- CMOS output selected
- See Fig. 6. 4 23 Serial clock Output clock High level pulse width tSCKHBSY(2b) SCK0 (P12)
- Mode other than automatic communication mode
- See Fig. 6. 2.2 to 3.6 tCYC Data setup time tsDI(1) 0.03 Serial input Data hold time thDI(1) SI0 (P11), SB0 (P11)
- Specified with respect to rising edge of SIOCLK
- See Fig. 6. 2.2 to 3.6 0.03 Input clock tdD0(1)
- (Note 4-1-2) 1tCYC +0.05 Serial output Output clock Output delay time tdDO(2) SO0 (P10), SB0 (P11) 1tCYC +0.05 μs Note 4-1-1: These specifications are theoretical values. Add margin depending on its use. Note 4-1-2: Specified with respect to the falling edge of SIOCLK. Specified as the interval up to the time an output change begins in the open drain output mode. See Fig. 6.
No.A1860-17/33 SIO0 Serial Input/Output Characteristics (Wakeup Function Enabled) (Note 4-2-1) Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Period tSCK(3) 2 Low level pulse width tSCKL(3) tSCKH(3) 1 Serial clock Input clock High level pulse width tSCKHBSY(3) SCK0 (P12) • See Fig. 6. 2.2 to 3.6 tCYC Data setup time tsDI(2) 0.03 Serial input Data hold time thDI(2) SI0 (P11), SB0 (P11)
- Specified with respect to rising edge of SIOCLK
- See Fig. 6. 2.2 to 3.6 0.03 Serial output Input clock Output delay time tdD0(3) SO0 (P10), SB0 (P11)
- (Note 4-2-2) 2.2 to 3.6 1tCYC +0.05 μs Note 4-2-1: These specifications are theoretical values. Add margin depending on its use. Note 4-2-2: Specified with respect to the falling edge of SIOCLK. Specified as the interval up to the time an output change begins in the open drain output mode. See Fig.6.
No.A1860-18/33 SIO1 Serial Input/Output Characteristics (Wakeup Function Disabled) (Note 4-3-1) Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Period tSCK(4) 4 Low level pulse width tSCKL(4) tSCKH(4)
- See Fig. 6. tSCKHA(4) • Automatic communication mode
- See Fig. 6. tSCKHBSY(4a) • Automatic communication mode
- See Fig. 6. Input clock High level pulse width tSCKHBSY(4b) SCK1 (P36)
- Mode other than automatic communication mode
- See Fig. 6. 2.2 to 3.6 Period tSCK(5) tCYC Low level pulse width tSCKL(5) tSCKH(5)
- CMOS output selected
- See Fig. 6. tSCK tSCKHA(5) • Automatic communication mode
- CMOS output selected
- See Fig. 6. tSCKHBSY(5a) • Automatic communication mode
- CMOS output selected
- See Fig. 6. 4 23 Serial clock Output clock High level pulse width tSCKHBSY(5b) SCK1 (P36)
- Mode other than automatic communication mode
- See Fig. 6. 2.2 to 3.6 tCYC Data setup time tsDI(3) 0.03 Serial input Data hold time thDI(3) SI1 (P35), SB1 (P25)
- Specified with respect to rising edge of SIOCLK
- See Fig. 6. 2.2 to 3.6 0.03 Input clock tdD0(4)
- (Note 4-3-2) 1tCYC +0.05 Serial output Output clock Output delay time tdDO(5) SO1 (P34), SB1 (P35)
- (Note 4-3-2) 2.2 to 3.6 1tCYC +0.05 μs Note 4-3-1: These specifications are theoretical values. Add margin depending on its use. Note 4-3-2: Specified with respect to the falling edge of SIOCLK. Specified as the interval up to the time an output change begins in the open drain output mode. See Fig. 6.
