TP1962-SR [3PEAK]

7ns, 1/2/4, Ultra-High-Speed, 3V/5V, Beyond-the-Rails Comparators;
TP1962-SR
型号: TP1962-SR
厂家: 3PEAK    3PEAK
描述:

7ns, 1/2/4, Ultra-High-Speed, 3V/5V, Beyond-the-Rails Comparators

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TP1961/TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Features  
Description  
The TP1961/TP1962/TP1964 are low-power,  
Ultra-Fast, 7ns Propagation Delay  
ultra-high-speed  
comparators  
with  
internal  
Ideal for +3V and +5V Single-Supply Applications  
Offset Voltage: ± 6.0 mV Maximum  
Rail to Rail Input and Output  
hysteresis. These devices are optimized for single  
+3V or +5V operation. The input common-mode  
range extends 300mV beyond the rail, and the  
outputs can sink or source 4mA to within 80mV of  
GND and VCC. Propagation delay is 7ns (50mV  
overdrive), while supply current is 1mA per  
comparator.  
The internal input hysteresis eliminates output  
switching due to internal input noise voltage,  
reducing current draw. The push-pull output  
supports rail-to-rail output swing, and interfaces with  
CMOS/TTL logic. The output toggle frequency can  
reach a typical of 50 MHz while limiting supply  
current surges and dynamic power consumption  
during switching.  
7.5mV Internal Hysteresis for Clean Switching  
Push-Pull, CMOS/TTL Compatible Output  
Input Common-Mode Range Extends 300 mV  
No Phase Reversal for Overdriven Inputs  
Shut-down Function (TP1961N Only)  
Supply Voltage: 2.5V to 5.5V  
Green, Space-Saving SOT23-5 Package Available  
Applications  
The TP1961 single comparators are available in  
shout-down function, and the tiny SOT23 package  
for space-conservative designs. All devices are  
specified for the temperature range of –40°C to  
+85°C.  
High-speed Line or Digital Line Receivers  
High Speed Sampling Circuits  
Peak and Zero-crossing Detectors  
Threshold Detectors/Discriminators  
Sensing at Ground or Supply Line  
Logic Level Shifting or Translation  
Window Comparators  
3PEAK and the 3PEAK logo are registered trademarks of  
3PEAK INCORPORATED. All other trademarks are the property  
of their respective owners.  
IR Receivers  
Clock and Data Signal Restoration  
Telecom, Portable Communications  
Pin Configuration (Top View)  
The TP1961 Comparator in IR Receivers  
www.3peakic.com.cn  
Rev. B  
1
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Order Information  
Marking  
Information  
Model Name  
Order Number  
Package  
Transport Media, Quantity  
TP1961-TR  
TP1961-CR  
TP1962-SR  
TP1962-VR  
TP1962-FR  
TP1964-SR  
TP1964-TR  
5-Pin SOT23  
5-Pin SC70  
8-Pin SOIC  
8-Pin MSOP  
8-Pin DFN  
Tape and Reel, 3000  
Tape and Reel, 3000  
Tape and Reel, 4000  
Tape and Reel, 3000  
Tape and Reel, 3000  
Tape and Reel, 2500  
Tape and Reel, 3000  
TP1961  
TP1961  
TP1962  
TP1962  
TP1962  
TP1964  
TP1964  
TP1961  
TP1962  
TP1964  
14-Pin SOIC  
14-Pin TSSOP  
Note 1  
Absolute Maximum Ratings  
Supply Voltage: V+ – V....................................7.0V  
Input Voltage............................. V– 0.3 to V+ + 0.3  
Input Current: +IN, –IN, Note 2..........................±20mA  
Output Current: OUT.................................... ±160mA  
Output Short-Circuit Duration Note 3…............. Infinite  
Operating Temperature Range.......–40°C to 125°C  
Maximum Junction Temperature................... 150°C  
Storage Temperature Range.......... –65°C to 150°C  
Lead Temperature (Soldering, 10 sec) ......... 260°C  
Note 1: Stresses beyond those listed under Absolute Maximum Ratings may cause permanent damage to the device. Exposure to any  
Absolute Maximum Rating condition for extended periods may affect device reliability and lifetime.  
Note 2: The inputs are protected by ESD protection diodes to each power supply. If the input extends more than 500mV beyond the power  
supply, the input current should be limited to less than 10mA.  
