DF2265TE13V Renesas Electronics America, DF2265TE13V Datasheet - Page 675

IC H8S/2265 MCU FLASH 100TQFP

DF2265TE13V

Manufacturer Part Number
DF2265TE13V
Description
IC H8S/2265 MCU FLASH 100TQFP
Manufacturer
Renesas Electronics America
Series
H8® H8S/2200r
Datasheets

Specifications of DF2265TE13V

Core Processor
H8S/2000
Core Size
16-Bit
Speed
13MHz
Connectivity
I²C, SCI, SmartCard
Peripherals
LCD, POR, PWM, WDT
Number Of I /o
67
Program Memory Size
128KB (128K x 8)
Program Memory Type
FLASH
Ram Size
4K x 8
Voltage - Supply (vcc/vdd)
3 V ~ 5.5 V
Data Converters
A/D 10x10b, D/A 2x8b
Oscillator Type
Internal
Operating Temperature
-20°C ~ 75°C
Package / Case
100-TQFP, 100-VQFP
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Eeprom Size
-

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
DF2265TE13V
Manufacturer:
Renesas Electronics America
Quantity:
10 000
Notes: 1. If the A/D converter is not used, do not leave the AVCC, Vref, and AVSS pins open.
Item
Input leakage
current
Three-state
leakage current
(off state)
Input pull-up
MOS current
2. P35/SCK1/SCL0 and P34/SDA0 are NMOS push-pull outputs. To output high level
3. When ICE = 0. The output low level when bus drive function is selected is indicated in
4. When Vcc < AVcc, the maximum value for P40 and P41 is Vcc + 0.3 V.
P35/SCK1 and P34 (ICE = 0) are driven high by NMOS. To output high pull-up resistors
Apply a voltage 2.0 V to 5.5 V to the AVCC and Vref pins by connecting them to V
instance. Set V
signal from SCL0 and SDA0 (ICE = 1), pull-up resistors must be connected externally.
should be connected externally.
table 25.17, Bus Drive Characteristics.
RES
STBY, NMI, FWE,
MD2, MD1
Ports 4, 9
PH7
Ports 1, 3, 7, F, J
to L, PH0 to PH3
Port J
ref
≤ AV
CC
Symbol
| l
| l
–l
.
in
TSI
P
|
|
Min.
10
Typ.
Rev. 5.00 Sep. 01, 2009 Page 623 of 656
Max.
1.0
1.0
1.0
1.0
1.0
300
Section 25 Electrical Characteristics
Unit
μA
μA
μA
μA
μA
μA
Test Conditions
V
V
V
V
V
in
in
in
in
in
REJ09B0071-0500
= 0.5 to V
= 0.5 to AV
= 0.5 to V
= 0.5 to V
= 0 V
CC
CC
CC
CC
- 0.5 V
- 0.5 V
- 0.5 V
- 0.5 V
CC
, for

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