No.A1860-19/33 SIO1 Serial Input/Output Characteristics (Wakeup Function Enabled) (Note 4-4-1) Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Period tSCK(6) 2 Low level pulse width tSCKL(6) tSCKH(6) 1 Serial clock Input clock High level pulse width tSCKHBSY(6) SCK1 (P36) • See Fig. 6. 2.2 to 3.6 tCYC Data setup time tsDI(4) 0.03 Serial input Data hold time thDI(4) SI1 (P35), SB1 (P35)
- Specified with respect to rising edge of SIOCLK
- See Fig. 6. 2.2 to 3.6 0.03 Serial output Input clock Output delay time tdD0(6) SO1 (P34), SB1 (P35)
- (Note 4-4-2) 2.2 to 3.6 1tCYC +0.05 μs Note 4-4-1: These specifications are theoretical values. Add margin depending on its use. Note 4-4-2: Specified with respect to the falling edge of SIOCLK. Specified as the interval up to the time an output change begins in the open drain output mode. See Fig. 6. SMIIC0 Simple SIO Mode Input/Output Characteristics Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Period tSCK(7) 4 Low level pulse width tSCKL(7) Input clock High level pulse width tSCKH(7) SM0CK (P32) See Fig. 6. 2.2 to 3.6 Period tSCK(8) 4 tCYC Low level pulse width tSCKL(8) Serial clock Output clock High level pulse width tSCKH(8) SM0CK (P32) • CMOS output selected
- See Fig. 6. 2.2 to 3.6 tSCK Data setup time tsDI(5) 0.03 Serial input Data hold time thDI(5) SM0DA (P33) • Specified with respect to rising edge of SIOCLK
- See Fig. 6. 2.2 to 3.6 0.03 Serial output Output delay time tdD0(7) SM0DO (P34), SM0DA (P33)
- Specified with respect to falling edge of SIOCLK
- Specified as interval up to time when output state starts changing.
- See Fig. 6. 2.2 to 3.6 1tCYC +0.05 μs Note 4-5-1: These specifications are theoretical values. Add margin depending on its use.
No.A1860-20/33 SMIIC0 I2C Mode Input/Output Characteristics Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Period tSCL Low level pulse width tSCLL 2.5 Input clock High level pulse width tSCLH SM0CK (P32) • See Fig. 8. 2.2 to 3.6 Period tSCLx Tfilt Low level pulse width tSCLLx Clock Output clock High level pulse width tSCLHx SM0CK (P32) • Specified as interval up to time when output state starts changing. 2.2 to 3.6 tSCL SM0CK and SM0DA pins input spike suppression time tsp SM0CK (P32) SM0DA (P33)
- See Fig. 8. 2.2 to 3.6 1 Tfilt Input tBUF SM0CK (P32) SM0DA (P33)
- See Fig. 8.
2.5 Tfilt
- Standard clock mode
- Specified as interval up to time when output state starts changing. 5.5 Bus release time between start and stop Output tBUFx SM0CK (P32) SM0DA (P33)
- High-speed clock mode
- Specified as interval up to time when output state starts changing. 2.2 to 3.6 1.6 μs
- When SMIIC register control bit, SHDS=0
- See Fig. 8. 2.0 Input tHD;STA SM0CK (P32) SM0DA (P33)
- When SMIIC register control bit, SHDS=1
- See Fig. 8. 2.5 Tfilt
- Standard clock mode
- Specified as interval up to time when output state starts changing. 4.1 Start/restart condition hold time Output tHD;STAx SM0CK (P32) SM0DA (P33)
- High-speed clock mode
- Specified as interval up to time when output state starts changing. 2.2 to 3.6 1.0 μs Input tSU;STA SM0CK (P32) SM0DA (P33)
- See Fig. 8.
1.0 Tfilt
- Standard clock mode
- Specified as interval up to time when output state starts changing. 5.5 Restart condition setup time Output tSU;STAx SM0CK (P32) SM0DA (P33)
- High-speed clock mode
- Specified as interval up to time when output state starts changing. 2.2 to 3.6 1.6 μs Continued on next page.
