
Electrical Characteristics
MC68L11E9/E20 Analog-to-Digital Converter Characteristics
M68HC11E Family — Rev. 5
Data Sheet
MOTOROLA
Electrical Characteristics
183
10.14  MC68L11E9/E20 Analog-to-Digital Converter Characteristics
Characteristic
(1)
Parameter
(2)
Min
Absolute
Max
Unit
Resolution
Number of bits resolved by A/D converter
—
8
—
Bits
Non-linearity
Maximum deviation from the ideal A/D transfer 
characteristics
—
—
±
1
LSB
Zero error
Difference between the output of an ideal and an 
actual for 0 input voltage
—
—
±
1
LSB
Full scale error
Difference between the output of an ideal and an 
actual A/D for full-scale input voltage
—
—
±
1
LSB
Total unadjusted 
error
Maximum sum of non-linearity, zero error, and 
full-scale error
—
—
±
1/2
LSB
Quantization error
Uncertainty because of converter resolution
—
—
±
1/2
LSB
Absolute accuracy
Difference between the actual input voltage and the 
full-scale weighted equivalent of the binary output 
code, all error sources included
—
—
±
2
LSB
Conversion range
Analog input voltage range
V
RL
—
V
RH
V
V
RH
Maximum analog reference voltage 
V
RL
—
V
DD
 + 0.1
V
V
RL
Minimum analog reference voltage 
V
SS
 –0.1
—
V
RH
V
V
R
Minimum difference between V
RH 
and V
RL
3.0
—
—
V
Conversion time
Total time to perform a single 
analog-to-digital conversion:
E clock
Internal RC oscillator
—
—
32
—
—
t
CYC
+ 32
t
CYC
μ
s
Monotonicity
Conversion result never decreases with an 
increase in input voltage and has no missing 
codes
—
Guaranteed
—
—
Zero input reading
Conversion result when V
In 
= V
RL
00
—
—
Hex
Full scale reading
Conversion result when V
In 
= V
RH
—
—
FF
Hex
Sample acquisition 
time
Analog input acquisition sampling time:
E clock
Internal RC oscillator
—
—
12
—
—
12
t
CYC
μ
s
Sample/hold 
capacitance
Input capacitance during sample
PE[7:0]
—
20 typical
—
pF
Input leakage
Input leakage on A/D pins
PE[7:0]
V
RL
, V
RH
—
—
—
—
400
1.0
nA
μ
A
1. V
DD
 = 3.0 Vdc to 5.5 Vdc, V
SS
 = 0 Vdc, T
A
 = T
L
 to T
H, 
750 kHz 
≤ 
E 
≤ 
2.0 MHz, unless otherwise noted
2. Source impedances greater than 10 k
 affect accuracy adversely because of input leakage.
F
Freescale Semiconductor, Inc.
For More Information On This Product,
  Go to: www.freescale.com
n
.