LSK389 Series, JFETs

Results:
9
Manufacturer
Series
Current - Drain (Idss) @ Vds (Vgs=0)
Voltage - Cutoff (VGS off) @ Id
Current Drain (Id) - Max
Mounting Type
Supplier Device Package
Drain to Source Voltage (Vdss)
Package / Case
Operating Temperature
Input Capacitance (Ciss) (Max) @ Vds
FET Type
Grade
Resistance - RDS(On)
Qualification
Power - Max
Voltage - Breakdown (V(BR)GSS)
Results remaining9
Applied Filters:
LSK389
Select
ImageProduct DetailPriceAvailabilityECAD ModelMounting TypeOperating TemperaturePackage / CaseSupplier Device PackageSeriesFET TypeVoltage - Breakdown (V(BR)GSS)Current - Drain (Idss) @ Vds (Vgs=0)Voltage - Cutoff (VGS off) @ IdInput Capacitance (Ciss) (Max) @ VdsPower - MaxGradeDrain to Source Voltage (Vdss)Current Drain (Id) - MaxResistance - RDS(On)Qualification
LSK389ASOIC8LTB ROHS
1+
$21.5493
5+
$20.3521
10+
$19.1549
Quantity
85 Available
Can ship immediately
Ships from: HK
PCB Symbol, Footprint & 3D Model
Surface Mount
-55°C ~ 150°C (TJ)
8-SOIC (0.154", 3.90mm Width)
8-SOIC
LSK389
2 N-Channel (Dual)
40 V
2.6 mA @ 10 V
300 mV @ 100 nA
25pF @ 10V
400 mW
-
-
-
-
-
LSK389D TO-71 6L ROHS
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Through Hole
-55°C ~ 150°C (TJ)
TO-71-6 Metal Can
TO-71
LSK389
2 N-Channel (Dual)
40 V
17 mA @ 10 V
300 mV @ 0.1 µA
25pF @ 10V
400 mW
-
-
-
-
-
LSK389B SOIC 8L ROHS
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
-55°C ~ 150°C (TJ)
8-SOIC (0.154", 3.90mm Width)
8-SOIC
LSK389
2 N-Channel (Dual)
40 V
6 mA @ 10 V
300 mV @ 1 µA
25pF @ 10V
400 mW
-
40 V
10 mA
-
-
LSK389B TO-71 6L ROHS
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Through Hole
-55°C ~ 150°C (TJ)
TO-71-6 Metal Can
TO-71
LSK389
2 N-Channel (Dual)
40 V
6 mA @ 10 V
300 mV @ 1 µA
25pF @ 10V
400 mW
-
40 V
10 mA
-
-
LSK389A SOIC 8L ROHS
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
-55°C ~ 150°C (TJ)
8-SOIC (0.154", 3.90mm Width)
8-SOIC
LSK389
2 N-Channel (Dual)
40 V
2.6 mA @ 10 V
300 mV @ 1 µA
25pF @ 10V
400 mW
-
40 V
10 mA
-
-
LSK389D SOIC 8L ROHS
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
-55°C ~ 150°C (TJ)
8-SOIC (0.154", 3.90mm Width)
8-SOIC
LSK389
2 N-Channel (Dual)
40 V
17 mA @ 10 V
300 mV @ 0.1 µA
25pF @ 10V
400 mW
-
-
-
-
-
LSK389A TO-71 6L ROHS
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Through Hole
-55°C ~ 150°C (TJ)
TO-71-6 Metal Can
TO-71
LSK389
2 N-Channel (Dual)
40 V
2.6 mA @ 10 V
300 mV @ 1 µA
25pF @ 10V
400 mW
-
40 V
10 mA
-
-
LSK389BSOIC8LTB ROHS
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
-55°C ~ 150°C (TJ)
8-SOIC (0.154", 3.90mm Width)
8-SOIC
LSK389
2 N-Channel (Dual)
40 V
6 mA @ 10 V
300 mV @ 100 nA
25pF @ 10V
400 mW
-
-
-
-
-
LSK389C TO-71 6L
LOW NOISE, MONOLITHIC DUAL, N-CH
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Through Hole
-55°C ~ 150°C (TJ)
TO-71-6 Metal Can
TO-71
LSK389
2 N-Channel (Dual)
40 V
10 mA @ 10 V
300 mV @ 0.1 µA
25pF @ 10V
400 mW
-
-
-
-
-

About  JFETs

Junction gate field-effect transistors (JFETs) are semiconductor devices widely utilized as electronically-controlled switches, amplifiers, or voltage-controlled resistors. These devices operate based on the principle of controlling current flow through a semiconducting channel between the source and drain terminals by varying the voltage applied to the gate terminal. When a potential difference of the appropriate polarity is applied between the gate and source terminals, it alters the resistance to current flow in the channel. This adjustment in resistance leads to a decrease in the amount of current flowing between the source and drain terminals. One notable characteristic of JFETs is that they do not require a biasing current for operation. Instead, they rely on the flow of charges through the semiconducting channel between the source and drain terminals to control the current flow. This allows for simplified circuit designs and eliminates the need for additional biasing components. JFETs find applications in various electronic circuits where precise control over current flow, amplification, or voltage-controlled resistance is required. Their unique characteristics and simplicity make them suitable for a wide range of applications in fields such as telecommunications, audio amplification, and instrumentation.