No.A1860-21/33 Continued from preceding page Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Input tSU;STO SM0CK (P32) SM0DA (P33)
- See Fig. 8.
- Standard clock mode
- Specified as interval up to time when output state starts changing. 4.9 Stop condition setup time Output tSU;STOx SM0CK (P32) SM0DA (P33)
- High-speed clock mode
- Specified as interval up to time when output state starts changing. 2.2 to 3.6 1.6 μs Input tHD;DAT SM0CK (P32) SM0DA (P33)
- See Fig. 8. Data hold time Output tHD;DATx SM0CK (P32) SM0DA (P33)
- Specified as interval up to time when output state starts changing. 2.2 to 3.6 1 1.5 Tfilt Input tSU;DAT SM0CK (P32) SM0DA (P33)
- See Fig. 8. Data setup time Output tSU;DATx SM0CK (P32) SM0DA (P33)
- Specified as interval up to time when output state starts changing. 2.2 to 3.6 1tSCL -1.5Tfilt Tfilt Input tF SM0CK (P32) SM0DA (P33)
- See Fig. 8. 2.2 to 3.6 300
- When SMIIC register control bits, PSLW=1, PHV=1 2.8 20 +0.1Cb 250 SM0CK and SM0DA pins fall time Output tF SM0CK (P32) SM0DA (P33)
- SM0CK, SM0DA port output FAST mode
- Cb≤100pF 2.6 to 3.6 100 ns Note 4-6-1: These specifications are theoretical values. Add margin depending on its use. Note 4-6-2: The value of Tfilt is determined by the values of the register SMIC0BRG, bits 7 and 6 (BRP1, BRP0) and the system clock frequency. BRP1 BRP0 Tfilt 0 0 tCYC ×1 0 1 tCYC ×2 1 0 tCYC ×3 1 1 tCYC ×4 Set bits (BPR1, BPR0) so that the value of Tfilt falls between the following range: 250ns ≥ Tfilt >140ns Note 4-6-3: Cb represents the total loads (in pF) connected to the bus pins. Cb ≤ 100pF Note 4-6-4: The standard clock mode refers to a mode that is entered by configuring SMIC0BRG as follows: 250ns ≥ Tfilt >140ns BRDQ (bit5) = 1 SCL frequency setting ≤ 100kHz The high-speed clock mode refers to a mode that is entered by configuring SMIC0BRG as follows: 250ns ≥ Tfilt >140ns BRDQ (bit5) = 0 SCL frequency setting ≤ 400kHz
No.A1860-22/33 SLIIC0 Simple SIO Mode Input/Output Characteristics Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Period tSCK(7) Low level pulse width tSCKL(7) Serial clock Input clock High level pulse width tSCKH(7) SL0CK (P22) See Fig. 8. 2.2 to 3.6 tCYC Data setup time tsDI(5) 0.03 Serial input Data hold time thDI(5) SL0DA (P23) • Specified with respect to rising edge of SIOCLK
- See Fig. 8. 2.2 to 3.6 0.03 Serial output Output delay time tdD0(7) SL0DO (P24), SL0DA (P23)
- Specified with respect to falling edge of SIOCLK
- Specified as interval up to time when output state starts changing.
