Datasheet

PIC16(L)F1516/7/8/9
DS41452C-page 284 2010-2012 Microchip Technology Inc.
25.2 DC Characteristics: Supply Current (IDD)
PIC16LF1516/7/8/9
Standard Operating Conditions (unless otherwise stated)
Operating temperature -40°C TA +85°C for industrial
-40°C
TA +125°C for extended
PIC16F1516/7/8/9
Standard Operating Conditions (unless otherwise stated)
Operating temperature -40°C TA +85°C for industrial
-40°C
TA +125°C for extended
Param
No.
Device
Characteristics
Min. Typ† Max. Units
Conditions
V
DD Note
Supply Current (I
DD)
(1, 2, 3)
D010 8.0
14
A1.8
F
OSC = 32 kHz
LP Oscillator
-40°C TA +85°C
12.0
31
A3.0
D010 11
28
A 2.3
FOSC = 32 kHz
LP Oscillator
-40°C TA +85°C
13
38
A 3.0
14
45
A 5.0
D011 60
95
A1.8FOSC = 1 MHz
XT Oscillator
—110
180
A3.0
D011 92
170
A 2.3 FOSC = 1 MHz
XT Oscillator
140
230
A 3.0
170
350
A 5.0
D012 150
240
A1.8FOSC = 4 MHz
XT Oscillator
260
430
A3.0
D012 190
450
A 2.3 FOSC = 4 MHz
XT Oscillator
310
500
A 3.0
370
650
A 5.0
D013 25
31
A1.8FOSC = 500 kHz
EC Oscillator
Low-Power mode
—35
50
A3.0
D013 25
40
A 2.3 FOSC = 500 kHz
EC Oscillator
Low-Power mode
35
55
A 3.0
40
60
A 5.0
D014 120
210
A1.8FOSC = 4 MHz
EC Oscillator
Medium-Power mode
210
380
A3.0
D014 160
250
A 2.3 FOSC = 4 MHz
EC Oscillator
Medium-Power mode
260
380
A 3.0
330
480
A 5.0
* These parameters are characterized but not tested.
Data in “Typ” column is at 3.0V, 25°C unless otherwise stated. These parameters are for design guidance only and are not
tested.
Note 1: The test conditions for all IDD measurements in active operation mode are: OSC1 = external square wave, from
rail-to-rail; all I/O pins tri-stated, pulled to V
DD; MCLR = VDD; WDT disabled.
2: The supply current is mainly a function of the operating voltage and frequency. Other factors, such as I/O pin loading
and switching rate, oscillator type, internal code execution pattern and temperature, also have an impact on the current
consumption.
3: 0.1 F capacitor on VCAP pin, PIC16F1516/7/8/9 only.
4: For RC oscillator configurations, current through REXT is not included. The current through the resistor can be extended
by the formula I
R = VDD/2REXT (mA) with REXT in k.