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  mp2225 high-efficiency, 5a, 18v, 500khz synchronous, step-down converter mp2225 rev. 1.01 www.monolithicpower.com 1 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. the future of analog ic technology description the mp2225 is a high-frequency, synchronous, rectified, step-down, switch-mode converter with built-in power mosfets. it offers a very compact solution to achieve a 5a output current with excellent load and line regulation over a wide input supply range. the mp2225 has synchronous mode operation for higher efficiency over the output current load range. current-mode operation provides fast transient response and eases loop stabilization. full protection features include over-current protection and thermal shut down. the mp2225 requires a minimal number of readily-available standard external components, and is available in a space-saving 8-pin tsot23 package. features ? wide 4.5v-to-18v operating input range ? adjustable output voltage as low as 0.6v ? low 47m ? /18m ? r ds(on) of internal power mosfets ? high efficiency up to 97% ? fixed 500khz switching frequency ? synchronizes from a 200khz-to-2mhz external clock ? 2.4ms internal soft-start time ? 1% reference accuracy at room temperature ? internal power-save mode ? ocp with hiccup mode ? available in 8-pin tsot23 applications ? flat-panel television and monitors ? notebook systems and i/o power ? digital set-top boxes ? distributed power systems all mps parts are lead-free and adhere to the rohs directive. for mps green status, please visit mps website under products, quality assurance page. ?mps? and ?the future of analog ic technology? are registered trademarks of monolithic power systems, inc. typical application mp2225 3.3v/5a en/sync agnd vcc in fb sw bst c1 22 f l1 3.3 h r1 40.2k r2 8.87k c5 0.1 f c4 0.1 f en/sync gnd vout vin c2 22 f2 40 45 50 55 60 65 70 75 80 85 90 95 100 0.01 0.1 1 10
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 2 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. ordering information part number* package top marking MP2225GJ tsot23-8 see below for tape & reel, add suffix ?z (e.g. MP2225GJ?z); top marking afr: product code of MP2225GJ; y: year code; package reference agnd in sw gnd fb vcc en/sync bst 1 2 3 4 8 7 6 5 top view
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 3 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. absolute maxi mum ratings (1) v in ???????????.. ........-0.3v to 20v v sw ???????????.. ............................ -0.3v (-5v for <10ns) to v in +0.3v (23v for <10ns) v bst ????????????.. v sw +5.5v all other pins????????..-0.3v to 5.5v (2) continuous power dissipation (t a = +25c) (3) tsot23-8???????????......... 1.25w junction temperature????????.. 150c lead temperature??????????260c storage temperature?????-65c to 150c recommended operating conditions (4) supply voltage v in ???????..4.5v to 18v output voltage v out ???...0.6v to vin*d max operating junction temp. (t j ). -40c to +125c thermal resistance (5) ja jc tsot23-8??.. ??..??.. . 100 ..... 55... c/w notes: 1) exceeding these ratings may damage the device. 2) about the details of en pin?s abs max rating, please refer to page 12, enable/sync control section. 3) the maximum allowable power dissipation is a function of the maximum junction temperature t j (max), the junction-to- ambient thermal resistance ja , and the ambient temperature t a . the maximum allowable continuous power dissipation at any ambient temperature is calculated by p d (max) = (t j (max)-t a )/ ja . exceeding the maximum allowable powe r dissipation will cause excessive die temperature, and the regulator will go into thermal shutdown. internal thermal shutdown circuitry protects the device from permanent damage. 4) the device is not guaranteed to function outside of its operating conditions. 5) measured on jesd51-7, 4-layer pcb.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 4 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. electrical characteristics v in = 12v, t j = -40c to +125c (6) , typical value is tested at t j = +25c, unless otherwise noted. parameter symbol condition min typ max units supply current (shutdown) i in v en = 0v,t j =25c 1 a supply current (shutdown) i in v en = 0v 3 a supply current (quiescent) i q v en = 2v, v fb = 0.7v 320 400 a hs switch-on resistance hs rds-on v bst-sw =5v 47 m ? ls switch-on resistance ls rds-on v cc =5v 18 m ? switch leakage sw lkg v en = 0v, v sw =12v, t j =25c 1 a current limit (7) i limit under 40% duty cycle 6.5 9 a oscillator frequency f sw v fb =0.48v 380 500 580 khz fold-back frequency f fb v fb <300mv 0.56 f