M81701FP
Powerex, Inc., 200 E. Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272
HVIC
High Voltage Integrated Circuit
600 Volts/±2 Amperes
16
9
D
E
RECOMMENDED MOUNT PAD
T
R
A C
S
1
8
DETAIL "A"
DETAIL "B"
Q
DETAIL "A"
H
J
PIN NUMBER
1
2
3
4
5
6
LO
LGND
VCC
NC
NC
VS
9
10
11
12
13
14
NC
NC
VDD
HIN
NC
LIN
B
N
DETAIL "B"
E
G
M
F
P
K
L
7 VB
8 HO
15 GND
16 NC
Description:
M81701FP is a high voltage Power
MOSFET and IGBT module driver
for half-bridge applications.
Features:
£
Floating Supply Voltage
£
Output Current
£
Half-Bridge Driver
£
SOP-16
Applications:
£
HID
£
PDP
£
MOSFET Driver
£
IGBT Driver
£
Inverter Module Control
Ordering Information:
M81701FP is a ±2 Ampere,
600 Volt HVIC, High Voltage
Integrated Circuit
7 V
B
V
DD
11
HV
LEVEL
SHIFT
V
DD
/V
CC
LEVEL
SHIFT
UV DETECT
FILTER
INTER
LOCK
RQ
R
S
8 H
O
H
IN
12
PULSE
GEN
6 V
S
UV
SIGNAL
L
IN
14
V
DD
/V
CC
LEVEL
SHIFT
DELAY
UV DETECT
FILTER
R Q
S
1 L
O
3 V
CC
GND 15
2 L
GND
Outline Drawing and Circuit Diagram
Dimensions
A
B
C
D
E
F
G
H
J
Inches
0.31±0.01
0.41±0.004
0.21±0.004
0.12
0.05
0.02±0.002
0.004
0.07
0.01±0.004
Millimeters
7.8±0.3
10.1±0.1
5.3±0.1
2.10
1.27
0.4±0.05
0.1
1.8
0.1±0.1
Dimensions
K
L
M
N
P
Q
R
S
T
Inches
0.05
0.024±0.008
0.1±0.002
4°±4°
0.03 Max.
0.006
0.05 Min.
0.30
0.029
Millimeters
1.25
0.6±0.2
0.2±0.05
4°±4°
0.755 Max.
0.15
Min. 1.27
7.62
0.76
1
Powerex, Inc., 200 E. Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272
M81701FP
HVIC, High Voltage Integrated Circuit
600 Volts/±2 Amperes
Absolute Maximum Ratings,
T
a
= 25°C unless otherwise specified
Characteristics
High Side Floating Supply Absolute Voltage
High Side Floating Supply Offset Voltage
High Side Floating Supply Voltage (V
BS
= V
B
– V
S
)
Allowable Offset Supply Voltage Minus Serge (P
W
< 1µs)
High Side Output Voltage
Low Side Fixed Supply Voltage
Low Side Output Voltage
Logic Supply Voltage
Logic Input Voltage (H
IN
, L
IN
)
Low Side Return Offset Voltage (V
CC
– L
GND
< 24V)
Allowable Offset Supply Voltage Transient
Package Power Dissipation (T
a
= 25°C, On Board)
Linear Derating Factor (T
a
> 25°C, On Board)
Junction to Case Thermal Resistance
Junction Temperature
Operation Temperature
Storage Temperature
Symbol
V
B
V
S
V
BS
-V
S
V
HO
V
CC
V
LO
V
DD
V
IN
L
GND
d
VS
/dt
P
d
K
θ
R
th(j-c)
T
j
T
opr
T
stg
M81701FP
-0.5 ~ 624
-0.5 ~ 600
-0.5 ~ 24
-5
V
S
– 0.5 ~ V
B
+ 0.5
-0.5 ~ 24
-0.5 ~ V
CC
+ 0.5
-0.5 ~ 24
-0.5 ~ V
DD
+ 0.5
-5 ~ V
CC
+ 0.5
±50
0.88
-8.8
50
-20 ~ 125
-20 ~ 75
-40 ~ 125
Units
Volts
Volts
Volts
Volts
Volts
Volts
Volts
Volts
Volts
Volts
V/ns
Watts
mW/°C
°C/W
°C
°C
°C
Recommended Operating Conditions
Characteristics
High Side Floating Supply Absolute Voltage
High Side Floating Supply Offset Voltage
High Side Floating Supply Voltage
Low Side Fixed Supply Voltage
Logic Supply Voltage
Logic Input Voltage
Low Side Return Offset Voltage
Symbol
V
B
V
S
V
BS
V
CC
V
DD
V
IN
L
GND
H
IN
, L
IN
V
BS
= V
B
– V
S
Test Conditions
Min.
