ZXMHC3A01N8 30V SO8 Complementary enhancement mode MOSFET H-Bridge
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1 A Product Line of Diodes Incorporated ZXMHC3A0N8 30V SO8 Complementary enhancement mode MOSFET H-Bridge Summary Device V (BR)DSS Q G R DS(on) I D T A = 25 C N-CH 30V 3.9nC = 0V 2.7A = A P-CH -30V 5.2nC = -0V = A -.6A Description PS/P2S This new generation complementary MOSFET H-Bridge features low on-resistance achievable with low gate drive. PG P2G Features 2 x N + 2 x P channels in a SOIC package PD/ND P2D/N2D Applications DC Motor control NG N2G DC-AC Inverters NS/N2S Ordering information Device Reel size (inches) Tape width (mm) Quantity per reel ZXMHC3A0N8TC 3 2 2,500 Device marking ZXMHC 3A0 Issue.0 - March 2009
2 ZXMHC3A0N8 Absolute maximum ratings Parameter Symbol N- channel P- channel Drain-Source voltage S V Gate-Source voltage V Continuous Drain = 0V; T A =25 C = 0V; T A =70 C = 0V; T A =25 C = 0V; T L =25 C (f) I D Pulsed Drain = 0V; T A =25 C (c) I DM A Continuous Source current (Body diode) at T A =25 C (b) I S A Pulsed Source current (Body diode) at T A =25 C (c) I SM A Power dissipation at T A =25 C (a) Linear derating factor Power dissipation at T A =25 C (b) Linear derating factor Power dissipation at T L =25 C (f) Linear derating factor P D P D P D Unit A W mw/ C W mw/ C W mw/ C Operating and storage temperature range T j, T stg -55 to 50 C Thermal resistance Parameter Symbol Value Unit Junction to ambient (a) R JA 44 C/W Junction to ambient (b) R JA 92 C/W Junction to ambient (d) R JA 06 C/W Junction to ambient (e) R JA 254 C/W Junction to lead (f) R JL 39 C/W NOTES: (a) For a device surface mounted on 25mm x 25mm x.6mm FR4 PCB with high coverage of single sided oz copper, in still air conditions with the heat-sink split into two equal areas (one for each drain connection); the device is measured when operating in a steady-state condition with one active die. (b) Same as note (a), except the device is measured at t 0 sec. (c) Same as note (a), except the device is pulsed with D= 0.02 and pulse width 300 µs. The pulse current is limited by the maximum junction temperature. (d) For a device surface mounted on 50mm x 50mm x.6mm FR4 PCB with high coverage of single sided 2oz copper, in still air conditions with the heat-sink split into two equal areas (one for each drain connection); the device is measured when operating in a steady-state condition with one active die. (e) For a device surface mounted on minimum copper.6mm FR4 PCB, in still air conditions; the device is measured when operating in a steady-state condition with one active die. (f) Thermal resistance from junction to solder-point (at the end of the drain lead); the device is operating in a steady-state condition with one active die. Issue.0 - March
3 ZXMHC3A0N8 Thermal characteristics I D Drain Current (A) 0 00m 0m R DS(ON) Limited DC s 00ms 0ms ms Note (a) 00us Single Pulse, T amb =25 C 0 Drain-Source Voltage (V) N-channel Safe Operating Area -I D Drain Current (A) 0 00m 0m R DS(ON) Limited DC s Note (a) 00ms 0ms ms Single Pulse, T amb =25 C 00us 0 - Drain-Source Voltage (V) P-channel Safe Operating Area Thermal Resistance ( C/W) One Active Die 25 x 25mm oz D= D=0.2 Single Pulse 20 D=0.05 D= µ m 0m 00m 0 00 k Pulse Width (s) Transient Thermal Impedance Max Power Dissipation (W) Any one active die Temperature ( C) Derating Curve Maximum Power (W) 00 0 One Active Die Single Pulse T amb =25 C 00µ m 0m 00m 0 00 k Pulse Width (s) Pulse Power Dissipation Issue.0 - March
4 ZXMHC3A0N8 N-channel electrical characteristics (at T amb = 25 C unless otherwise stated) Parameter Symbol Min. Typ. Max. Unit Conditions Static Drain-Source breakdown voltage Zero Gate voltage Drain current V (BR)DSS 30 V I D = 250 A, = 0V I DSS 0.5 µa = 30V, = 0V Gate-Body leakage I GSS 00 na = 20V, = 0V Gate-Source threshold voltage Static Drain-Source on-state resistance (a) (th) V I D = 250 A, = R DS(on) = 0V, I D = 2.5A = 4., I D = 2.0A Forward Transconductance (a) (c) g fs 3.5 S =, I D = 2.5A Dynamic Capacitance (c) Input capacitance C iss 90 pf Output capacitance C oss 38 pf Reverse transfer capacitance (b) (c) Switching C