- See Fig. 8. 2.2 to 3.6 1tCYC +0.05 μs Note 4-7-1: These specifications are theoretical values. Add margin depending on its use. Note 4-7-2: When not specified, VDD3=1.6V to 3.6V (VDD3≤VDD)
No.A1860-23/33 SLIIC1 I2C Mode Input/Output Characteristics Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Period tSCL Low level pulse width tSCLL 2.5 Clock Input clock High level pulse width tSCLH SL0CK (P22) • See Fig. 8. 2.2 to 3.6 Tfilt SL0CK and SL0DA pins input spike suppression time tsp SL0CK (P22) SL0DA (P23)
- See Fig. 8. 2.2 to 3.6 1 Tfilt Bus release time between start and stop Input tBUF SL0CK (P22) SL0DA (P23)
- See Fig. 8. 2.2 to 3.6 2.5 Tfilt
- When SLIIC register control bit, SHDS=0
- See Fig. 8. 2.0 Start/restart condition hold time Input tHD;STA SL0CK (P22) SL0DA (P23)
- When SLIIC register control bit SHDS=1
- See Fig. 8. 2.2 to 3.6 2.5 Tfilt Restart condition setup time Input tSU;STA SL0CK (P22) SL0DA (P23)
- See Fig. 8. 2.2 to 3.6 1.0 Tfilt Stop condition setup time Input tSU;STO SL0CK (P22) SL0DA (P23)
- See Fig. 8. 2.2 to 3.6 1.0 Tfilt Input tHD;DAT SL0CK (P22) SL0DA (P23)
- See Fig. 8. Data hold time Output tHD;DATx SL0CK (P22) SL0DA (P23)
- Specified as interval up to time when output state starts changing. 2.2 to 3.6 1 1.5 Tfilt Input tSU;DAT SL0CK (P22) SL0DA (P23)
- See Fig. 8. Data setup time Output tSU;DATx SL0CK (P22) SL0DA (P23)
- Specified as interval up to time when output state starts changing. 2.2 to 3.6 1tSCL -1.5Tfilt Tfilt Continued on next page.
No.A1860-24/33 Continued from preceding page Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Input tF SM0CK (P32) SM0DA (P33)
- See Fig. 8. 2.2 to 3.6 300
- When SLIIC0 register control bits PSLW=1, PHV=1 When VDD3=2.8V 2.8 to 3.6 20 +0.1Cb 250
- When SLIIC0 register control bits PSLW=1, PHV=1 When VDD=1.8 2.2 to 3.6 20 +0.1Cb 250 SM0CK and SM0DA pins fall time Output tF SM0CK (P32) SM0DA (P33)
- SL0CK, SL0DA port output FAST mode
- Cb≤100pF 2.6 to 3.6 100 ns Note 4-8-1: The value of Tfilt is determined by the values of the register SLIC0PCNT, bits 5 and 4 (BRP1, BRP0) and the system clock frequency. BRP1 BRP0 Tfilt 0 0 tCYC ×1 0 1 tCYC ×2 1 0 tCYC ×3 1 1 tCYC ×4 Set bits (BPR1, BPR0) so that the value of Tfilt falls between the following range: 250ns ≥ Tfilt > 140ns Note 4-8-2: Cb represents the total loads (in pF) connected to the bus pins. Cb ≤ 100pF Note 4-8-3: When not specified, VDD3=1.6V to 3.6V (VDD3≤VDD)
No.A1860-25/33 UART0 Operating Conditions at Ta = -40 to +85°C, VSS1 = VSS2 = VSSA = 0V Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Transfer rate UBR0 U0RX (P13), U0TX (P14), U0BRG (P07) 2.2 to 3.6 4 8 tBGCYC Note 4-9: tBGCYC denotes one cycle of the baudrate clock source. UART2 Operating Conditions at Ta = -40 to +85°C, VSS1 = VSS2 = VSSA = 0V Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Transfer rate UBR2 U2RX (P16), U2TX (P17) 2.2 to 3.6 8 4096 tBGCYC Note 4-10: tBGCYC denotes one cycle of the baudrate clock source. Pulse Input Conditions at Ta = -40 to +85°C, VSS1 = VSS2 = VSSA = 0V Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit tPIH(1) tPIL(1) INT0 (P30), INT1 (P31), INT2 (P14), INT3 (P15), INT4 (P20), INT5 (P21), INT6 (P24), INT7 (P25)
- Interrupt source flag can be set.