V
S
+ 10
0
10
10
5
0
-5
Typ.
—
—
—
—
—
—
—
Max.
V
S
+ 20
500
20
20
20
V
DD
5
Units
Volts
Volts
Volts
Volts
Volts
Volts
Volts
THERMAL DERATING FACTOR
CHARACTERISTICS
2.0
PACKAGE POWER DISSIPATION, Pd, (WATTS)
1.5
1.0
0.5
0
0
25
50
75
100
125
TEMPERATURE, (°C)
2
Powerex, Inc., 200 E. Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272
M81701FP
HVIC, High Voltage Integrated Circuit
600 Volts/±2 Amperes
Electrical Characteristics
T
a
= 25°C, V
CC
= V
BS
(= V
B
– V
S
) = V
DD
= 15V, L
GND
= 0V unless otherwise specified
Characteristics
Floating Supply Leakage Current
V
BS
Standby Current
V
CC
Standby Current
V
DD
Standby Current
High Level Output Voltage
Low Level Output Voltage
High Level Input Threshold Voltage
Low Level Input Threshold Voltage
High Level Input Threshold Voltage
Low Level Input Threshold Voltage
High Level Input Bias Current
Low Level Input Bias Current
V
BS
Supply UV Reset Voltage
V
BS
Supply UV Hysteresis Voltage
V
BS
Supply UV Filter Time
V
CC
Supply UV Reset Voltage
V
CC
Supply UV Hysteresis Voltage
V
CC
Supply UV Filter Time
Output High Level Short Circuit
Pulsed Current
Output Low Level Short Circuit
Pulsed Current
Output High Level ON Resistance
Output Low Level ON Resistance
High Side Turn-On Propagation Delay
High Side Turn-Off Propagation Delay
High Side Turn-On Rise Time
High Side Turn-Off Fall Time
Low Side Turn-On Propagation Delay
Low Side Turn-Off Propagation Delay
Low Side Turn-On Rise Time
Low Side Turn-Off Rise Time
Delay Matching,
High Side and Low Side Turn-On
Delay Matching,
High Side and Low Side Turn-Off
Δt
dHL
|t
dHL(HO)
– t
dHL(LO)
|
—
—
30
ns
R
OH
R
OL
t
dLH(HO)
t
dHL(HO)
t
rH
t
fH
t
dLH(LO)
t
dHL(LO)
t
rL
t
fL
Δt
dLH
I
O
= -200mA, R
OH
= (V
OH
– V
O
)/I
O
I
O
= 200mA, R
OL
= V
O
/I
O
C
L
= 1000pF between H
O
– V
S
C
L
= 1000pF between H
O
– V
S
C
L
= 1000pF between H
O
– V
S
C
L
= 1000pF between H
O
– VS
C
L
= 1000pf between L
O
– GND
C
L
= 1000pf between L
O
– GND
C
L
= 1000pf between L
O
– GND
C
L
= 1000pf between L
O
– GND
|t
dLH(HO)
– t
dLH(LO)
|
—
—
—
—
—
—
—
—
—
—
—
10
2.5
—
—
—
—
—
—
—
—
—
13
3
350
330
60
30
350
330
60
30
30
Ω
Ω
ns
ns
ns
ns
ns
ns
ns
ns
ns
I
OL
V
O
= 15V, V
IN
= 0V, P
W
< 10µs
—
2.5
—
Amperes
Symbol
I
FS
I
BS
I
CC
I
DD
V
OH
V
OL
V
IH15
V
IL15
V
IH5
V
IL5
I
IH
I
IL
V
BSuvr
V
BSuvh
t
VBSuv
V
CCuvr
V
CCuvh
t
VCCuv
I
OH
V
O
= 0V, V
IN
= 15V, P
W
< 10µs
I
O
= 0A, L
O
, H
O
I
O
= 0A, L
O
, H
O
H
IN
, L
IN
H
IN
, L
IN
H
IN
, L
IN
(V
DD
= 5V)
H
IN
, L
IN
(V
DD
= 5V)
V
IN
= 15V
V
IN
= 0V
Test Conditions
V
B
= V
S
= 600V
Min.
