AOD V N-Channel MOSFET

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1 V NChannel MOSFET General Description The AOD4 uses trench MOSFET technology that is uniquely optimized to provide the most efficient high frequency switching performance.power losses are minimized due to an extremely low combination of R DS(ON) and Crss.In addition,switching behavior is well controlled with a soft recovery body diode.this device is ideal for boost converters and synchronous rectifiers for consumer, telecom, industrial power supplies and LED backlighting. Product Summary V DS I D (at V GS =V) R DS(ON) (at V GS =V) R DS(ON) (at V GS =4.V) % UIS Tested % R g Tested V 3A < 46mΩ < 3mΩ Top View TO DPAK Bottom View D D D G S Absolute Maximum Ratings T A = C unless otherwise noted Parameter Symbol Maximum DrainSource Voltage GateSource Voltage Continuous Drain Current Pulsed Drain Current C Power Dissipation B T C = C T C = C Continuous Drain T A = C 4. I DSM Current T A =7 C 3.6 Avalanche Current C I AS Avalanche energy L=.mH C 7 T C = C T C = C S V DS V GS I DM E AS P D T A = C. P Power Dissipation A DSM W T A =7 C.6 Junction and Storage Temperature Range T J, T STG to 7 C G ± I D G S Units V V A A A mj W Thermal Characteristics Parameter Symbol Typ Max Maximum JunctiontoAmbient A t s Maximum JunctiontoAmbient A D R θja SteadyState 4 Maximum JunctiontoCase SteadyState.3 R θjc Units C/W C/W C/W Rev..: April 4 Page of 6

2 Electrical Characteristics (T J = C unless otherwise noted) Symbol Parameter Conditions Min Typ Max Units STATIC PARAMETERS BV DSS DrainSource Breakdown Voltage I D =µa, V GS =V V V DS =V, V GS =V I DSS Zero Gate Voltage Drain Current µa T J = C I GSS GateBody leakage current V DS =V, V GS =±V ± na V GS(th) Gate Threshold Voltage V DS =V GS, I D =µa.7..7 V I D(ON) On state drain current V GS =V, V DS =V 6 A R DS(ON) Static DrainSource OnResistance V GS =V, I D =A V GS =4.V, I D =A T J = C mω g FS Forward Transconductance V DS =V, I D =A S V SD Diode Forward Voltage I S =A,V GS =V.7 V I S Maximum BodyDiode Continuous Current G 46 A DYNAMIC PARAMETERS C iss Input Capacitance pf C oss Output Capacitance V GS =V, V DS =7V, f=mhz pf C rss Reverse Transfer Capacitance 4 pf R g Gate resistance V GS =V, V DS =V, f=mhz.3 Ω SWITCHING PARAMETERS Q g (V) Total Gate Charge 7 4 nc Q g (4.V) Total Gate Charge 7 nc V GS =V, V DS =7V, I D =A Q gs Gate Source Charge 7 nc Q gd Gate Drain Charge 3 nc t D(on) TurnOn DelayTime 9 ns t r TurnOn Rise Time V GS =V, V DS =7V, R L =3.7Ω, ns t D(off) TurnOff DelayTime R GEN =3Ω 9 ns t f TurnOff Fall Time 4 ns t rr Body Diode Reverse Recovery Time I F =A, di/dt=a/µs ns Q rr Body Diode Reverse Recovery Charge I F =A, di/dt=a/µs 434 nc A. The value of R θja is measured with the device mounted on in FR4 board with oz. Copper, in a still air environment with T A = C. The Power dissipation P DSM is based on R θja and the maximum allowed junction temperature of C. The value in any given application depends on the user's specific board design, and the maximum temperature of 7 C may be used if the PCB allows it. B. The power dissipation P D is based on T J(MAX) =7 C, using junctiontocase thermal resistance, and is more useful in setting the upper dissipation limit for cases where additional heatsinking is used. C. Repetitive rating, pulse width limited by junction temperature T J(MAX) =7 C. Ratings are based on low frequency and duty cycles to keep initial T J = C. D. The R θja is the sum of the thermal impedance from junction to case R θjc and case to ambient. E. The static characteristics in Figures to 6 are obtained using <3µs pulses, duty cycle.% max. F. These curves are based on the junctiontocase thermal impedance which is measured with the device mounted to a large heatsink, assuming a maximum junction temperature of T J(MAX) =7 C. The SOA curve provides a single pulse rating. G. The maximum current rating is package limited. H. These tests are performed with the device mounted on in FR4 board with oz. Copper, in a still air environment with T A = C. mω THIS PRODUCT HAS BEEN DESIGNED AND QUALIFIED FOR THE CONSUMER MARKET. APPLICATIONS OR USES AS CRITICAL COMPONENTS IN LIFE SUPPORT DEVICES OR SYSTEMS ARE NOT AUTHORIZED. AOS DOES NOT ASSUME ANY LIABILITY ARISING OUT OF SUCH APPLICATIONS OR USES OF ITS PRODUCTS. AOS RESERVES THE RIGHT TO IMPROVE PRODUCT DESIGN, FUNCTIONS AND RELIABILITY WITHOUT NOTICE. Rev..: April 4 Page of 6