Note 3: A heat sink may be required to keep the junction temperature below the absolute maximum. This depends on the power supply voltage  
and how many amplifiers are shorted. Thermal resistance varies with the amount of PC board metal connected to the package. The specified  
values are for short traces connected to the leads.  
ESD, Electrostatic Discharge Protection  
Symbol  
HBM  
Parameter  
Human Body Model ESD  
Charged Device Model ESD  
Condition  
Minimum Level  
Unit  
kV  
kV  
MIL-STD-883H Method 3015.8  
JEDEC-EIA/JESD22-C101E  
4
2
CDM  
Rev. B  
www.3peakic.com.cn  
2
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Electrical Characteristics  
The denotes the specifications which apply over the full operating temperature range, otherwise specifications are at TA = 27°C.  
VDD = +2.5V to +5.5V, VIN+ = VDD, VIN- = 1.2V, RPU=10kΩ, CL =15pF.  
SYMBOL PARAMETER  
CONDITIONS  
MIN  
2.5  
-6  
TYP  
MAX  
5.5  
UNITS  
V
VDD  
VOS  
Supply Voltage  
Input Offset Voltage Note 1  
VCM = 1.2V  
±2  
+6  
mV  
VOS TC  
VHYST  
VTrip+  
VTrip+  
IB  
Input Offset Voltage Drift Note 1  
Input Hysteresis Voltage Note 1  
Input Referred Positive Trip Point  
Input Referred Negative Trip Point  
Input Bias Current  
VCM = 1.2V  
VCM = 1.2V  
0.3  
7.5  
3.5  
-4  
6
4
> 100  
2.7  
1
μV/°C  
mV  
mV  
mV  
pA  
8
-8  
VCM = 1.2V  
Differential  
Common Mode  
VCM = VSS to VDD  
IOS  
RIN  
Input Offset Current  
Input Resistance  
pA  
GΩ  
CIN  
Input Capacitance  
pF  
dB  
V
CMRR  
VCM  
Common Mode Rejection Ratio  
Common-mode Input Voltage  
Range  
110  
VSS-0.1  
VDD+0.1  
PSRR  
VOH  
Power Supply Rejection Ratio  
110  
VDD-0.2  
VDD-0.05  
80  
10  
100  
dB  
V
IOUT=4mA, VID = 500 mV  
IOUT=0.4mA, VID = 500 mV  
IOUT=-4mA, VID = 500 mV  
IOUT=-0.4mA, VID = 500 mV  
Sink or source current  
VDD-0.2  
VDD-0.02  
High-Level Output Voltage  
Low-Level Output Voltage  
180  
50  
mV  
mV  
mA  
mA  
VOL  
ISC  
IQ  
Output Short-Circuit Current  
Quiescent Current per Comparator  
2.4  
tR  
tF  
Rising Time  
Falling Time  
1
1
2
ns  
ns  
2
Overdrive=5mV, VIN- =1.2V  
Overdrive=15mV, VIN- =1.2V  
Overdrive=50mV, VIN- =1.2V  
Overdrive=5mV, VIN- =1.2V  
Overdrive=15mV, VIN- =1.2V  
Overdrive=50mV, VIN- =1.2V  
16  
12  
7
16  
12  
7
ns  
ns  
ns  
ns  
ns  
ns  
Propagation Delay  
(Low-to-High)Note2  
TPD+  
19  
19  
Propagation Delay  
(High-to-Low) Note2  
TPD-  
TPDSKEW  
Propagation Delay Skew  
Overdrive=100mV, VIN- =1.2V  
0.4  
ns  
Note 1: The input offset voltage is the average of the input-referred trip points. The input hysteresis is the difference between the input-referred  
trip points.  
Note 2: Propagation Delay Skew is defined as: tPD-SKEW = tPD+ - tPD-  
.
Rev. B  
www.3peakic.com.cn  
3
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Typical Performance Characteristics  
VS = 5V, CL = 10pF, and VCM = VS/2, TA = 25°C, unless otherwise specified.  
Propagation Delay (tPD+)  
Propagation Delay (tPD+)  
Propagation Delay (tPD)  
Rev. B  
www.3peakic.com.cn  
4
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Pin Functions  
–IN: Inverting Input of the Comparator. Voltage  
N/C: No Connection.  
range of this pin can go from V– 0.3V to V+ + 0.3V.  