sw maximum duty cycle d max v fb =500mv 90 95 % minimum on time (8) t on_min 50 ns sync frequency range f sync 0.2 2 mhz feedback voltage v fb t j =25c 594 600 606 mv feedback voltage v fb 591 600 609 mv feedback current i fb v fb =620mv 10 50 na en rising threshold v en_rising 1.15 1.4 1.65 v en hysteresis v en_hys 160 mv v en =2v 1.85 a en input current i en v en =0 0 a en turn-off delay en td-off 5 10 s vin under-voltage lockout threshold-rising inuv vth 3.85 4.1 4.35 v vin under-voltage lockout threshold-hysteresis inuv hys 735 mv soft-start time t ss 10% to 90% output voltage 2.4 ms thermal shutdown (8) t sd 150 c thermal hysteresis (8) t sd_hys 20 c notes: 6) not tested in production. guaranteed by over-temperature correlation. 7) guaranteed by engineering sample characterization. 8) guaranteed by design.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 5 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. typical performanc e characteristics performance waveforms are tested on the evaluation board described in the design example section. v in = 12v, v out = 3.3v, t a = 25c, unless otherwise noted. 30 35 40 45 50 55 60 65 70 75 80 85 90 95 100 40 45 50 55 60 65 70 75 80 85 90 95 100 0.01 0.1 1 10 20 22 24 26 28 30 32 34 36 250 275 300 325 350 375 400 -0.4 -0.3 -0.2 -0.1 0 0.1 0.2 0.3 0.4 012345 -0.2 -0.15 -0.1 -0.05 0 0.05 0.1 0.15 0.2 4 6 8 1012141618 4 6 8 1012141618 4 6 8 1012141618 40 45 50 55 60 65 70 75 80 85 90 95 100 0.01 0.1 1 10 40 45 50 55 60 65 70 75 80 85 90 95 100 0.01 0.1 1 10 40 45 50 55 60 65 70 75 80 85 90 95 100 0.01 0.1 1 10 0.01 0.1 1 10
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 6 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. typical performanc e characteristics (continued) performance waveforms are tested on the evaluation board described in the design example section. v in = 12v, v out = 3.3v, t a = 25c, unless otherwise noted.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 7 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. typical performanc e characteristics (continued) performance waveforms are tested on the evaluation board described in the design example section. v in = 12v, v out = 3.3v, t a = 25c, unless otherwise noted.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 8 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. typical performanc e characteristics (continued) performance waveforms are tested on the evaluation board described in the design example section. v in = 12v, v out = 3.3v, t a = 25c, unless otherwise noted.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 9 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. typical performanc e characteristics (continued) performance waveforms are tested on the evaluation board described in the design example section. v in = 12v, v out = 3.3v, t a = 25c, unless otherwise noted. v sw 10v/div. i inductor 5a/div. v out 2v/div. v sw 10v/div. i inductor 10a/div. v out 2v/div. v sw 10v/div. i inductor 10a/div. v out 2v/div. v sw 10v/div. i inductor 10a/div. v out 2v/div. v sw 10v/div. i inductor 10a/div. v out /ac 200mv/div. v out /ac 20mv/div. v out 2v/div. i out 2a/div. v sw 10v/div. i inductor 10a/div. -60 -40 -20 0 20 40 60 1000 10000 100000 1000000 -180 -135 -90 -45 0 45 90 135 180
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 10 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. pin functions pin # name description 1 agnd analog ground. connect it to gnd. 2 in supply voltage. the mp2225 operates from a 4. 5v-to-18v input rail. requires c1 to decouple the input rail. connect using a wide pcb trace. 3 sw switch output. connect using a wide pcb trace. 4 gnd power ground. requires special consideration during pcb layout. connect to gnd with copper traces and vias. 5 bst bootstrap. requires a capacitor between sw and bst pins to form a floating supply across the high-side switch driver. 6 en/sync en high to enable the mp2225. can apply an exte rnal clock to the en pin to change the switching frequency. 7 vcc bias supply. decouple with a 0.1 f-to-0.22 f capacitor. 8 fb feedback. connect to the tap of an external resistor divider from the output to gnd to set the output voltage. the frequency fold-back co mparator lowers the oscillator frequency when the fb voltage is below 480mv to prevent current-limit run-away during a short-circuit fault condition.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 11 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. functional block diagram figure 1: functional block diagram