- Event inputs for timers 2 and 3 are enabled. 2.2 to 3.6 2 tCYC High/low level pulse width tPIL(2) RESB Resetting is enabled. 2.2 to 3.6 10 μs Note 4-11: When not specified, VDD3=1.6V to 3.6V (VDD3≤VDD)
No.A1860-26/33 AD Converter Characteristics at Ta = -40 to +85°C, VSS1 = VSS2 = VSSA = 0V 12-bit AD Conversion Mode Specification Parameter Symbol Applicable Pin /Remarks Conditions VDD[V] min typ max unit Resolution NAD 2.6 to 3.6 12 bit Absolute accuracy ETAD (Note 6-1) 2.6 to 3.6 ±16 LSB 3.0 to 3.6 32 209Conversion time TCAD12 Conversion time calculated 2.6 to 3.6 67 209 μs Analog input voltage range VAIN 2.6 to 3.6 V SSA V DDAV IAINH VAIN=V DD 2.6 to 3.6 1Analog port input current IAINL AN0 (P00), AN1 (P01), AN2 (P60), AN3 (P61) VAIN=VSS 2.6 to 3.6 -1 μA Conversion time calculation formula: TCAD12= ((52/(AD division ratio))+2) × tCYC 8-bit AD Conversion Mode Specification Parameter Symbol Applicable Pin /Remarks Conditions VDD[V] min typ max unit Resolution NAD 2.6 to 3.6 8 bit Absolute accuracy ETAD (Note 6-1) 2.6 to 3.6 ±1.5 LSB 3.0 to 3.6 20 129Conversion time TCAD8 Conversion time calculated 2.6 to 3.6 42 129 μs Analog input voltage range VAIN 2.6 to 3.6 V SSA V DDAV IAINH VAIN=V DD 2.6 to 3.6 1Analog port input current IAINL AN0 (P00), AN1 (P01), AN2 (P60), AN3 (P61) VAIN=VSS 2.6 to 3.6 -1 μA Conversion time calculation formula: TCAD8= ((32/(AD division ratio))+2) × tCYC Note 6-1: The quantization error (±1/2LSB) is excluded from the absolute accuracy. Note 6-2: The conversion time refers to the interval from the time a conversion starting instruction is issued till the time the complete digital value against the analog input value is loaded in the result register. The conversion time is twice the normal value when one of the following conditions occurs:
- The first AD conversion is executed in the 12-bit AD conversion mode after a system reset.
- The first AD conversion is executed after the AD conversion mode is switched from 8-bit to 12-bit AD conversion mode.
No.A1860-27/33 Consumption Current Characteristics at Ta=-40 to +85°C, VSS1=VSS2=VSSA=0V typ: 3.0V Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit IDDOP(1) • FmCF=10MHz ceramic oscillation mode
- FmMRC=0MHz (oscillation stoped)
- FmX'tal=32.768kHz crystal oscillation mode
- System clock set to 10MHz
- Internal RC oscillation stopped
- 1/1 frequency division mode 2.6 to 3.6 3.89 7.2 IDDOP(2) • FmCF=0Hz (oscillation stopped)
- FmMRC=10MHz oscillator mode
- FmX'tal=32.768kHz crystal oscillation mode
- System clock set to 10MHz
- Internal RC oscillation stopped
- 1/1 frequency division mode 2.6 to 3.6 3.72 6.6 IDDOP(3) • FmCF=0Hz (oscillation stopped)
- FmMRC=4MHz oscillator mode
- FmX'tal=32.768kHz crystal oscillation mode
- System clock set to 4MHz
- Internal RC oscillation stopped
- 1/1 frequency division mode 2.2 to 3.6 2.28 3.2 IDDOP(4) • FmCF=0Hz (oscillation stopped)
- FmMRC=0Hz (oscillation stopped)
- FmX'tal=32.768kHz crystal oscillator mode
- System clock set to internal RC oscillation
- 1/1 frequency division mode 2.2 to 3.6 0.62 1.8 mA Normal mode consumption current (Note 7-1) IDDOP(5) VDD1 =VDD2 =VDDA ≥VDD3
- FmCF=0Hz (oscillation stopped)
- FmMRC=0Hz (oscillation stopped)
- FmX'tal=32.768kHz crystal oscillator mode
- System clock set to 32.768kHz
- Internal RC oscillation stopped
- 1/1 frequency division mode 2.2 to 3.6 24.4 65 μA Note 7-1: The consumption current value includes none of the currents that flow into the output transistor and internal pull-up resistors. Continued on next page.
