RFD12N06RLE FAIRCHILD | Alldatasheet
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Technical content
Features
- Ultra Low On-Resistance -r DS(ON) = 0.063Ω, VGS = 10V -r DS(ON) = 0.071Ω, VGS = 5V Simulation Models - Temperature Compensated PSPICE® and SABER© Electrical Models - Spice and SABER© Thermal Impedance Models - www.fairchildsemi.com Peak Current vs Pulse Width Curve UIS Rating Curve Switching Time vs RGS Curves
Ordering Information
Absolute Maximum Ratings TC = 25oC, Unless Otherwise Specified JEDEC TO-251AA JEDEC TO-252AA JEDEC TO-220AB DRAIN (FLANGE) DRAIN SOURCE RFD12N06RLE GATE RFD12N06RLESM GATE SOURCE DRAIN (FLANGE) GATE DRAIN (FLANGE) SOURCE DRAIN RFP12N06RLE D G S PART NUMBER PACKAGE BRAND RFD12N06RLE TO-251AA 12N6LE RFD12N06RLESM TO-252AA 12N6LE RFP12N06RLE TO-220AB 12N06RLE NOTE: When ordering, use the entire part number. Add the suffix T to obtain the TO-252AA variant in tape and reel, i.e. RFD12N06RLESM9A. RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE UNITS Drain Current Figure 4 A A A A 0.327 W W/oC Maximum Temperature for Soldering 300 260 oC oC NOTE: 1. TJ = 25oC to 150oC. CAUTION: Stresses above those listed in “Absolute Maximum Ratings” may cause permanent damage to the device. This is a stress only rating and operation of the device at these or any other conditions above those indicated in the operational sections of this specification is not implied. Data Sheet January 2002
RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE ©2002 Fairchild Semiconductor Corporation RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE Rev. B Electrical SpecificationsTC = 25oC, Unless Otherwise Specified PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNITS OFF STATE SPECIFICATIONS Drain to Source Breakdown Voltage BV DSS ID = 250µA, VGS = 0V (Figure 12) 60 - - V ID = 250µA, VGS = 0V , TC = -40oC (Figure 12) 55 - - V Zero Gate Voltage Drain Current I DSS VDS = 55V, VGS = 0V - - 1 µA VDS = 50V, VGS = 0V, TC = 150oC - - 250 µA Gate to Source Leakage Current I GSS VGS = ±16V - - ±100 nA ON STATE SPECIFICATIONS Gate to Source Threshold Voltage V GS(TH) VGS = VDS , ID = 250µA (Figure 11) 1 - 3 V Drain to Source On Resistance r DS(ON) ID = 18A, VGS = 10V (Figures 9, 10) - 0.052 0.063 Ω ID = 8A, VGS = 5V (Figure 9) - 0.060 0.071 Ω ID = 8A, VGS = 4.5V (Figure 9) - 0.064 0.075 Ω THERMAL SPECIFICATIONS Thermal Resistance Junction to Case RθJC TO-251AA, TO-252AA - - 3.06 oC/W Thermal Resistance Junction to Ambient R θJA - - 100 oC/W SWITCHING SPECIFICATIONS (VGS = 4.5V) Turn-On Time t ON VDD = 30V, ID = 8A VGS = 4.5V, RGS = 22Ω (Figures 15, 21, 22) - - 153 ns Turn-On Delay Time t d(ON) -1 3-n s Rise Time t r -8 9-n s Turn-Off Delay Time t d(OFF) -2 2-n s Fall Time t f -3 7-n s Turn-Off Time t OFF - - 89 ns SWITCHING SPECIFICATIONS (VGS = 10V) Turn-On Time t ON VDD = 30V, ID = 18A VGS = 10V, R GS = 24Ω (Figures 16, 21, 22) - - 59 ns Turn-On Delay Time t d(ON) -5 . 