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product structure : silicon monolithic integrated circuit this product has no designed protection against radioactive rays . 1 / 30 ? 20 16 rohm co., ltd. all rights reserved. tsz22111 ? 14 ? 001 www.rohm.com tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 2.7v to 5.5v input, 4 .0a integrated mosfet single synchronous buck dc/dc converter b d 9b400 muv general description bd 9b400 muv is a synchronous buck switching regulator with built - in low on - resistance power mosfets. this ic, which is capabl e of providing current up to 4 a, features fast transient response by employing constant on - time control system. it offers high oscillating frequency at low inductance . with its original constant on - time control method which operates low consumption at ligh t load, this product is ideal for equipment and devices that demand minimal standby power consumption. features ? synchronous s ingle dc/dc c onverter ? constant on - time control suitable to deep - sllm ? over current p rotection ? short circuit protection ? t hermal shutdown p rotection ? under voltage l ockout p rotection ? adjustable s oft s tart ? power good o utput ? vqfn016v3030 p ackage (backside heat dissipation) applications ? step - down p ower s upply for dsps, fpgas, m icroprocessors , etc. ? laptop pcs/ t ablet pcs/ s ervers ? lcd tvs ? storage d evices (hdds/ssds) ? printers, oa e quipment ? entertainment d evices ? distributed p ower s upply , s econdary p ower s upply key specification s ? i nput voltage range: 2.7v to 5.5v ? o utput voltage range: 0.8 v to v pvin x 0.8 v ? maximum o perating current: 4 a ( max ) ? s witching frequency: 2 mhz /1mhz (typ) ? high - side mosfet on resistance: 3 0 m (typ) ? low - side mosfet on resistance: 3 0 m (typ) ? s tandby current: 0 a ( typ ) package(s) w (typ) x d (typ) x h (max) vqfn016v3030 3.00 mm x 3.00 mm x 1.00 mm typical application circuit figure 1. application circuit vqfn01 6v3030 en pvin boot freq bd 9 b 400 muv pgd sw fb vin v out avin ss pgd mode agnd pgnd enable 22f 0.1f css r2 r1 0.1 f 22 f 2 cfb 1.0 h datashee t
2 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 pin config uration(s) pin description(s) pin no. pin n ame function 1, 2 pvin power supply terminals for the switching regulator. these terminals supply power to the output stage of the switching regulator. c onnect ing a 22 f ceramic capacito r is recommended. 3, 4 pgnd ground terminals for the output stage of the switching regulator. 5 agnd ground terminal for the control circuit. 6 fb an inverting input node for the error amplifier and main comparator . see page 22 for how to calculate t he resistance of the output voltage setting. 7 freq terminal for setting switching frequency. connecting this terminal to ground makes switching to operate constant on - time corresponding to 2.0mhz. connecting this terminal to avin make s switching to oper ate constant on - time corresponding to 1.0mhz. please fix this terminal to avin or ground in operation. 8 mode terminal for setting switching control mode. connecting this terminal to avin forces the device to operate in the fixed frequency pwm mode. conne cting this terminal to ground enables the deep - sllm control and the mode is automatically switched between the deep - sllm contro l and fixed frequency pwm mode. please fix this terminal to avin or ground in operation. 9 ss t erminal for setting th e soft start time. the rise time of the output voltage can be specified by connecting a capacitor to this terminal. see page 23 for how to calculate the capacitance . 10, 11, 12 sw switch nodes. these terminals are co nnected to the source of th e high - side mosfet and drain of the low - side mosfet. connect a bootstrap capacitor of 0.1 f between these terminals and boot terminal. in addition , connect an inductor of 0.47 h to 1 h (freq=l), h to 1.5 h (freq=h) considering the direct cur rent superimposition characteristic. 13 boot terminal for bootstrap. c onnect a bootstrap capacitor of 0.1 f between this terminal and sw terminals. the voltage of this terminal is t he gate drive voltage of the high - side mosfet. 14 pgd a 3 3 ower g ood t erminal , an open drain output. use of pull up resistor is needed . see page 17 for how to specify the resistance . when the fb terminal voltage reaches more than 80 % of 0.8 v, the internal nch mosfet turns off and the output turn s high. 15 en enable terminal. turning this terminal signal low (0. 8 v or lower) forces the device to enter the shutdown mode. turning this terminal signal high (2.0 v or higher) enables the device. this terminal must be terminated. 16 avin terminal for supplying power to the control circuit of the switching regulator. c onnect ing a 0.1 f ceramic capacitor is recommended . this terminal must be connected to pvin. - e - pad a backside heat dissipation exposed pad. connecting to the internal pcb ground plane by using multiple vias provides excellent heat dissipation characteristics. figure 2 . pin a ssignment (top view) p g n d 4 1 2 3 p v i n p g n d s s 9 1 2 1 1 1 0 s w 1 3 1 6 1 5 1 4 5 6 7 8 a g n d f r e q m o d e s w s w b o o t p g d e n a v i n p v i n f b e - p a d 3 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 block diagram(s) figure 3 . block d iagram c o n t r o l l o g i c + d r v v r e f t s d u v l o o n t i m e o n t i m e m o d u l a t i o n f b m o d e p g d p g n d s w p v i n e n v o u t 3 8 1 5 1 6 1 1 1 4 4 2 1 6 1 0 1 2 a v i n 5 a g n d 9 1 3 b o o t s s 7 f r e q p g o o d s o f t s