TLP2530_07 [TOSHIBA]

Digital Logic Isolation; 数字逻辑隔离
TLP2530_07
型号: TLP2530_07
厂家: TOSHIBA    TOSHIBA
描述:

Digital Logic Isolation
数字逻辑隔离

文件: 总8页 (文件大小:207K)
中文:  中文翻译
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TLP2530,TLP2531  
TOSHIBA Photocoupler GaAAs Ired & Photo IC  
TLP2530, TLP2531  
Digital Logic Isolation  
Line Receiver  
Unit in mm  
Power Supply Control  
Switching Power Supply  
Transistor Inverter  
The TOSHIBA TLP2530 and TLP2531 dual photocouplers consist of a  
pair of GaAAs light emitting diode and integrated photodetector.  
This unit is 8lead DIP.  
Separate connection for the photodiode bias and output transistor  
collectors improve the speed up to a hundred times that of a  
conventional phototransistor coupler by reducing the basecollector  
capacitance.  
z TTL compatible  
z Switching speed: t  
=0.3μs, t  
=0.3μs(typ.)  
pHL  
pLH  
(@R =1.9k)  
L
TOSHIBA  
Weight: 0.54g  
1110C4  
z Guaranteed performance over temp: 0~70°C  
z Isolation voltage: 2500 Vrms(min.)  
z UL recognized: UL1577, file no. E67349  
Pin Configuration (top view)  
Schematic  
I
CC  
1
I
8
F1  
V
CC  
8
I
O1  
+
1
2
3
4
7
6
5
V
F1  
V
O1  
7
O2  
6
2
I
F2  
I
+
V
O2  
4
3
V
F2  
GND  
1. : Anode.1  
2. : Cathode.1  
3. : Cathode.2  
4. : Anode.2  
5. : Gnd  
5
6. : V (output 2)  
O2  
7. : V (output 1)  
O1  
8. : V  
CC  
1
2007-10-01  
TLP2530,TLP2531  
Absolute Maximum Ratings  
Characteristic  
Symbol  
Rating  
Unit  
mA  
mA  
Forward current(each channel)  
I
25  
50  
F
(Note 1)  
(Note 2)  
(Note 3)  
Pulse forward current  
(Each Channel)  
I
FP  
Total pulse forward current  
(each channel)  
I
1
5
A
V
FPT  
Reverse voltage(each channel)  
V
P
R
D
Diode power dissipation  
(each channel)  
45  
8
mW  
mA  
mA  
(Note 4)  
Output current(each channel)  
I
O
Peak output current  
(each channel)  
I
16  
OP  
Supply voltage  
V
0.5~15  
0.5~15  
V
V
CC  
Output voltage(each channel)  
V
O
O
Output power dissipation  
(each channel)  
P
35  
mW  
(Note 5)  
(Note 7)  
Operating temperature range  
Storage temperature range  
Lead solder temperature(10s)**  
T
opr  
55~100  
55~125  
260  
°C  
°C  
°C  
T
stg  
sol  
T
Isolation voltage  
(AC, 1min., R.H.60%)  
BV  
2500  
Vrms  
S
Note: Using continuously under heavy loads (e.g. the application of high temperature/current/voltage and the  
significant change in temperature, etc.) may cause this product to decrease in the reliability significantly even  
if the operating conditions (i.e. operating temperature/current/voltage, etc.) are within the absolute maximum  
ratings.  
Please design the appropriate reliability upon reviewing the Toshiba Semiconductor Reliability Handbook  
(“Handling Precautions”/“Derating Concept and Methods”) and individual reliability data (i.e. reliability test  
report and estimated failure rate, etc).  
(Note 1) Derate 0.8mA above 70°C.  
(Note 2) 50% duty cycle, 1ms pulse width. Derate 1.6mA / °C above 70°C.  
(Note 3) Pulse width 1μs, 300pps.  
(Note 4) Derate 0.9mW / °C above 70°C.  
(Note 5) Derate 1mW / °C above 70°C.  
**2mm below seating plane.  
Recommended Operating Conditions  
Characteristic  
Supply voltage  
Symbol  
Min.  
Typ.  
Max.  
