ATTINY26L-8SU Atmel, ATTINY26L-8SU Datasheet - Page 43

ID MCU AVR 2K 5V 8MHZ 20-SOIC

ATTINY26L-8SU

Manufacturer Part Number
ATTINY26L-8SU
Description
ID MCU AVR 2K 5V 8MHZ 20-SOIC
Manufacturer
Atmel
Series
AVR® ATtinyr
Datasheets

Specifications of ATTINY26L-8SU

Core Processor
AVR
Core Size
8-Bit
Speed
8MHz
Connectivity
USI
Peripherals
Brown-out Detect/Reset, POR, PWM, WDT
Number Of I /o
16
Program Memory Size
2KB (1K x 16)
Program Memory Type
FLASH
Eeprom Size
128 x 8
Ram Size
128 x 8
Voltage - Supply (vcc/vdd)
2.7 V ~ 5.5 V
Data Converters
A/D 11x10b
Oscillator Type
Internal
Operating Temperature
-40°C ~ 85°C
Package / Case
20-SOIC (7.5mm Width)
Package
20SOIC
Device Core
AVR
Family Name
ATtiny
Maximum Speed
8 MHz
Operating Supply Voltage
3.3|5 V
Data Bus Width
8 Bit
Number Of Programmable I/os
16
Interface Type
SPI/USI
On-chip Adc
11-chx10-bit
Number Of Timers
2
Cpu Family
ATtiny
Device Core Size
8b
Frequency (max)
8MHz
Total Internal Ram Size
128Byte
# I/os (max)
16
Number Of Timers - General Purpose
2
Operating Supply Voltage (typ)
3.3/5V
Operating Supply Voltage (max)
5.5V
Operating Supply Voltage (min)
2.7V
Instruction Set Architecture
RISC
Operating Temp Range
-40C to 85C
Operating Temperature Classification
Industrial
Mounting
Surface Mount
Pin Count
20
Package Type
SOIC
Processor Series
ATTINY2x
Core
AVR8
Data Ram Size
128 B
Maximum Clock Frequency
8 MHz
Maximum Operating Temperature
+ 85 C
Mounting Style
SMD/SMT
3rd Party Development Tools
EWAVR, EWAVR-BL
Development Tools By Supplier
ATAVRDRAGON, ATSTK500, ATSTK600, ATAVRISP2, ATAVRONEKIT
Minimum Operating Temperature
- 40 C
For Use With
ATSTK600-DIP40 - STK600 SOCKET/ADAPTER 40-PDIP770-1007 - ISP 4PORT ATMEL AVR MCU SPI/JTAG770-1004 - ISP 4PORT FOR ATMEL AVR MCU SPIATAVRISP2 - PROGRAMMER AVR IN SYSTEMATSTK505 - ADAPTER KIT FOR 14PIN AVR MCU
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
ATTINY26L-8SJ
ATTINY26L-8SJ

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Reading the Pin Value
1477K–AVR–08/10
Table 21 summarizes the control signals for the pin value.
Table 21. Port Pin Configurations
Independent of the setting of Data Direction bit DDxn, the port pin can be read through the
PINxn Register Bit. As shown in Figure 32, the PINxn Register bit and the preceding latch con-
stitute a synchronizer. This is needed to avoid metastability if the physical pin changes value
near the edge of the internal clock, but it also introduces a delay. Figure 33 shows a timing dia-
gram of the synchronization when reading an externally applied pin value. The maximum and
minimum propagation delays are denoted t
Figure 33. Synchronization when Reading an Externally Applied Pin Value
Consider the clock period starting shortly after the first falling edge of the system clock. The latch
is closed when the clock is low, and goes transparent when the clock is high, as indicated by the
shaded region of the “SYNC LATCH” signal. The signal value is latched when the system clock
goes low. It is clocked into the PINxn Register at the succeeding positive clock edge. As indi-
cated by the two arrows t
between ½ and 1½ system clock period depending upon the time of assertion.
When reading back a software assigned pin value, a nop instruction must be inserted as indi-
cated in Figure 34. The out instruction sets the “SYNC LATCH” signal at the positive edge of the
clock. In this case, the delay t
DDxn
0
0
0
1
1
INSTRUCTIONS
SYSTEM CLK
SYNC LATCH
PORTxn
0
1
1
0
1
PINxn
r17
(in MCUCR)
PUD
X
0
1
X
X
pd,max
pd
through the synchronizer is one system clock period.
and t
XXX
Output
Output
Input
Input
Input
I/O
pd,min
, a single signal transition on the pin will be delayed
pd,max
Pull-up
t
pd, max
Yes
No
No
No
No
0x00
and t
XXX
Pxn will source current if ext. pulled
low
Output Low (Sink)
Output High (Source)
Comment
Tri-state (Hi-Z)
Tri-state (Hi-Z)
t
pd,min
pd, min
respectively.
in r17, PINx
0xFF
43

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