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 12 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. operation the mp2225 is a high-frequency, synchronous, rectified, step-down, switch-mode converter with built-in power mosfets. it offers a very compact solution to achieve 5a output current with excellent load and line regulation over a wide input supply range. the mp2225 operates in a fixed-frequency, peak-current?control mode to regulate the output voltage. an internal clock initiates a pwm cycle. the integrated high-side power mosfet turns on and remains in on-state until the current reaches the value set by the comp voltage. when the power switch is off, it remains off until the next clock cycle starts. if, in 95% of one pwm period, the current in the power mosfet does not reach the value set by the comp value, the power mosfet is forced to turn off. vcc regulator a 5v internal regulator powers most of the internal circuitries. this regulator takes the v in input and operates in the full v in range. when v in is greater than 5.0v, the output of the regulator is in full regulation. when v in is lower than 5.0v, the output decreases, and the part requires a 0.1f ceramic capacitor to decouple noise. aam operation the mp2225 has aam (advanced asynchronous modulation) which is internal power-save mode for light load operation. aam voltage v aam is internally fixed. under the heavy load condition, the v comp is higher than v aam . when the clock goes high, the high-side power mosfet turns on and remains on until v ilsense reaches the value set by the comp voltage. the internal clock resets every time when v comp is higher than v aam . under the light load condition, the value of v comp is becomes lower. when v comp is less than v aam and v fb is less than v ref , v comp ramps up until it exceeds v aam . during this time, the internal clock is blocked, thus the mp2225 skips some pulses for pfm (pulse frequency modulation) mode and achieves the light load power save. figure 2: simplified aam control logic under light load condition, the inductor peak current is internally set to be fairly 800ma. error amplifier the error amplifier compares the fb pin voltage against the internal 0.6v reference (ref) and generates comp voltage as output ?comp controls the power mosfet current. the optimized internal compensation network minimizes the external component count and simplifies the control loop design. enable/sync control en/sync is a digital control pin that turns the converter on and off. drive en/sync high to turn on the converter; drive it low to turn it off. an internal 1m ? resistor from en/sync to gnd allows en/sync to be floated to shut down the chip. the en/sync pin is clamped internally using a 5.6v series-zener-diode as shown in figure 3. connecting the en/sync input pin through a pullup resistor to the voltage on the v in pin limits the en/sync input current to less than 100a. for example, with 12v connected to vin, r pullup (12v ? 5.6v) 100a = 64k ? . connecting the en/sync pin directly to a voltage source without any pullup resistor requires limiting the amplitude of the voltage source to 5v to prevent damage to the zener diode. 5.6v-typ figure 3: 5.6v zener diode connection
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 13 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. to use external clock synchronization, connect a clock with a frequency range between 200khz and 2mhz. the internal clock rising edge will synchronize with the external clock rising edge. meanwhile the width of high level should be longer than 250ns, and width of low level longer than 100ns. under-voltage lockout (uvlo) under-voltage lockout (uvlo) protects the chip from operating at insufficient supply voltage. the mp2225 uvlo comparator monitors the output voltage of the internal regulator, vcc. the uvlo rising threshold is about 4.1v while its falling threshold is 3.4v. soft-start the soft-start prevents the converter output voltage from overshooting during startup. when the chip starts, the internal circuitry generates a soft-start voltage (ss) that ramps up from 0v to vcc. when ss is lower than ref, the error amplifier uses ss as the reference. when ss is higher than ref, the error amplifier uses ref as the reference. the ss time is internally set to 2.4ms. over-current-protection and hiccup the mp2225 has a cycle-by-cycle over-current limit which can limit the inductor current in case of output over load or short circuit(sc). if the over load or sc events last for enough long time, fb voltage can drop below the under- voltage (uv) threshold?typically 30% of the reference. once uv is triggered, the mp2225 enters hiccup mode to periodically restart the part. this protection mode is especially useful when the output is