V(VSS): Negative Power Supply. It is normally tied to  
ground. It can also be tied to a voltage other than  
ground as long as the voltage between V+ and Vis  
from 2.5V to 5.5V. If it is not connected to ground,  
bypass it with a capacitor of 0.1μF as close to the  
part as possible.  
+IN: Non-Inverting Input of Comparator. This pin has  
the same voltage range as –IN.  
V+ (VDD): Positive Power Supply. Typically the  
voltage is from 2.5V to 5.5V. Split supplies are  
possible as long as the voltage between V+ and V–  
is between 2.5V and 5.5V. A bypass capacitor of  
0.1μF as close to the part as possible should be used  
between power supply pins or between supply pins  
and ground.  
OUT: Comparator Output. The voltage range  
extends to within millivolts of each supply rail.  
Operation  
The TP1961/TP1962/TP1964 single-supply comparators  
feature internal hysteresis, ultra-high speed operation,  
and low power consumption. Their outputs are  
guaranteed to pull within 0.52V of either rail without  
external pull-up or pull-down circuitry. Beyond the Rails  
input voltage range and low-voltage, single supply  
operation make these devices ideal for portable  
equipment. These comparators all interface directly to  
CMOS logic.  
Rev. B  
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5
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Applications Information  
Inputs  
The TP196x comparator family uses CMOS transistors at the input which prevent phase inversion when the input  
pins exceed the supply voltages. Figure 1 shows an input voltage exceeding both supplies with no resulting phase  
inversion.  
6
Input Voltage  
4
2
0
Output Voltage  
VDD=5V  
-2  
Time (100μs/div)  
Figure 1. Comparator Response to Input Voltage  
The electrostatic discharge (ESD) protection input structure of two back-to-back diodes and 1kΩ series resistors  
are used to limit the differential input voltage applied to the precision input of the comparator by clamping input  
voltages that exceed supply voltages, as shown in Figure 2. Large differential voltages exceeding the supply  
voltage should be avoided to prevent damage to the input stage.  
1KΩ  
+In  
Core  
1KΩ  
-In  
Chip  
Figure 2. Equivalent Input Structure  
Internal Hysteresis  
Most high-speed comparators oscillate in the linear region because of noise or undesired parasitic feedback. This  
tends to occur when the voltage on one input is at or equal to the voltage on the other input. To counter the  
parasitic effects and noise, the TP196x implements internal hysteresis.  
The hysteresis in a comparator creates two trip points: one for the rising input voltage and one for the falling input  
voltage. The difference between the trip points is the hysteresis. When the comparator’s input voltages are equal,  
the hysteresis effectively causes one comparator input voltage to move quickly past the other, thus taking the  
input out of the region where oscillation occurs. Figure 3 illustrates the case where IN- is fixed and IN+ is varied. If  
the inputs were reversed, the figure would look the same, except the output would be inverted.  
Rev. B  
www.3peakic.com.cn  
6
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
-Vin-  
-Vin-  
0
0
Non-Inverting Comparator Output  
Inverting Comparator Output  
Figure 3. Comparator’s hysteresis and offset  
External Hysteresis  
Greater flexibility in selecting hysteresis is achieved by using external resistors. Hysteresis reduces output  
chattering when one input is slowly moving past the other. It also helps in systems where it is best not to cycle  
between high and low states too frequently (e.g., air conditioner thermostatic control). Output chatter also  
increases the dynamic supply current.  
Non-Inverting Comparator with Hysteresis  
A non-inverting comparator with hysteresis requires a two-resistor network, as shown in Figure 4 and a voltage  
reference (Vr) at the inverting input.  
Figure 4. Non-Inverting Configuration with Hysteresis  
When Vi is low, the output is also low. For the output to switch from low to high, Vi must rise up to Vtr. When Vi is  
high, the output is also high. In order for the comparator to switch back to a low state, Vi must equal Vtf before the  
non-inverting input V+ is again equal to Vr.  
R
2
V
V
tr  
r
R
R
2
1
R
1
V
(V  
DD  
V  
tf  
)
V  
tf  
r
R
1
R
2
R
R
1
2
V
V
r
tr  
R
2
R
R
R
1
2
1
V
V   
V
DD  
r
tf  
R
R
2
2
Rev. B  
www.3peakic.com.cn  
7
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
R
1
V
V V  
tf  
V
DD  
tr  
hyst  
R
2
Inverting Comparator with Hysteresis  
The inverting comparator with hysteresis requires a three-resistor network that is referenced to the comparator  
supply voltage (VDD), as shown in Figure 5.  