rss 20 pf Turn-on-delay time t d(on).7 ns Rise time t r 2.3 ns Turn-off delay time t d(off) 6.6 ns Fall time t f 2.9 ns Gate charge (c) Total Gate charge Q g 3.9 nc Gate-Source charge Q gs 0.6 nc Gate-Drain charge Q gd 0.9 nc = 2, = 0V f= MHz V DD =, = 0V I D = 2.5A R G 6.0, =, = 0V I D = 2.5A Source Drain diode Diode forward voltage (a) V SD 0.95 V I S =.25A, = 0V Reverse recovery time (c) t rr 7.7 ns Reverse recovery charge (c) Q rr 3.0 nc I S = 2.5A, di/dt= 00A/ s NOTES: (a) Measured under pulsed conditions. Pulse width 300 s; duty cycle 2%. (b) Switching characteristics are independent of operating junction temperature. (c) For design aid only, not subject to production testing Issue.0 - March
5 ZXMHC3A0N8 N-channel typical characteristics ID Drain Current (A) V 7V VGS 4. 4V 3. 3V 2. ID Drain Current (A) 0 0. T =50 C 0V 7V VGS 4. 4V 3. 3V 2. 2V 0. 0 Drain-Source Voltage (V) Output Characteristics 0. 0 Drain-Source Voltage (V) Output Characteristics ID Drain Current (A) 0 VDS =0V T =50 C Gate-Source Voltage (V) Typical Transfer Characteristics Normalised RDS(on) and VGS(th) VGS =0V ID =2.5A VGS =VDS ID =250uA RDS(on) Tj Junction Temperature ( C) Normalised Curves v Temperature VGS(th) RDS(on) Drain-Source On-Resistance 2. 3V 3. 4V 4. 7V 0. 0V 0. 0 I D Drain Current (A) On-Resistance v Drain Current VGS 0 T =50 C V SD Source-Drain Voltage (V) Source-Drain Diode Forward Voltage ISD Reverse Drain Current (A) Issue.0 - March
6 ZXMHC3A0N8 N-channel typical characteristics continued C Capacitance (pf) CISS COSS VGS =0V f =MHz CRSS Drain - Source Voltage (V) Capacitance v Drain-Source Voltage VGS Gate-Source Voltage (V) ID =2.5A VDS = Q - Charge (nc) Gate-Source Voltage v Gate Charge Test circuits Q G Current regulator 2V 50k Same as D.U.T V G Q GS Q GD I G D.U.T I D Charge Basic gate charge waveform Gate charge test circuit 90% R D 0% R G V DD t d(on) t r t d(off) t r t (on) t (on) Switching time waveforms Switching time test circuit Issue.0 - March
7 ZXMHC3A0N8 P-channel electrical characteristics (at T amb = 25 C unless otherwise stated) Parameter Symbol Min. Typ. Max. Unit Conditions Static Drain-Source breakdown voltage Zero Gate voltage Drain current V (BR)DSS -30 V I D = -250 A, = 0V I DSS -0.5 µa = -30V, = 0V Gate-Body leakage I GSS 00 na = 20V, = 0V Gate-Source threshold voltage Static Drain-Source on-state resistance (a) (th) V I D = -250 A, = R DS(on) = -0V, I D = -.4A = -4., I D = -.A Forward Transconductance (a) (c) g fs 2.5 S = -, I D = -.4A Dynamic Capacitance (c) Input capacitance C iss 204 pf Output capacitance C oss 39.8 pf Reverse transfer capacitance (b) (c) Switching C rss 25.8 pf Turn-on-delay time t d(on).2 ns Rise time t r 2.3 ns Turn-off delay time t d(off) 2. ns Fall time t f 7.5 ns Gate charge (c) Total Gate charge Q g 5.2 nc Gate-Source charge Q gs 0.7 nc Gate-Drain charge Q gd 0.9 nc = -, = 0V f= MHz V DD = -, = -0V I D = -.0A R G 6.0 = -, = -0V I D = -.4A Source Drain diode Diode forward voltage (a) V SD V I S = -.5A, = 0V Reverse recovery time (c) t rr 9 ns I S = -0.95A, Reverse recovery charge (c) Q rr 5 nc NOTES: (a) Measured under pulsed conditions. Pulse width 300 s; duty cycle 2%. (b) Switching characteristics are independent of operating junction temperature. (c) For design aid only, not subject to production testing di/dt= 00A/ s Issue.0 - March
8 ZXMHC3A0N8 P-channel typical characteristics -ID Drain Current (A) V 4V 3. 3V 2. -VGS 2V -ID Drain Current (A) T =50 C 0V 4V 3. 3V 2. 2V -VGS Drain-Source Voltage (V) Output Characteristics Drain-Source Voltage (V) Output Characteristics.6 -ID Drain Current (A) T =50 C 0. -VDS =0V Gate-Source Voltage (V) Typical Transfer Characteristics Normalised RDS(on) and VGS(th) VGS =-0V ID =-.4A VGS =VDS ID =-250uA Tj Junction Temperature ( C) Normalised Curves v Temperature RDS(on) VGS(th) RDS(on) Drain-Source On-Resistance 00 2V 0 -VGS 2. 3V 3. 4V 0V I D Drain Current (A) On-Resistance v Drain Current -ISD Reverse Drain Current (A) 0 T =50 C V SD Source-Drain Voltage (V) Source-Drain Diode Forward Voltage Issue.0 - March
