MC68HC16Z1CEH16 Freescale Semiconductor, MC68HC16Z1CEH16 Datasheet - Page 207

IC MCU 16BIT 16MHZ 132-PQFP

MC68HC16Z1CEH16

Manufacturer Part Number
MC68HC16Z1CEH16
Description
IC MCU 16BIT 16MHZ 132-PQFP
Manufacturer
Freescale Semiconductor
Series
HC16r
Datasheets

Specifications of MC68HC16Z1CEH16

Core Processor
CPU16
Core Size
16-Bit
Speed
16MHz
Connectivity
EBI/EMI, SCI, SPI
Peripherals
POR, PWM, WDT
Number Of I /o
16
Program Memory Type
ROMless
Ram Size
1K x 8
Voltage - Supply (vcc/vdd)
2.7 V ~ 5.5 V
Data Converters
A/D 8x10b
Oscillator Type
Internal
Operating Temperature
-40°C ~ 85°C
Package / Case
132-QFP
Processor Series
HC16Z
Core
CPU16
Data Bus Width
16 bit
Controller Family/series
68HC16
No. Of I/o's
26
Ram Memory Size
1KB
Cpu Speed
16MHz
No. Of Timers
2
Embedded Interface Type
QSPI, SCI
Rohs Compliant
Yes
Package
132PQFP
Family Name
HC16
Maximum Speed
16 MHz
Operating Supply Voltage
3.3|5 V
Number Of Programmable I/os
16
On-chip Adc
8-chx10-bit
Number Of Timers
11
Data Ram Size
1 KB
Interface Type
SCI, SPI, UART
Maximum Clock Frequency
16 MHz
Maximum Operating Temperature
+ 85 C
Mounting Style
SMD/SMT
Minimum Operating Temperature
- 40 C
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Eeprom Size
-
Program Memory Size
-
Lead Free Status / Rohs Status
Lead free / RoHS Compliant

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8.8.6 Analog Input Pins
M68HC16 Z SERIES
USER’S MANUAL
C
V
Analog inputs should have low AC impedance at the pins. Low AC impedance can be
realized by placing a capacitor with good high frequency characteristics at the input
pin of the part. Ideally, that capacitor should be as large as possible (within the practi-
cal range of capacitors that still have good high frequency characteristics). This capac-
itor has two effects. First, it helps attenuate any noise that may exist on the input.
Second, it sources charge during the sample period when the analog signal source is
a high-impedance source.
Series resistance can be used with the capacitor on an input pin to implement a simple
RC filter. The maximum level of filtering at the input pins is application dependent and
is based on the bandpass characteristics required to accurately track the dynamic
characteristics of an input. Simple RC filtering at the pin may be limited by the source
impedance of the transducer or circuit supplying the analog signal to be measured.
Refer to
itor at the pin may be very small.
Figure 8-10
ing discussion of the interaction between the user's external circuitry and the circuitry
inside the ADC.
SRC
DAC
R
C
C
V
F
F
S
I
= SOURCE VOLTAGE
= FILTER IMPEDANCE (SOURCE IMPEDANCE INCLUDED)
= FILTER CAPACITOR
= INTERNAL CAPACITANCE (FOR A BYPASSED CHANNEL, THIS IS THE C
= DAC CAPACITOR ARRAY
= INTERNAL VOLTAGE SOURCE FOR PRECHARGE (V
V
SRC
S1
8.8.6.2 Error Resulting from
EXTERNAL CIRCUIT
is a simplified model of an input channel. Refer to this model in the follow-
Figure 8-10 Electrical Model of an A/D Input Pin
R
F
C
Freescale Semiconductor, Inc.
F
For More Information On This Product,
ANALOG-TO-DIGITAL CONVERTER
INTERNAL CIRCUIT MODEL
Go to: www.freescale.com
S2
Leakage. In some cases, the size of the capac-
C
DDA
S
/2)
AMP
DAC
CAPACITANCE)
S3
C
DAC
S4
ADC SAMPLE AMP MODEL
V
I
8-21

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