Figure 5. Inverting Configuration with Hysteresis  
When Vi is greater than V+, the output voltage is low. In this case, the three network resistors can be presented as  
paralleled resistor R2 || R3 in series with R1. When Vi at the inverting input is less than V+, the output voltage is  
high. The three network resistors can be represented as R1 ||R3 in series with R2.  
R
2
V
V
DD  
tr  
||  
R
R
R
2
1
3
||  
R
R
2
3
V
V
DD  
tf  
||  
R
1
R
R
2
3
||  
R
R
2
1
V
V V  
tf  
V
tr  
DD  
hyst  
||  
R
3
R
R
1
2
Low Input Bias Current  
The TP196x family is a CMOS comparator family and features very low input bias current in pA range. The low  
input bias current allows the comparators to be used in applications with high resistance sources. Care must be  
taken to minimize PCB Surface Leakage. See below section on “PCB Surface Leakage” for more details.  
PCB Surface Leakage  
In applications where low input bias current is critical, Printed Circuit Board (PCB) surface leakage effects need to  
be considered. Surface leakage is caused by humidity, dust or other contamination on the board. Under low  
humidity conditions, a typical resistance between nearby traces is 1012Ω. A 5V difference would cause 5pA of  
current to flow, which is greater than the TP196x’s input bias current at +27°C (±6pA, typical). It is recommended  
to use multi-layer PCB layout and route the comparator’s -IN and +IN signal under the PCB surface.  
Rev. B  
www.3peakic.com.cn  
8
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
The effective way to reduce surface leakage is to use a guard ring around sensitive pins (or traces). The guard  
ring is biased at the same voltage as the sensitive pin. An example of this type of layout is shown in Figure 6 for  
Inverting configuration application.  
1. For Non-Inverting Configuration:  
a) Connect the non-inverting pin (VIN+) to the input with a wire that does not touch the PCB surface.  
b) Connect the guard ring to the inverting input pin (VIN–). This biases the guard ring to the same reference as the  
comparator.  
2. For Inverting Configuration:  
a) Connect the guard ring to the non-inverting input pin (VIN+). This biases the guard ring to the same reference voltage as  
the comparator (e.g., VDD/2 or ground).  
b) Connect the inverting pin (VIN–) to the input with a wire that does not touch the PCB surface.  
Figure 6. Example Guard Ring Layout for Inverting Comparator  
Ground Sensing and Rail to Rail Output  
The TP196x family implements a rail-to-rail topology that is capable of swinging to within 10mV of either rail.  
Since the inputs can go 300mV beyond either rail, the comparator can easily perform ‘true ground’ sensing.  
The maximum output current is a function of total supply voltage. As the supply voltage of the comparator  
increases, the output current capability also increases. Attention must be paid to keep the junction temperature of  
the IC below 150°C when the output is in continuous short-circuit condition. The output of the amplifier has  
reverse-biased ESD diodes connected to each supply. The output should not be forced more than 0.5V beyond  
either supply, otherwise current will flow through these diodes.  
ESD  
The TP196x family has reverse-biased ESD protection diodes on all inputs and output. Input and output pins can  
not be biased more than 300mV beyond either supply rail.  
Power Supply Layout and Bypass  
The TP196x family’s power supply pin should have a local bypass capacitor (i.e., 0.01μF to 0.1μF) within 2mm for  
good high frequency performance. It can also use a bulk capacitor (i.e., 1μF or larger) within 100mm to provide  
large, slow currents. This bulk capacitor can be shared with other analog parts.  
Good ground layout improves performance by decreasing the amount of stray capacitance and noise at the  
comparator’s inputs and outputs. To decrease stray capacitance, minimize PCB lengths and resistor leads, and  
place external components as close to the comparator’ pins as possible.  
Proper Board Layout  
The TP196x family is a series of fast-switching, high-speed comparator and requires high-speed layout  
considerations. For best results, the following layout guidelines should be followed:  
1. Use a printed circuit board (PCB) with a good, unbroken low-inductance ground plane.  
2. Place a decoupling capacitor (0.1μF ceramic, surface-mount capacitor) as close as possible to supply.  
Rev. B  
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TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
3. On the inputs and the output, keep lead lengths as short as possible to avoid unwanted parasitic feedback  
around the comparator. Keep inputs away from the output.  