—
—
—
—
13.8
—
—
6.0
—
1.4
—
—
7.5
0.1
—
7.5
0.1
—
—
Typ.
—
0.4
0.75
—
14.4
—
8.4
6.8
3.1
2.4
75
—
8.6
0.4
10
8.6
0.4
10
-2.5
Max.
1
0.7
1.5
10
—
0.1
9.5
—
4.1
—
150
1.0
9.7
0.7
—
9.7
0.7
—
—
Units
µA
mA
mA
µA
Volts
Volts
Volts
Volts
volts
Volts
µA
µA
Volts
Volts
µs
Volts
Volts
µs
Amperes
3
Powerex, Inc., 200 E. Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272
M81701FP
HVIC, High Voltage Integrated Circuit
600 Volts/±2 Amperes
FUNCTION TABLE (X: H or L)
H
IN
L
L
H
H
X
X
L
H
L
IN
L
H
L
H
L
H
X
X
V
BS
UV
H
H
H
H
L
L
H
H
V
CC
UV
H
H
H
H
H
H
L
L
HO
L
L
H
*
L
L
L
L
LO
L
H
L
*
L
H
L
L
LO = OFF, HO = OFF, V
BS
UV tripped
LO = ON, HO = OFF, V
BS
UV tripped
LO = OFF, HO = OFF, V
CC
UV tripped
LO = OFF, HO = OFF, V
CC
UV tripped
Behavioral State
LO = OFF, HO = OFF
LO = ON, HO = OFF
LO = OFF, HO = ON
Note : “L” state of V
BS
UV and V
CC
UV means that UV trip voltage.
* If both input signals are “H”, refer to TIMING DIAGRAM.
TIMING DIAGRAM
1. Input/Output Timing Diagram
When input signal (H
IN
or L
IN
) is “H”, then output signal (HO or LO) is “H”. In the case of both input signals (H
IN
and L
IN
) are “H”,
first coming input signal (H
IN
or L
IN
) “H” is only accepted. Corresponding this signal, output signal (HO or LO) becomes “H”.
Corresponding the other signal (L
IN
or H
IN
), output signal (LO or HO) keeps “L”.
H
IN
L
IN
HO
LO
2. V
CC
(V
BS
) Supply Under Voltage Lockout Timing Diagram
V
CC
(V
BS
)
V
CCuvt
(V
BSuvt
)
t
VCCuv
(t
VBSuv
)
V
CCuvh
(V
BSuvh
)
V
CCuvr
(V
BSuvr
)
LO (HO)
L
IN
(H
IN
)
3. Allowable Supply Voltage Transient
Allowable high side floating supply voltage (V
BS
) transient or low side fixed supply voltage (V
CC
) transient are below 50V/µs.
In case V
BS
or V
CC
are started more than 50V/µs, output signal (HO or LO) may be “H”.
4