dead-shorted to ground. the average short circuit current is greatly reduced to alleviate thermal issues and to protect the regulator. the mp2225 exits the hiccup mode once the over-current condition is removed. thermal shutdown thermal shutdown prevents the chip from operating at exceedingly high temperatures. when the temperature of the silicon reaches 150 o c, the whole chip is shut down. when the temperature is less than its lower threshold, typically 130c, the chip is enabled again. floating driver and bootstrap charging an external bootstrap capacitor powers the floating power mosfet driver. this floating driver has its own uvlo protection. this uvlo?s rising threshold is 2.6v with a hysteresis of 350mv. the bootstrap capacitor voltage is regulated internally by v in through d1, m1, c4, l1 and c2 (figure 4). if (v bst -v sw ) exceeds 5v, u1 will regulate m1 to maintain a 5v bst voltage across c4. figure 4: internal bootstrap charging circuit startup and shutdown if both v in and en exceed their respective thresholds, the chip starts. the reference block starts up first, generating stable reference voltage, and then the internal regulator is enabled. the regulator provides a stable supply for the remaining circuitries. three events can shut down the chip: en low, v in low, and thermal shutdown. in the shutdown procedure, the signaling path is first blocked to avoid any fault triggering. the comp voltage and the internal supply rail are then pulled down. the floating driver is not subject to this shutdown command.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 14 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. application information setting the output voltage the external resistor divider sets the output voltage (see typical application on page 1). the feedback resistor r1 also sets the feedback loop bandwidth with the internal compensation capacitor. first, choose a value for r1, r2 is then given by: out r1 r2 v 1 0.6v = ? (1) the feedback network?as shown in figure 5? is highly recommended. figure 5: feedback network table 1 lists the recommended resistors and capacitors value for common output voltages. table 1: component selection for common output voltages (9) v out (v) r1 (k ? ) r2 (k ? ) 1.0 120 180 1.2 120 120 1.35 100 80.6 1.5 80.6 53.6 1.8 80.6 40.2 2.5 80.6 25.5 3.3 40.2 8.87 5 40.2 5.49 9) the recommended parameters are based on 500khz switching frequency, different output inductors and capacitors affect the recommended values of r1 and r2. for the other components? parameters, please refer to typical application circuits on 17-19. selecting the inductor use a 1h-to-10h inductor with a dc current rating at least 25% percent higher than the maximum load current for most applications. for highest efficiency, use an inductor with a dc resistance less than 15m ? . for most designs, the inductance value can be derived from the following equation. out in out 1 in l osc v(vv) l vif ? = (2) where i l is the inductor ripple current. choose the inductor ripple current to be approximately 30% of the maximum load current. the maximum inductor peak current is: 2 i i i l load ) max ( l + = (3) use a larger inductor for improved efficiency under light-load conditions?below 100ma. selecting the input capacitor the input current to the step-down converter is discontinuous, therefore requires a capacitor to supply the ac current to the step-down converter while maintaining the dc input voltage. use low esr capacitors for the best performance. use ceramic capacitors with x5r or x7r dielectrics for best results because of their low esr and small temperature coefficients. for most applications, use a 22f capacitor. since c1 absorbs the input switching current, it requires an adequate ripple current rating. the rms current in the input capacitor can be estimated by: ? ? ? ? ? ? ? ? ? = in out in out load 1 c v v 1 v v i i (4) the worse case condition occurs at v in = 2v out , where: 2 i i load 1 c = (5) for simplification, choose an input capacitor with an rms current rating greater than half of the maximum load current. the input capacitor can be electrolytic, tantalum or ceramic. when using electrolytic or tantalum capacitors, add a small, high quality ceramic capacitor (e.g. 0.1 f) placed as close to the ic