9 ZXMHC3A0N8 P-channel typical characteristics continued C Capacitance (pf) CISS COSS CRSS VGS =0V f =MHz Drain - Source Voltage (V) Capacitance v Drain-Source Voltage -VGS Gate-Source Voltage (V) ID =-.4A VDS = Q - Charge (nc) Gate-Source Voltage v Gate Charge Test circuits Q G Current regulator 2V 0.2 F 50k Same as D.U.T V G Q GS Q GD I G D.U.T I D Charge Basic gate charge waveform Gate charge test circuit 90% R D R G V DD 0% t r t d(off) t r t d(on) Pulse width S Duty factor 0.% t (on) t (on) Switching time waveforms Switching time test circuit Issue.0 - March
10 ZXMHC3A0N8 Packaging details - SO8 DIM Inches Millimeters DIM Inches Millimeters Min. Max. Min. Max. Min. Max. Min. Max. A e BSC.27 BSC A b D c H E L Note: Controlling dimensions are in inches. Approximate dimensions are provided in millimeters Issue.0 - March
11 ZXMHC3A0N8 IMPORTANT NOTICE DIODES INCORPORATED MAKES NO WARRANTY OF ANY KIND, EXPRESS OR IMPLIED, WITH REGARDS TO THIS DOCUMENT, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE (AND THEIR EQUIVALENTS UNDER THE LAWS OF ANY JURISDICTION). Diodes Incorporated and its subsidiaries reserve the right to make modifications, enhancements, improvements, corrections or other changes without further notice to this document and any product described herein. Diodes Incorporated does not assume any liability arising out of the application or use of this document or any product described herein; neither does Diodes Incorporated convey any license under its patent or trademark rights, nor the rights of others. Any Customer or user of this document or products described herein in such applications shall assume all risks of such use and will agree to hold Diodes Incorporated and all the companies whose products are represented on Diodes Incorporated website, harmless against all damages. Diodes Incorporated does not warrant or accept any liability whatsoever in respect of any products purchased through unauthorized sales channel. Should Customers purchase or use Diodes Incorporated products for any unintended or unauthorized application, Customers shall indemnify and hold Diodes Incorporated and its representatives harmless against all claims, damages, expenses, and attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized application. Products described herein may be covered by one or more United States, international or foreign patents pending. Product names and markings noted herein may also be covered by one or more United States, international or foreign trademarks. LIFE SUPPORT Diodes Incorporated products are specifically not authorized for use as critical components in life support devices or systems without the express written approval of the Chief Executive Officer of Diodes Incorporated. As used herein: A. Life support devices or systems are devices or systems which:. are intended to implant into the body, or 2. support or sustain life and 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. B. A critical component is any component in a life support device or system whose failure to perform can be reasonably expected to cause the failure of the life support device or to affect its safety or effectiveness. Customers represent that they have all necessary expertise in the safety and regulatory ramifications of their life support devices or systems, and acknowledge and agree that they are solely responsible for all legal, regulatory and safety-related requirements concerning their products and any use of Diodes Incorporated products in such safety-critical, life support devices or systems, notwithstanding any devices- or systems-related information or support that may be provided by Diodes Incorporated. Further, Customers must fully indemnify Diodes Incorporated and its representatives against any damages arising out of the use of Diodes Incorporated products in such safety-critical, life support devices or systems. Copyright 2009, Diodes Incorporated Issue.0 - March 2009
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Is Now Part of To learn more about ON Semiconductor, please visit our website at www.onsemi.com ON Semiconductor and the ON Semiconductor logo are trademarks of Semiconductor Components Industries, LLC
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