3 TYPICAL ELECTRICAL AND THERMAL CHARACTERISTICS 6 4 V 6V V 4.V 4V 3 V DS =V I D (A) 3 V GS =3.V I D (A) C C 3 4 V DS (Volts) Fig : OnRegion Characteristics (Note E) V GS (Volts) Figure : Transfer Characteristics (Note E) 6.8 R DS(ON) (mω) 4 3 V GS =4.V V GS =V Normalized OnResistance.4.6. V GS =V I D =A 7 V GS =4.V I D =A 3 I D (A) Figure 3: OnResistance vs. Drain Current and Gate Voltage (Note E) Temperature ( C) Figure 4: OnResistance vs. Junction 8Temperature (Note E) 8 I D =A.E.E 4.E C R DS(ON) (mω) 6 4 C C I S (A).E.E.E3.E4 C V GS (Volts) Figure : OnResistance vs. GateSource Voltage (Note E).E V SD (Volts) Figure 6: BodyDiode Characteristics (Note E) Rev..: April 4 Page 3 of 6

4 TYPICAL ELECTRICAL AND THERMAL CHARACTERISTICS 8 V DS =7V I D =A 4 C iss V GS (Volts) 6 4 Capacitance (pf) C oss Crss 3 Q g (nc) Figure 7: GateCharge Characteristics 7 V DS (Volts) Figure 8: Capacitance Characteristics I D (Amps).... R DS(ON) limited T J(Max) =7 C T C = C µs µs µs ms ms DC Power (W) T J(Max) =7 C T C = C 7... V DS (Volts) Figure 9: Maximum Forward Biased Safe Operating Area (Note F).... Pulse Width (s) Figure : Single Pulse Power Rating Junctionto 8 Case (Note F) Z θjc Normalized Transient Thermal Resistance. D=T on /T T J,PK =T C P DM.Z θjc.r θjc R θjc =.3 C/W Single Pulse 4 In descending order D=.,.3,.,.,.,., single pulse P D T on T. E.... Pulse Width (s) Figure : Normalized Maximum Transient Thermal Impedance (Note F) Rev..: April 4 Page 4 of 6

5 TYPICAL ELECTRICAL AND THERMAL CHARACTERISTICS I AR (A) Peak Avalanche Current T A = C T A = C T A = C T A = C Power Dissipation (W) Time in avalanche, t A (µs) Figure : Single Pulse Avalanche capability (Note C) 7 7 T CASE ( C) Figure 3: Power Derating (Note F) 4 Current rating I D (A) 3 3 Power (W) T A = C T CASE ( C) Figure 4: Current Derating (Note F) E.. Pulse Width (s) 8 Figure : Single Pulse Power Rating Junctionto Ambient (Note H) Z θja Normalized Transient Thermal Resistance.. D=T on /T T J,PK =T A P DM.Z θja.r θja R θja = C/W Single Pulse 4 In descending order D=.,.3,.,.,.,., single pulse P D T on T. E.... Pulse Width (s) Figure 6: Normalized Maximum Transient Thermal Impedance (Note H) Rev..: April 4 Page of 6

6 Gate Charge Test Circuit & Waveform Qg V Qgs Qgd Ig RL Resistive Switching Test Circuit & Waveforms Charge Rg 9% % td(on) t r t d(off) t f t on t off Unclamped Inductive Switching (UIS) Test Circuit & Waveforms L E = / LI AR AR BV DSS Id Rg Id I AR Diode Recovery Test Circuit & Waveforms Q = Idt rr Ig Isd L Isd I F di/dt I RM t rr Rev..: April 4 Page 6 of 6

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