3- n s Rise Time t r -3 4-n s Turn-Off Delay Time t d(OFF) -4 1-n s Fall Time t f - 50 - ns Turn-Off Time t OFF - - 136 ns GATE CHARGE SPECIFICATIONS Total Gate Charge Q g(TOT) VGS = 0V to 10V V DD = 30V, ID = 8A, Ig(REF) = 1.0mA (Figures 14, 19, 20) -1 2 1 5 n C Gate Charge at 5V Q g(5) VGS = 0V to 5V - 6.8 8.2 nC Threshold Gate Charge Q g(TH) VGS = 0V to 1V - 0.54 0.65 nC Gate to Source Gate Charge Q gs -1 . 7-n C Gate to Drain “Miller” Charge Q gd -3- n C CAPACITANCE SPECIFICATIONS Input Capacitance C ISS VDS = 25V, VGS = 0V, f = 1MHz (Figure 13) - 485 - pF Output Capacitance C OSS - 130 - pF Reverse Transfer Capacitance C RSS -2 8-p F Source to Drain Diode Specifications PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNITS Source to Drain Diode Voltage V SD ISD = 8A - - 1.25 V ISD = 4A - - 1.0 V Reverse Recovery Time t rr ISD = 8A, dISD /dt = 100A/µs- - 7 0 n s Reverse Recovered Charge Q RR ISD = 8A, dISD /dt = 100A/µs - - 165 nC RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE
RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE ©2002 Fairchild Semiconductor Corporation RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE Rev. B .SUBCKT HUF76409D 2 1 3 ; rev 23 August 1999 CA 12 8 6.30e-10 CB 15 14 6.30e-10 CIN 6 8 4.60e-10 DBODY 7 5 DBODYMOD DBREAK 5 11 DBREAKMOD DPLCAP 10 5 DPLCAPMOD EBREAK 11 7 17 18 66.55 EDS 14 8 5 8 1 EGS 13 8 6 8 1 ESG 6 10 6 8 1 EVTHRES 6 21 19 8 1 EVTEMP 20 6 18 22 1 IT 8 17 1 LDRAIN 2 5 1.00e-9 LGATE 1 9 3.73e-9 LSOURCE 3 7 3.43e-9 MMED 16 6 8 8 MMEDMOD MSTRO 16 6 8 8 MSTROMOD MWEAK 16 21 8 8 MWEAKMOD RBREAK 17 18 RBREAKMOD 1 RDRAIN 50 16 RDRAINMOD 1.88e-2 RGATE 9 20 3.76 RLDRAIN 2 5 10 RLGATE 1 9 37.3 RLSOURCE 3 7 34.3 RSLC1 5 51 RSLCMOD 1e-6 RSLC2 5 50 1e3 RSOURCE 8 7 RSOURCEMOD 2.40e-2 RVTHRES 22 8 RVTHRESMOD 1 RVTEMP 18 19 RVTEMPMOD 1 S1A 6 12 13 8 S1AMOD S1B 13 12 13 8 S1BMOD S2A 6 15 14 13 S2AMOD S2B 13 15 14 13 S2BMOD VBAT 22 19 DC 1 ESLC 51 50 VALUE={(V(5,51)/ABS(V(5,51)))*(PWR(V(5,51)/(1e-6*43),3))} .MODEL DBREAKMOD D (RS = 3.70e- 1TRS1 = 9.10e- 4TRS2 = -1e-6) .MODEL DPLCAPMOD D (CJO = 3.70e-1 0IS = 1e-3 0N = 10 M = 0.79) .MODEL MMEDMOD NMOS (VTO = 2.08 KP = 3.2 IS = 1e-30 N = 10 TOX = 1 L = 1u W = 1u RG = 3.76) .MODEL MSTROMOD NMOS (VTO = 2.40 KP = 28 IS = 1e-30 N = 10 TOX = 1 L = 1u W = 1u) .MODEL RBREAKMOD RES (TC1 = 1.13e- 3TC2 = -3.00e-7) .MODEL RDRAINMOD RES (TC1 = 9.80e-3 TC2 = 2.85e-5) .MODEL RSLCMOD RES (TC1 = 5.00e-3 TC2 = 5.05e-6) .MODEL RSOURCEMOD RES (TC1 = 1.5e-3 TC2 = 1e-6) .MODEL RVTHRESMOD RES (TC1 = -1.48e-3 TC2 = -8.30e-6) .MODEL RVTEMPMOD RES (TC1 = -1.68e- 3TC2 = 8e-7) .MODEL S1AMOD VSWITCH (RON = 1e-5 ROFF = 0.1 VON = -5 VOFF= -2.8) .MODEL S1BMOD VSWITCH (RON = 1e-5 ROFF = 0.1 VON = -2.8 VOFF= -5) .MODEL S2AMOD VSWITCH (RON = 1e-5 ROFF = 0.1 VON = -0.5 VOFF= 0.5) .MODEL S2BMOD VSWITCH (RON = 1e-5 ROFF = 0.1 VON = 0.5 VOFF= -0.5) .ENDS NOTE: For further discussion of the PSPICE model, consult A New PSPICE Sub-Circuit for the Power MOSFET Featuring Global Temperature Options; IEEE Power Electronics Specialist Conference Records, 1991, written by William J. Hepp and C. Frank Wheatley. + - + - RBREAK RVTEMP VBAT RVTHRES IT 17 18 S1A S1B S2A S2B CA CB EGS EDS MWEAK EBREAK DBODY RSOURCE SOURCE 7 3 LSOURCE RLSOURCE CIN RDRAIN EVTHRES 1621 MMED MSTRO DRAIN LDRAIN RLDRAIN DBREAK DPLCAP ESLC RSLC1 RSLC2 GATE RGATE EVTEMP ESG LGATE RLGATE
RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE ©2002 Fairchild Semiconductor Corporation RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE Rev. B REV 23 August 1999 template huf76409d n2,n1,n3 electrical n2,n1,n3 var i iscl d..model dbreakmod = () d..model dplcapmod = (cjo = 3.70e-10, is = 1e-30, m = 0.79) m..model mmedmod = (type=_n, vto = 2.08, kp = 3.2, is = 1e-30, tox = 1) m..model mstrongmod = (type=_n, vto = 2.40, kp = 28, is = 1e-30, tox = 1) m..model mweakmod = (type=_n, vto = 1.80, kp = 0.08, is = 1e-30, tox = 1) sw_vcsp..model s1amod = (ron = 1e-5, roff = 0.1, von = -5, voff = -2.8) sw_vcsp..model s1bmod = (ron =1e-5, roff = 0.1, von = -2.8, voff = -5) c.ca n12 n8 = 6.30e-10 c.cb n15 n14 = 6.30e-10 c.cin n6 n8 = 4.60e-10 d.dbody n7 n71 = model=dbodymod d.dbreak n72 n11 = model=dbreakmod d.dplcap n10 n5 = model=dplcapmod i.it n8 n17 = 1 l.ldrain n2 n5 = 1.00e-9 l.lgate n1 n9 = 3.73e-9 l.lsource n3 n7 = 3.43e-9 m.mmed n16 n6 n8 n8 = model=mmedmod, l=1u, w=1u m.mstrong n16 n6 n8 n8 = model=mstrongmod, l=1u, w=1u m.mweak n16 n21 n8 n8 = model=mweakmod, l=1u, w=1u res.rbreak n17 n18 = 1, tc1 = 1.13e-3, tc2 = -3.00e-7 res.rdbody n71 n5 = 1.56e-2, tc1 = -1.0e-3, tc2 = 7.00e-6 res.rdbreak n72 n5 = 3.70e-1, tc1 = 9.10e-4, tc2 = -1e-6 res.rdrain n50 n16 = 1.88e-2, tc1 = 9.80e-3, tc2 = 2.85e-5 res.rgate n9 n20 = 3.76 res.rldrain n2 n5 = 10 res.rlgate n1 n9 = 37.3 res.rlsource n3 n7 = 34.3 res.rslc1 n5 n51= 1e-6, tc1 = 5.00e-3, tc2 = 5.05e-6 res.rslc2 n5 n50 = 1e3 res.rsource n8 n7 = 2.40e-2, tc1 = 1.5e-3, tc2 =1e-6 res.rvtemp n18 n19 = 1, tc1 = -1.68e-3, tc2 = 8.00e-7 res.rvthres n22 n8 = 1, tc1 = -1.48e-3, tc2 = -8.30e-6 spe.ebreak n11 n7 n17 n18 = 66.55 spe.eds n14 n8 n5 n8 = 1 spe.egs n13 n8 n6 n8 = 1 spe.esg n6 n10 n6 n8 = 1 spe.evtemp n20 n6 n18 n22 = 1 spe.evthres n6 n21 n19 n8 = 1 sw_vcsp.s1a n6 n12 n13 n8 = model=s1amod sw_vcsp.s1b n13 n12 n13 n8 = model=s1bmod sw_vcsp.s2a n6 n15 n14 n13 = model=s2amod sw_vcsp.s2b n13 n15 n14 n13 = model=s2bmod v.vbat n22 n19 = dc=1 equations { i (n51->n50) +=iscl iscl: v(n51,n50) = ((v(n5,n51)/(1e-9+abs(v(n5,n51))))*((abs(v(n5,n51)*1e6/43))** 3)) + - + - RBREAK RVTEMP VBAT RVTHRES IT 17 18 S1A S1B S2A S2B CA CB EGS EDS MWEAK EBREAK DBODY RSOURCE SOURCE 7 3 LSOURCE RLSOURCE CIN RDRAIN EVTHRES 1621 MMED MSTRO DRAIN LDRAIN RLDRAIN DBREAK DPLCAP ISCL RSLC1 RSLC2 GATE RGATE EVTEMP ESG LGATE RLGATE RDBODY RDBREAK
RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE ©2002 Fairchild Semiconductor Corporation RFD12N06RLE, RFD12N06RLESM, RFP12N06RLE Rev. B SPICE Thermal Model REV 10 September 1999 HUF76409T CTHERM1 th 6 9.50e-4 CTHERM2 6 5 2.40e-3 CTHERM3 5 4 3.90e-3 CTHERM4 4 3 4.10e-3 CTHERM5 3 2 5.60e-3 CTHERM6 2 tl 4.00e-2 RTHERM1 th 6 2.00e-2 RTHERM2 6 5 1.10e-1 RTHERM3 5 4 2.75e-1 RTHERM4 4 3 5.53e-1 RTHERM5 3 2 7.25e-1 RTHERM6 2 tl 7.56e-1 SABER Thermal Model SABER thermal model HUF76409T template thermal_model th tl thermal_c th, tl ctherm.ctherm1 th 6 = 9.50e-4 ctherm.ctherm2 6 5 = 2.40e-3 ctherm.ctherm3 5 4 = 3.90e-3 ctherm.ctherm4 4 3 = 4.10e-3 ctherm.ctherm5 3 2 = 5.60e-3 ctherm.ctherm6 2 tl = 4.00e-2 rtherm.rtherm1 th 6 = 2.00e-2 rtherm.rtherm2 6 5 = 1.10e-1 rtherm.rtherm3 5 4 = 2.75e-1 rtherm.rtherm4 4 3 = 5.53e-1 rtherm.rtherm5 3 2 = 7.25e-1 rtherm.rtherm6 2 tl = 7.56e-1 RTHERM4 RTHERM6 RTHERM5 RTHERM3 RTHERM2 RTHERM1 CTHERM4 CTHERM6 CTHERM5 CTHERM3 CTHERM2 CTHERM1 tl th JUNCTION CASE