No.A1860-28/33 Continued from preceding page. Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit IDDHALT(1) • HALT mode
- FmCF=10MHz ceramic oscillation mode
- FmMRC=0MHz (oscillation stoped)
- FmX'tal=32.768kHz crystal oscillation mode
- System clock set to 10MHz
- Internal RC oscillation stopped
- 1/1 frequency division mode 2.6 to 3.6 1.18 2.0 IDDHALT(2) • HALT mode
- FmCF=0Hz (oscillation stopped)
- FmMRC=10MHz oscillator mode
- FmX'tal=32.768kHz crystal oscillation mode
- System clock set to 10MHz
- Internal RC oscillation stopped
- 1/1 frequency division mode 2.6 to 3.6 1.05 1.8 IDDHALT(3) • HALT mode
- FmCF=0Hz (oscillation stopped)
- FmMRC=4MHz oscillator mode
- FmX'tal=32.768kHz crystal oscillation mode
- System clock set to 4MHz
- Internal RC oscillation stopped
- 1/1 frequency division mode 2.2 to 3.6 0.44 0.8 IDDHALT(4) • HALT mode
- FmCF=0Hz (oscillation stopped)
- FmMRC=0Hz (oscillation stopped)
- FmX'tal=32.768kHz crystal oscillator mode
- System clock set to internal RC oscillation
- 1/1 frequency division mode 2.2 to 3.6 0.12 0.5 mA HALT mode consumption current (Note 7-1) IDDHALT(5) VDD1 =VDD2 =VDDA ≥VDD3
- HALT mode
- FmCF=0Hz (oscillation stopped)
- FmMRC=0Hz (oscillation stopped)
- FmX'tal=32.768kHz crystal oscillator mode
- System clock set to 32.768kHz
- Internal RC oscillation stopped
- 1/1 frequency division mode 2.2 to 3.6 8.21 40 HOLD mode consumption current IDDHOLD(1) HOLD mode
- CF1=VDD or open (external clock mode) 2.2 to 3.6 0.02 20 HOLDX mode consumption current IDDHOLD(2) VDD1 HOLDX mode
- CF1=VDD or open (external clock mode)
- FmX'tal=32.768kHz crystal oscillator mode 2.2 to 3.6 5.2 35 μA Note 7-1: The consumption current value includes none of the currents that flow into the output transistor and internal pull-up resistors. F-ROM Programming Characteristics at Ta = +10°C to +55°C, VSS1=VSS2=VSSA=0V Specification Parameter Symbol Applicable Pin/Remarks Conditions VDD[V] min typ max unit Onboard programming current IDDFW(1) V DD1 • Microcontroller erase current current is excluded. 2.6 to 3.6 7 mA tFW(1) • 128-/1K-byte erase operation 2.6 to 3.6 30 ms Onboard programming time tFW(2) • 2-byte programming operation 2.6 to 3.6 60 μs
No.A1860-29/33 Power Pin Treatment Conditions 1 (VDD1, VSS1) Connect capacitors that meet the following conditions between the VDD1 and VSS1 pins:
- Connect among the VDD1 and VSS1 pins and the capacitors C1 and C2 with the shortest possible lead wires, of the same length (L1=L1', L2=L2') wherever possible.
- Connect a large-capacity capacitor C1 and a small-capacity capacitor C2 in parallel. The capacitance of C2 should be approximately 0.1μF or larger.
