TSM4NB60CI MOSFET. Datasheet pdf. Equivalent
Type Designator: TSM4NB60CI
Type of Transistor: MOSFET
Type of Control Channel: N -Channel
Pdⓘ - Maximum Power Dissipation: 25 W
|Vds|ⓘ - Maximum Drain-Source Voltage: 600 V
|Vgs|ⓘ - Maximum Gate-Source Voltage: 30 V
|Vgs(th)|ⓘ - Maximum Gate-Threshold Voltage: 4.5 V
|Id|ⓘ - Maximum Drain Current: 4 A
Tjⓘ - Maximum Junction Temperature: 150 °C
Qgⓘ - Total Gate Charge: 14.5 nC
trⓘ - Rise Time: 20 nS
Cossⓘ - Output Capacitance: 53.2 pF
Rdsⓘ - Maximum Drain-Source On-State Resistance: 2.5 Ohm
Package: ITO-220
TSM4NB60CI Transistor Equivalent Substitute - MOSFET Cross-Reference Search
TSM4NB60CI Datasheet (PDF)
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TSM4NB60 600V N-Channel Power MOSFET TO-220 ITO-220 Pin Definition: PRODUCT SUMMARY 1. Gate VDS (V) RDS(on)() ID (A) 2. Drain 3. Source 600 2.5 @ VGS =10V 4 General Description The TSM4NB60 N-Channel Power MOSFET is TO-251 TO-252 (IPAK) (DPAK) produced by new advance planar process. This advanced technology has been especially tailored to minimize on-state resi
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TSM4N80 800V N-Channel Power MOSFET TO-220 ITO-220 PRODUCT SUMMARY Pin Definition: 1. Gate VDS (V) RDS(on)() ID (A) 2. Drain 3. Source 800 3 @ VGS =10V 4 General Description The TSM4N80 N-Channel enhancement mode Power MOSFET is produced by planar stripe DMOS technology. This advanced technology has been especially tailored to minimize on-state resistance, provide s
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TSM4N90 900V N-Channel Power MOSFET TO-220 ITO-220 PRODUCT SUMMARY Pin Definition: 1. Gate VDS (V) RDS(on)() ID (A) 2. Drain 3. Source 900 4 @ VGS =10V 4 General Description The TSM4N90 N-Channel enhancement mode Power MOSFET is produced by planar stripe DMOS technology. This advanced technology has been especially tailored to minimize on-state resistance, provide s
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TSM4N60 600V N-Channel Power MOSFET TO-220 ITO-220 TO-251 TO-252 Pin Definition: PRODUCT SUMMARY (IPAK) (DPAK) 1. Gate 2. Drain VDS (V) RDS(on)() ID (A) 3. Source 600 2.5 @ VGS =10V 2 General Description The TSM4N60 is produced using advanced planar stripe, DMOS technology. This latest technology has been especially designed to minimize on-state resistance, have a
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