Unit  
V
T
0
16  
12  
25  
85  
V
CC  
Forward current, each channel  
Operating temperature  
I
mA  
°C  
F
25  
opr  
Note: Recommended operating conditions are given as a design guideline to obtain expected performance of the  
device. Additionally, each item is an independent guideline respectively. In developing designs using this  
product, please confirm specified characteristics shown in this document.  
2
2007-10-01  
TLP2530,TLP2531  
Electrical Characteristics  
Over Recommended Temperature (Ta = 0°C~70°C, unless otherwise noted)  
Characteristic  
Symbol  
Test Condition  
Min.  
Typ.**  
Max.  
Unit  
%
TLP2530  
TLP2531  
7
30  
30  
I
V
= 16mA, V = 0.4V  
O
= 4.5V, Ta = 25°C  
F
CC  
CTR  
Current transfer  
(Note 6)  
19  
ratio  
(each channel)  
TLP2530  
TLP2531  
5
I
V
= 16mA, V = 0.5V  
O
F
CTR  
%
= 4.5V  
(Note 6)  
CC  
15  
I
V
= 16mA, I = 1.1mA  
F
O
TLP2530  
TLP2531  
0.1  
0.1  
0.4  
0.4  
V
V
Logic low output  
voltage  
= 4.5V  
CC  
V
OL  
(each channel)  
I
V
= 16mA, I = 2.4mA  
F
O
= 4.5V  
CC  
I
= 0mA, V = V  
= 5.5V  
= 15V  
F
O
CC  
CC  
3
500  
50  
nA  
Logic high output current  
(each channel)  
Ta = 25  
I
OH  
μA  
I
= 0mA, V = V  
O
F
I
= I = 16mA  
F2  
F1  
I
160  
μA  
μA  
Logic low supply current  
V
V
= V = Open  
O2  
= 15V  
CCL  
O1  
CC  
I
= I = 0mA  
F2  
F1  
I
0.05  
4
Logic high supply current  
V
V
= V = Open  
CCH  
O1  
O2  
= 15V  
CC  
Input forward voltage  
(each channel)  
V
F
5
1.65  
2  
1.7  
V
mV/°C  
V
I
= 16mA, Ta = 25°C  
= 16mA  
F
Temperature coefficent of  
ΔV / ΔTa  
I
F
F
forward voltage(each channel)  
Input reverse breakdown  
voltage(each channel)  
BV  
R
IR = 10μA, Ta = 25°C  
Input capacitance  
(each channel)  
C
IN  
60  
pF  
f = 1MHz, V = 0  
F
Relative humidity = 45%  
Input-output insulation  
leakage current  
I
1.0  
μA  
t = 5s, V  
= 3000V  
dc  
IO  
IO  
Ta = 25°C  
(Note 7)  
12  
R
10  
Ω
Resistance (inputoutput)  
Capacitance (inputoutput)  
V = 500V  
(Note 7)  
IO  
I O  
dc  
C
IO  
0.6  
pF  
f = 1MHz  
(Note 7)  
Relative humidity = 45%  
t = 5s, V 500V  
I
0.005  
μA  
Input-input leakage current  
II  
II =  
(Note 8)  
(Note 8)  
(Note 8)  
11  
R
10  
Ω
Resistance (inputinput)  
Capacitance (inputiutput)  
V = 500V  
II  
I I  
dc  
C
II  
0.25  
pF  
f = 1MHz  
**All typicals at Ta = 25°C.  
3
2007-10-01  
TLP2530,TLP2531  
Switching Characteristics (unless otherwise specified, Ta = 25°C, V = 5V, I = 16mA)  
CC  
F
Test  
Cir−  
cuit  
Characteristic  
Symbol  
Test Condition  
Min.  
Typ.  
Max.  