4. Solder the device directly to the PCB rather than using a socket.  
5. For slow-moving input signals, take care to prevent parasitic feedback. A small capacitor (1000 pF or less)  
placed between the inputs can help eliminate oscillations in the transition region. This capacitor causes some  
degradation to propagation delay when the impedance is low. The topside ground plane should be placed  
between the output and inputs.  
6. The ground pin ground trace should run under the device up to the bypass capacitor, thus shielding the inputs  
from the outputs.  
Typical Applications  
IR Receiver  
The TP1961 is an ideal candidate to be used as an infrared receiver shown in Figure . The infrared photo diode  
creates a current relative to the amount of infrared light present. The current creates a voltage across RD. When  
this voltage level cross the voltage applied by the voltage divider to the inverting input, the output transitions.  
Optional Ro provides additional hysteresis for noise immunity.  
VDD  
Ro  
R1  
TP1961  
Vo  
R2  
RD  
Figure 7. IR Receiver  
Relaxation Oscillator  
A relaxation oscillator using TP1961 is shown in Figure . Resistors R1 and R2 set the bias point at the  
comparator's inverting input. The period of oscillator is set by the time constant of R4 and C1. The maximum  
frequency is limited by the large signal propagation delay of the comparator. TP1961’s low propagation delay  
guarantees the high frequency oscillation.  
If the inverted input (VC1) is lower than the non-inverting input (VA), the output is high which charges C1 through R4  
until VC1 is equal to VA. The value of VA at this point is  
V
R  
2
DD  
|| R R  
2
V
A1  
R
1
3
At this point the comparator switches pulling down the output to the negative rail. The value of VA at this point is  
V
R || R  
DD  
2
3
V
A2  
R
R || R  
3
1
2
If R1=R2=R3, then VA1=2VDD /3, and VA2= VDD/3  
The capacitor C1 now discharges through R4, and the voltage VC decreases till it is equal to VA2, at which point the  
comparator switches again, bringing it back to the initial stage. The time period is equal to twice the time it takes  
to discharge C1 from 2VDD/3 to VDD/3. Hence the frequency is:  
Rev. B  
www.3peakic.com.cn  
10  
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
1
Freq   
2 ln2 R C  
4
1
VDD  
R3  
VO  
R1  
TP1961  
VA  
t
t
VC1  
Vo  
VC1  
2/3VDD  
1/3VDD  
R2  
R4  
C1  
R1=R2=R3  
Figure 8. Relaxation Oscillator  
Windowed Comparator  
Figure shows one approach to designing a windowed comparator using a single TP1962 chip. Choose different  
thresholds by changing the values of R1, R2, and R3. OutA provides an active-low undervoltage indication, and  
OutB gives an active-low overvoltage indication. ANDing the two outputs provides an active-high, power-good  
signal. When input voltage Vi reaches the overvoltage threshold VOH, the OutB gets low. Once Vi falls to the  
undervoltage threshold VUH, the OutA gets low. When VUH<Vi<VOH, the AND Gate gets high.  