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 15 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. as possible. when using ceramic capacitors, make sure that they have enough capacitance to provide sufficient charge to prevent excessive voltage ripple at input. the input voltage ripple caused by capacitance can be estimated by: load out out in in sin iv v v1 fc1v v ?? = ? ?? ?? (6) selecting the output capacitor the output capacitor (c2) maintains the dc output voltage. use ceramic, tantalum, or low- esr electrolytic capacitors. for best results, use low esr capacitors to keep the output voltage ripple low. the output voltage ripple can be estimated by: out out out esr s1 in s vv 1 v1r fl v 8fc2 ?? ?? = ? + ?? ?? ?? ?? (7) where l 1 is the inductor value and r esr is the equivalent series resistance (esr) value of the output capacitor. for ceramic capacitors, the capacitance dominates the impedance at the switching frequency, and the capacitance causes the majority of the output voltage ripple. for simplification, the output voltage ripple can be estimated by: out out out 2 in s1 vv v1 v 8f l c2 ?? =? ?? ?? (8) for tantalum or electrolytic capacitors, the esr dominates the impedance at the switching frequency. for simplification, the output ripple can be approximated to: out out out esr in s1 vv v1r fl v ?? =? ?? ?? (9) the characteristics of the output capacitor also affect the stability of the regulation system. the mp2225 can be optimized for a wide range of capacitance and esr values. external bootstrap diode bst voltage may become insufficient at some particular conditions. in these cases an external bootstrap diode can enhance the efficiency of the regulator and help to avoid output ripple caused by bst voltage insufficiency during pfm operation at light load. for better efficiency, the diode is needed if below two conditions happen at the same time: z v in <5v z duty cycle is large: duty= in out v v >65% to avoid the ripple caused by bst refresh, the diode is needed if below condition happens: z v in -v out <2.6v in these cases, it?s recommended to add an external bst diode from the vcc pin to bst pin, as shown in figure 6. figure 6: optional external bootstrap diode the recommended external bst diode is in4148, and the bst capacitor value is 0.1f to 1 f.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 16 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. pc board layout (9) pcb layout is very important for stable operation. follow these guidelines for best results. 1) connect the input ground to the gnd pin using the possible shortest and widest trace. 2) connect the input capacitor to the in pin using the possible shortest and widest trace. 3) ensure all feedback connections are short and direct. place the feedback resistors and compensation components as close to the chip as possible. 4) route sw away from sensitive analog areas such as fb. 5) connect agnd to gnd plane with single trace. notes: 10) the recommended layout is based on the figure 8-15 typical application circuit on the next page. vin gnd vout r1 sw l1 c1 r2 u1 c2 c3 c4 gnd c5 en sw vcc bst fb agnd in gnd figure 7: recommend layout design example below is a design example following the application guidelines for the specifications: table 2: design example v in 12v v out 3.3v i out 5a the detailed application schematic is shown in figure 14. the typical performance and circuit waveforms have been shown in the typical performance characteristics section. for more device applications, please refer to the related evaluation board datasheets.
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 17 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. typical application circuits figure 8: 12v in , 1v/5a figure 9: 12v in , 1.2v/5a figure 10: 12v in , 1.35v/5a
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 18 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. figure 11: 12v in , 1.5v/5a figure 12: 12v in , 1.8v/5a figure 13: 12v in , 2.5v/5a
mp2225 ?18v/5a synchronous step-down converter mp2225 rev. 1.01 www.monolithicpower.com 19 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. figure 14: 12v in , 3.3v/5a gnd mp 2225 5v/5a en/sync agnd vcc in fb sw bst c1a 22 f 25v c1 0.1 f 25v l1 4.7 h c3 33pf r1 40.2k r2 5.49k c2 22 f 10v c2a 22 f 10v c5 0.1 f c4 0.1 f 2 6 7 1 4 8 3 5 r3 100k gnd figure 15: 12v in , 5v/5a
mp2225 ?18v/5a synchronous step-down converter notice: the information in this document is subject to change wi thout notice. please contact m ps for current specifications. users should warrant and guarantee that third party intellectual property rights ar e not infringed upon when integrating mps products into any application. mps will not assume any legal responsibility for any said applications. mp2225 rev. 1.01 www.monolithicpower.com 20 4/13/2016 mps proprietary information. patent protec ted. unauthorized photocopy and duplication prohibited. ? 2016 mps. all rights reserved. package information tsot23-8


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