Unit  
Propagation delay  
time to logic low  
at output  
TLP2530  
TLP2531  
R = 4.1kΩ  
0.3  
0.2  
1.5  
0.8  
L
t
t
1
1
μs  
pHL  
pLH  
(each channel)  
R = 1.9kΩ  
L
Propagation delay  
time to logic  
high at output  
(each channel)  
TLP2530  
TLP2531  
R = 4.1kΩ  
L
0.5  
0.3  
1.5  
0.8  
μs  
R = 1.9kΩ  
L
Common mode  
transient  
immunity at logic  
high level output  
(each channel,  
I
= 0mA, V  
L
= 400V  
= 400V  
F
CM  
CM  
pp  
TLP2530  
1500  
R = 4.1kΩ  
CM  
2
V / μs  
H
I
= 0mA, V  
L
F
pp  
TLP2531  
TLP2530  
TLP2531  
1500  
R = 1.9kΩ  
Note 9)  
Common mode  
transient  
immunity at logic  
low level output  
(each channel,  
V
= 400V  
pp  
CM  
1500  
R = 4.1k, I = 16mA  
L
F
CM  
2
3
V / μs  
L
V
= 400  
pp  
CM  
1500  
R = 1.9k, I = 16mA  
L
F
Note 9)  
Bandwidth  
BW  
2
MH  
Z
R = 100Ω  
L
(each channel, Note 10)  
(Note 6) DC current transfer ratio is defined as the ratio of output collector current, IO, to the forward LED  
input current, IF, times 100%.  
(Note 7) Device considered a twoterminal device: Pins 1, 2, 3 and 4 shorted together and pins 5, 6, 7, and  
8 shorted together.  
(Note 8) Measured between pins 1 and 2 shorted together, and pins 3 and 4 shorted together.  
(Note 9) Common mode transient immunity in logic high level is the maximum tolerable (positive) dVcm / dt  
on the leading egde of the common mode pulse, Vcm, to assure that the output will remain in a  
logic high state(i.e., VO > 2.0V).  
Common mode transient immunity in logic low Level is the maximum tolerable (negative) dVcm / dt  
on the trailing edge of the common mode pulse signal, Vcm, to assure that the output will remain in  
logic low state(i.e., VO > 0.8V).  
(Note 10) The frequency at which the ac output voltage is 3dB below the low frequency asymptote.  
4
2007-10-01  
TLP2530,TLP2531  
Test Circuit 1: Switching Time, t HL, t LH  
p
p
V
=5V  
CC  
I
F
I
F
Pulse  
Generator  
0
R
1
2
3
4
8
7
6
5
L
PW=100μs  
Duty Cycle = 1/10  
V
O
V
5V  
O
Output  
Monitor  
I
Monitor  
F
1.5V  
1.5V  
V
OL  
t
t
pHL  
pLH  
Test Circuit 2: Transient Immunity And Typical Waveform  
400V  
90%  
V
CM  
V
=5V  
CC  
10%  
1
2
3
4
8
7
6
5
I
F
0V  
t
t
f
r
R
L
A
5V  
2V  
V
O
V
O
Output  
Monitor  
B
(I =0mA)  
F
V
FF  
0.8V  
V
CM  
+
V
V
O
OL  
(I =16mA)  
F
Pulse Generator  
O
Z =50Ω  
320(V)  
320(V)  
CM  
=
, CM  
=
L
H
t (μs)  
r
t (μs)  
f
Test Circuit 3: Frequency Response  
1
2
3
4
5V  
8
7
6
5
15V  
Set I  
F
0.1μF  
R
L
AC  
Input  
V
O
1.6Vdc  
0.25V  
ac  
P-P  
5
2007-10-01  
TLP2530,TLP2531  
I
– V  
ΔVF /ΔTa - I  
F
F
F
100  
-2.6  
Ta = 25 °C  
50  
30  
-2.4  
-2.2  
10  
5
3
1
-2.0  
-1.8  
0.5  
0.3  
0.1  
0.05  
0.03  
-1.6  
-1.4  
0.01  
1.0  
0.1  
0.3 0.5  
1
3
5
10  
30  
1.2  
1.4  
1.6  
V
1.8  
2.0  
Forward voltage  
(V)  
Forward current  
I
F
(mA)  
F
I
Ta  
I – I  
O F  
OH(1)  
300  
100  
10  
V
V
= 5 V  
CC  
5
3
= 0.4 V  
O
Ta = 25 °C  
50  
30  
1
0.5  
0.3  
10  
5
3
0.1  
0.05  
0.03  
1
0.6  
0.01  
0.1  
0
40  
80  
120  
0.3 0.5  
1
3
5
10  
30 50 100  
300  
160  
Ambient temperature Ta (°C)  
Forward current  
I
F
(mA)  
I
/ I – I  
F
I / I – Ta  
O F  
O
F
1.2  
1.0  
100  
V
V
= 5 V  
CC  
= 0.4 V  
O
50  
30  
Ta = -25°C  
0.8  
0.6  
25°C  
100°C  
10  
Normalized to :  
= 16 mA  
I
F
5
3
0.4  
0.2  
V
V
= 4.5 V  
CC  
= 0.4 V  
O
Ta = 25 °C  
1
0
-40  
-20  
0
20  
40  
60  
80  
100  
0.3 0.5  
1
3
5
10  
30  
50  
Forward current  
I
F
(mA)  
Ambient temperature Ta (°C)  
6
2007-10-01  
TLP2530,TLP2531  
I