V
V (R R R )/R  
r
1 2 3 1  
OH  
V
V (R R R )/(R R )  
r
1 2 3 1 2  
UH  
Figure 9. Windowed Comparator  
Rev. B  
www.3peakic.com.cn  
11  
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Package Outline Dimensions  
SOT23-5 / SOT23-6  
Dimensions  
In Millimeters  
Dimensions  
In Inches  
Symbol  
Min  
Max  
Min  
Max  
A1  
A2  
b
0.000  
1.050  
0.300  
2.820  
1.500  
2.650  
0.100  
1.150  
0.400  
3.020  
1.700  
2.950  
0.000  
0.041  
0.012  
0.111  
0.059  
0.104  
0.004  
0.045  
0.016  
0.119  
0.067  
0.116  
D
E
E1  
e
0.950TYP  
0.037TYP  
e1  
L1  
θ
1.800  
0.300  
0°  
2.000  
0.460  
8°  
0.071  
0.012  
0°  
0.079  
0.024  
8°  
Rev. B  
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12  
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Package Outline Dimensions  
SC-70-5 / SC-70-6 (SOT353 / SOT363)  
Dimensions  
Dimensions In  
Inches  
In Millimeters  
Symbol  
Min  
Max  
Min  
Max  
A1  
A2  
b
0.000  
0.900  
0.150  
0.080  
2.000  
1.150  
2.150  
0.100  
1.000  
0.350  
0.150  
2.200  
1.350  
2.450  
0.000  
0.035  
0.006  
0.003  
0.079  
0.045  
0.085  
0.004  
0.039  
0.014  
0.006  
0.087  
0.053  
0.096  
C
D
E
E1  
e
0.650TYP  
0.026TYP  
e1  
L1  
θ
1.200  
0.260  
0°  
1.400  
0.460  
8°  
0.047  
0.010  
0°  
0.055  
0.018  
8°  
Rev. B  
www.3peakic.com.cn  
13  
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Package Outline Dimensions  
SO-8 (SOIC-8)  
A2  
C
θ
L1  
A1  
e
E
D
Dimensions  
Dimensions In  
Inches  
In Millimeters  
Symbol  
Min  
Max  
Min  
Max  
A1  
A2  
b
0.100  
1.350  
0.330  
0.190  
4.780  
3.800  
5.800  
0.250  
1.550  
0.510  
0.250  
5.000  
4.000  
6.300  
0.004  
0.053  
0.013  
0.007  
0.188  
0.150  
0.228  
0.010  
0.061  
0.020  
0.010  
0.197  
0.157  
0.248  
C
E1  
D
E
E1  
e
1.270TYP  
0.050TYP  
L1  
θ
0.400  
0°  
1.270  
8°  
0.016  
0°  
0.050  
8°  
b
Rev. B  
www.3peakic.com.cn  
14  
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Package Outline Dimensions  
MSOP-8  
Dimensions  
Dimensions In  
Inches  
In Millimeters  
Symbol  
Min  
Max  
Min  
Max  
E
E1  
A
0.800  
0.000  
0.760  
0.30 TYP  
0.15 TYP  
2.900  
0.65 TYP  
2.900  
4.700  
0.410  
0°  
1.200  
0.200  
0.970  
0.031  
0.000  
0.030  
0.012 TYP  
0.006 TYP  
0.114  
0.026  
0.114  
0.185  
0.016  
0°  
0.047  
0.008  
0.038  
A1  
A2  
b
C
D
3.100  
0.122  
e
b
e
D
E
3.100  
5.100  
0.650  
6°  
0.122  
0.201  
0.026  
6°  
E1  
L1  
θ
A1  
R1  
R
θ
L
L1  
L2  
Rev. B  
www.3peakic.com.cn  
15  
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Package Outline Dimensions  
DFN-8  
Note 3: bottom view is the picture looking at the pins from bottom.  
Rev. B  
www.3peakic.com.cn  
16  
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Package Outline Dimensions  
SO-14 (SOIC-14)  
Dimensions  
In Millimeters  
TYP  
Symbol  
MIN  
1.35  
0.10  
1.25  
0.36  
8.53  
5.80  
3.80  
MAX  
1.75  
0.25  
1.65  
0.49  
8.73  
6.20  
4.00  
A
A1  
A2  
b
1.60  
0.15  
1.45  
D
8.63  
6.00  
E
E1  
e
3.90  
1.27 BSC  
0.60  
L
0.45  
0°  
0.80  
8°  
L1  
L2  
θ
1.04 REF  
0.25 BSC  
Rev. B  
www.3peakic.com.cn  
17  
TP1961/ TP1962/TP1964  
7ns, 1/2/4, Ultra-High-Speed, +3V/+5V, Beyond-the-Rails Comparators  
Package Outline Dimensions  
TSSOP-14  
Dimensions  
In Millimeters  
E1  
E
Symbol  
MIN  
-
TYP  
MAX  
1.20  
0.15  
1.05  
0.28  
0.19  
5.06  
6.60  
4.50  
A
A1  
A2  
b
-
0.05  
0.90  
0.20  
0.10  
4.86  
6.20  
4.30  
-
1.00  
-
e
c
c
-
4.96  
D
D
E
6.40  
E1  
e
4.40  
0.65 BSC  
0.60  
L
0.45  
0.75  
A1  
L1  
L2  
R
1.00 REF  
0.25 BSC  
-
0.09  
0°  
-
R1  
θ
-
8°  
R
θ
L
L1  
L2  
Rev. B  
www.3peakic.com.cn  
18  

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