參數(shù)資料
型號: ADCMP607BCPZ-R2
廠商: Analog Devices Inc
文件頁數(shù): 3/16頁
文件大?。?/td> 0K
描述: IC COMP TTL/CMOS 1CHAN 12-LFCSP
標(biāo)準(zhǔn)包裝: 250
類型: 帶鎖銷
元件數(shù): 1
輸出類型: CML,補充型,滿擺幅
電壓 - 電源,單路/雙路(±): 2.5 V ~ 5.5 V
電壓 - 輸入偏移(最小值): 5mV @ 2.5V
電流 - 輸入偏壓(最小值): 5µA @ 2.5V
電流 - 輸出(標(biāo)準(zhǔn)): 50mA
電流 - 靜態(tài)(最大值): 1.5mA
CMRR, PSRR(標(biāo)準(zhǔn)): 50dB CMRR,50dB PSRR
傳輸延遲(最大): 2.1ns
磁滯: 100µV
工作溫度: -40°C ~ 125°C
封裝/外殼: 12-VFQFN 裸露焊盤,CSP
安裝類型: 表面貼裝
包裝: 帶卷 (TR)
ADCMP606/ADCMP607
Rev. A | Page 11 of 16
COMPARATOR PROPAGATION DELAY
DISPERSION
The ADCMP606/ADCMP607 comparators are designed to
reduce propagation delay dispersion over a wide input overdrive
range of 5 mV to VCCI 1 V. Propagation delay dispersion is the
variation in propagation delay that results from a change in the
degree of overdrive or slew rate (that is, how far or how fast the
input signal exceeds the switching threshold).
Propagation delay dispersion is a specification that becomes
important in high speed, time-critical applications, such as data
communication, automatic test and measurement, and instru-
mentation. It is also important in event-driven applications, such
as pulse spectroscopy, nuclear instrumentation, and medical
imaging. Dispersion is defined as the variation in propagation
delay as the input overdrive conditions are changed (Figure 15
The device dispersion is typically 2.3 ns as the overdrive varies
from 10 mV to 125 mV. This specification applies to both
positive and negative signals because each device has very closely
matched delays for positive-going and negative-going inputs as
well as very low output skews.
Q/Q OUTPUT
INPUT VOLTAGE
500mV OVERDRIVE
10mV OVERDRIVE
DISPERSION
VN ± VOS
05
91
7-
0
14
Figure 15. Propagation Delay—Overdrive Dispersion
Q/Q OUTPUT
INPUT VOLTAGE
10V/ns
1V/ns
DISPERSION
VN ± VOS
05
91
7-
0
15
Figure 16. Propagation Delay—Slew Rate Dispersion
COMPARATOR HYSTERESIS
The addition of hysteresis to a comparator is often desirable in
a noisy environment, or when the differential input amplitudes
are relatively small or slow moving. Figure 17 shows the transfer
function for a comparator with hysteresis. As the input voltage
approaches the threshold (0 V, in this example) from below the
threshold region in a positive direction, the comparator switches
from low to high when the input crosses +VH/2, and the new
switching threshold becomes VH/2. The comparator remains in
the high state until the new threshold, VH/2, is crossed from
below the threshold region in a negative direction. In this manner,
noise or feedback output signals centered on 0 V input cannot
cause the comparator to switch states unless it exceeds the region
bounded by ±VH/2.
OUTPUT
INPUT
0
VOL
VOH
+VH
2
–VH
2
05
91
7-
0
16
Figure 17. Comparator Hysteresis Transfer Function
The customary technique for introducing hysteresis into a
comparator uses positive feedback from the output back to
the input. One limitation of this approach is that the amount
of hysteresis varies with the output logic levels, resulting in
hysteresis that is not symmetric about the threshold. The
external feedback network can also introduce significant
parasitics that reduce high speed performance and induce
oscillation in some cases.
This ADCMP607 comparator offers a programmable hysteresis
feature that can significantly improve accuracy and stability.
Connecting an external pull-down resistor or a current source
from the LE/HYS pin to GND, varies the amount of hysteresis
in a predictable, stable manner. Leaving the LE/HYS pin discon-
nected or driving this pin high removes hysteresis. The maximum
hysteresis that can be applied using this pin is approximately
160 mV. Figure 18 illustrates typical hysteresis applied as a
function of the external resistor value, and Figure 7 illustrates
typical hysteresis as a function of the current.
H
Y
ST
ER
ES
IS
(
m
V)
HYS RESISTOR (k)
0
50
100
150
200
250
300
350
400
50 100 150 200 250 300 350 400 450 500 550 600 650
VCC = 2.5V
05
91
7-
01
7
Figure 18. Hysteresis vs. RHYS Control Resistor
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