– V  
V – I  
O F  
O
O
5
4
3
2
V
= 5 V  
CC  
V
=5V  
CC  
30mA  
25mA  
10  
Ta = 25 °C  
I
F
R
L
8
6
4
2
0
20mA  
15mA  
V
O
Ta=25°C  
R
L
= 2k  
10mA  
3.9kΩ  
10kΩ  
1
0
I
= 5mA  
F
0
1
2
3
4
5
6
7
0
4
8
12  
16  
20  
24  
Output voltage  
V
O
(V)  
Forward current  
I
F
(mA)  
t
, t – R  
pHL pLH L  
5
3
I
= 16 mA  
F
V
= 5 V  
CC  
Ta = 25 °C  
t
pLH  
1
0.5  
0.3  
t
pHL  
0.1  
1
3
5
10  
30  
50  
100  
Load resistance  
R
L
(k)  
7
2007-10-01  
TLP2530,TLP2531  
RESTRICTIONS ON PRODUCT USE  
20070701-EN  
The information contained herein is subject to change without notice.  
TOSHIBA is continually working to improve the quality and reliability of its products. Nevertheless, semiconductor  
devices in general can malfunction or fail due to their inherent electrical sensitivity and vulnerability to physical  
stress. It is the responsibility of the buyer, when utilizing TOSHIBA products, to comply with the standards of  
safety in making a safe design for the entire system, and to avoid situations in which a malfunction or failure of  
such TOSHIBA products could cause loss of human life, bodily injury or damage to property.  
In developing your designs, please ensure that TOSHIBA products are used within specified operating ranges as  
set forth in the most recent TOSHIBA products specifications. Also, please keep in mind the precautions and  
conditions set forth in the “Handling Guide for Semiconductor Devices,” or “TOSHIBA Semiconductor Reliability  
Handbook” etc.  
The TOSHIBA products listed in this document are intended for usage in general electronics applications  
(computer, personal equipment, office equipment, measuring equipment, industrial robotics, domestic appliances,  
etc.).These TOSHIBA products are neither intended nor warranted for usage in equipment that requires  
extraordinarily high quality and/or reliability or a malfunction or failure of which may cause loss of human life or  
bodily injury (“Unintended Usage”). Unintended Usage include atomic energy control instruments, airplane or  
spaceship instruments, transportation instruments, traffic signal instruments, combustion control instruments,  
medical instruments, all types of safety devices, etc.. Unintended Usage of TOSHIBA products listed in his  
document shall be made at the customer’s own risk.  
The products described in this document shall not be used or embedded to any downstream products of which  
manufacture, use and/or sale are prohibited under any applicable laws and regulations.  
The information contained herein is presented only as a guide for the applications of our products. No  
responsibility is assumed by TOSHIBA for any infringements of patents or other rights of the third parties which  
may result from its use. No license is granted by implication or otherwise under any patents or other rights of  
TOSHIBA or the third parties.  
GaAs(Gallium Arsenide) is used in this product. The dust or vapor is harmful to the human body. Do not break,  
cut, crush or dissolve chemically.  
Please contact your sales representative for product-by-product details in this document regarding RoHS  
compatibility. Please use these products in this document in compliance with all applicable laws and regulations  
that regulate the inclusion or use of controlled substances. Toshiba assumes no liability for damage or losses  
occurring as a result of noncompliance with applicable laws and regulations.  
8
2007-10-01  

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