- The VDD1 and VSS1 traces must be thicker than the other traces. Power Pin Treatment Conditions 2 (VDD(2, 3), VSS(2)) Connect capacitors that meet the following condition between the VDD(2) and VSS(2), VDD(3) and VSS(2) pins:
- Connect among the VDD(2, 3) and VSS(2) pins and the capacitor C3 with the shortest possible lead wires, of the same length (L3=L3') wherever possible.
- The capacitance of C3 should be approximately 0.1μF or larger.
- The VDD(2, 3) and VSS(2) traces must be thicker than the other traces. Power Pin Treatment Conditions 3 (VDDA, VSSA) Connect capacitors that meet the following condition between the VDDA and VSSA pins:
- Connect among the VDDA and VSSA pins and the capacitor C4 with the shortest possible lead wires, of the same length (L4=L4') wherever possible.
- The capacitance of C4 should be approximately 0.1μF or larger.
- The VDDA and VSSA traces must be thicker than the other traces. VSS1 VDD1 L1’ L2’ C1 C2 VSS(2) VDD(2, 3) L3’ VSSA VDDA L4’
No.A1860-31/33 Reset Time and Oscillation Stabilization Time HOLD Release and Oscillation Stabilization Time Figure 4 Oscillation Stabilization Time Timing Charts tmsX'tal tmsCF Internal RC oscillation CF1, CF2 XT1, XT2 State HOLD HALT Instruction execution HOLD release No HOLD release signal HOLD release signal valid Interrupt operation tmsX'tal tmsCF VDD Reset time Power RESB Internal RC oscillation CF1, CF2 XT1, XT2 Operating mode Unpredictable Reset Initialization instruction execution User instruction execution Operating VDD lower limit
No.A1860-33/33 tBUF tHD;STA tLOW tR tHD;DAT tHIGH tF tSU;DAT tSU;STA tHD;STA tsp tSU;STO P S Sr P SDA SCK S: Start condition P: Stop condition Sr: Restart condition Figure 8 I2C Timing SANYO Semiconductor Co.,Ltd. assumes no responsibil ity for equipment failures that result from using products at values that exceed, even momentarily, rated v alues (such as maximum ratings, operating condition ranges, or other parameters) listed in products specifications of any and all SANYO Semiconductor Co.,Ltd. products described or contained herein. SANYO Semiconductor Co.,Ltd. strives to supply high-qua lity high-reliability products, however, any and all semiconductor products fail or malfunction with some probability. It is possible that these probabilistic failures or malfunction could give rise to accident s or events that could endanger human lives, trouble that could give rise to smoke or fire, or accidents that could cause damage to other property. When designing equipment, adopt safety measures so that these kinds of accidents or events cannot occur. Such measures include but are not limited to protective circuits and error prevention circuits for safe design, redundant design, and structural design. Upon using the technical information or products described herein, neither warranty nor license shall be granted with regard to intellectual property rights or any other rights of SANYO Semiconductor Co.,Ltd. or any third party. SANYO Semiconductor Co.,Ltd. shall not be liable for any claim or suits with regard to a third party's intellectual property rights which has resulted from the us e of the technical information and products mentioned above. Information (including circuit diagrams and circuit par ameters) herein is for example only; it is not guaranteed for volume production. Any and all information described or contained he rein are subject to change without notice due to product/technology improvement, etc. When designing equip ment, refer to the "Delivery Specification" for the SANYO Semiconductor Co.,Ltd. product that you intend to use. In the event that any or all SANYO Semiconductor Co.,Ltd. products described or contained herein are controlled under any of applicable local export control l aws and regulations, such products may require the export license from the authorities concerned in accordance with the above law. No part of this publication may be reproduced or transmitted in any form or by any means, electronic or mechanical, including photocopying and recording, or any information storage or retrieval system, or otherwise, without the prior written consent of SANYO Semiconductor Co.,Ltd. This catalog provides information as of March, 2010. Specifications and information herein are subject to change without notice. PS