FAIRCHILD SEMICONDUCTOR RESERVES THE RIGHT TO MAKE CHANGES WITHOUT FURTHER NOTICE TO ANY PRODUCTS HEREIN TO IMPROVE RELIABILITY, FUNCTION OR DESIGN. FAIRCHILD DOES NOT ASSUME ANY LIABILITY ARISING OUT OF THE APPLICATION OR USE OF ANY PRODUCT OR CIRCUIT DESCRIBED HEREIN; NEITHER DOES IT CONVEY ANY LICENSE UNDER ITS PATENT RIGHTS, NOR THE RIGHTS OF OTHERS. TRADEMARKS The following are registered and unregistered trademarks Fairchild Semiconductor owns or is authorized to use and is not intended to be an exhaustive list of all such trademarks. LIFE SUPPORT POLICY FAIRCHILD’S PRODUCTS ARE NOT AUTHORIZED FOR USE AS CRITICAL COMPONENTS IN LIFE SUPPORT DEVICES OR SYSTEMS WITHOUT THE EXPRESS WRITTEN APPROVAL OF FAIRCHILD SEMICONDUCTOR CORPORATION. As used herein: 1. Life support devices or systems are devices or systems which, (a) are intended for surgical implant into the body, or (b) support or sustain life, or (c) whose failure to perform when properly used in accordance with instructions for use provided in the labeling, can be reasonably expected to result in significant injury to the user. 2. A critical component is any component of a life support device or system whose failure to perform can be reasonably expected to cause the failure of the life support device or system, or to affect its safety or effectiveness. PRODUCT STATUS DEFINITIONS Definition of Terms Datasheet Identification Product Status Definition Advance Information Preliminary No Identification Needed Obsolete This datasheet contains the design specifications for product development. Specifications may change in any manner without notice. This datasheet contains preliminary data, and supplementary data will be published at a later date. Fairchild Semiconductor reserves the right to make changes at any time without notice in order to improve design. This datasheet contains final specifications. Fairchild Semiconductor reserves the right to make changes at any time without notice in order to improve design. This datasheet contains specifications on a product that has been discontinued by Fairchild semiconductor. The datasheet is printed for reference information only. Formative or In Design First Production Full Production Not In Production OPTOLOGIC™ OPTOPLANAR™ PACMAN™ POP™ Power247™ PowerTrench QFET™ QS™ QT Optoelectronics™ Quiet Series™ SILENT SWITCHER FAST FASTr™ FRFET™ GlobalOptoisolator™ GTO™ HiSeC™ ISOPLANAR™ LittleFET™ MicroFET™ MicroPak™ MICROWIRE™ Rev. H4 ACEx™ Bottomless™ CoolFET™ CROSSVOLT™ DenseTrench™ DOME™ EcoSPARK™ E2CMOSTM EnSignaTM FACT™ FACT Quiet Series™ SMART START™ STAR*POWER™ Stealth™ SuperSOT™-3 SuperSOT™-6 SuperSOT™-8 SyncFET™ TinyLogic™ TruTranslation™ UHC™ UltraFET STAR*POWER is used under license VCX™