t a r t e r r o r a m p l i f i e r m a i n c o m p a r a t o r h o c p l o c p s c p 4 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 description of block(s) 5 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 absolute maxi mum ratings (ta = 25c) parameter symbol rating unit supply v oltage v pvin , v avin - 0.3 to + 7 v en t erminal v oltage v en - 0.3 to + 7 v mode t erminal v oltage v mode - 0.3 to + 7 v freq t erminal v oltage v freq - 0.3 to + 7 v pgd t erminal v oltage v pgd - 0.3 to + 7 v voltage from gnd to boot v boot - 0.3 to + 14 v voltage from sw to boot S ? ? (note 1) parameter symbol thermal resistance (typ) unit 1s (note 3) 2s2p ( note 4) vqfn016v3030 junction to ambient ja 189.0 57.5 c/w junction to top characterization parameter (note 2) jt 23 10 c/w (note 1) based on jesd 51 - 2a(still - air) (note 2) the thermal characterization parameter to report the difference between junction temperature and the temperature at the t op center of the outside surface of the component package. (note 3) using a pcb board based on jesd 51 - 3. layer number of measurement board material board size single fr - 4 114.3mm x 76.2mm x 1.57mmt top copper pattern thickness footprints and traces 70 m (note 4) using a pcb board based on jesd 51 - 5, 7. layer number of measurement board material board size thermal via (note 5) pitch diameter 4 layers fr - 4 114.3mm x 76.2mm x 1.6mmt 1.20mm - p p top 2 internal layers bottom copper pattern thicknes s copper pattern thickness copper pattern thickness footprints and traces 70 m 74.2mm x 74.2mm 35 m 74.2mm x 74.2mm 70 m (note 5) this thermal via connects with the copper pattern of all layers.. recommended operating conditions (ta= - 40 c to +85 c ) par ameter symbol min typ max unit supply voltage v pvin , v avin 2.7 - 5.5 v output c urrent (note 6 ) i out - - 4 a output v oltage r ange v range 0.8 - v pvin 0. 8 v ( note 6 ) pd, aso should not be exceeded 6 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 electrical characteristics ( unless otherwise specified ta=25 c , v avin = v pvin = 5v, v en = 5 v, v mode = gnd ) parameter symbol min typ max unit conditions avin pin standby supply current i stb - 0 10 a en=gnd operating supply current i cc - 4 5 80 a freq= avin, i out =0ma no n switching uvlo d etection threshold v uvlo1 2.35 2.45 2.55 v v in falling uvlo r elease threshold v uvlo2 2.425 2.55 2.7 v v in rising uvlo hysteresis v uvlohys 50 100 200 mv enable en i nput h igh l evel v oltage v enh 2.0 - - v en i nput l ow level v oltage v enl - - 0. 8 v en input c urrent i en - 5 10 a en=5v reference voltage, error amplifier fb terminal voltage v fb 0.792 0.8 0.808 v fb input bias current i fb - - 1 a fb= 0. 8 v internal soft start time t ss 0.5 1.0 2.0 ms ss terminal is open soft start terminal current i ss 0.5 1.0 2.0 a co ntrol freq input high level voltage v frqh v avin - 0.3 - - v freq input low level voltage v frql - - 0.3 v mode input high level voltage v modeh v avin - 0.3 - - v mode input low level voltage v model - - 0.3 v on time1 ont1 96 120 144 ns v out =1.2v , freq=g nd on time2 ont2 192 240 288 ns v out =1.2v , freq=avin power good power good rising threshold v pgdh 75 80 85 % fb rising , v pgdh =fb/v fb x100 power good falling threshold v pgd l 65 70 75 % fb falling , v pgdl =fb/v fb x100 output l eakage c urrent i lkpgd - 0 5 a pgd=5v power g ood o n r esistance r pgd - 100 200 power g ood l ow l evel v oltage p gdv l - 0.1 0.2 v i pgd =1ma sw high s ide fet o n r esistance r onh - 30 6 0 p boot - sw = 5 v low s ide fet o n r esistance r onl - 30 6 0 p high s ide o utput l eakage c urrent r il h - 0 10 a no switching low s ide o utput l eakage c urrent r ill - 0 10 a no switching 7 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves mode=l mode=h mode=l mode=h figure 4. operating supply current vs temperature figure 5. stand - by supply current vs temperature figure 6. efficiency vs load current ( v in =5v, v out = 1.2v, l=1.0h, freq=l) figure 7. efficiency vs load current ( v in =5v, v out = 1.2v, l=1.0h, freq=h) v out =1.2v, freq =l v out =1.2v, freq= h v in =5v v in =3.3v v in =5v v in =3.3v 0.0 0.5 1.0 1.5 2.0 2.5 3.0 -40 -20 0 20 40 60 80 temperature [c] i stby > $ @ 0 10 20 30 40 50 60 -40 -20 0 20 40 60 80 temperature [c] i cc > $ @ 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 load current [ma] efficiency [%] 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 load current [ma] efficiency[%] 8 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves - continued figure 8. efficiency vs load current ( v in =5v, v out =3.3 v, l=1.0h, freq=l) figure 9. efficiency vs load current ( v in =5v, v out =3.3 v, l=1.0h, freq=h) figure 10. fb voltage vs temperature figure 11. uvlo threshold vs temperature mode=l mode=h mode=l mode=h v out = 3.3 v, freq=l v out = 3 .3 v freq= h v in =5v v in =3.3v release detect 0.792 0.794 0.796 0.798 0.800 0.802 0.804 0.806 0.808 -40 -20 0 20 40 60 80 temperature [c] v fb [v] 2.36 2.40 2.44 2.48 2.52 2.56 2.60 -40 -20 0 20 40 60 80 temperature [c] v uvlo [v] 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 load current [ma] efficiency [%] 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 load current [ma] efficiency [%] 9 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves - continued figure 14 . freq threshold vs temperature figure 15. freq input current vs temperature figure 12. e n threshold vs temperature figure 13. en input current vs temperature v in =5v v in =3.3v v in =5v up down v in =3.3v v in =5 v v in =3.3v v in =5.0 v v in =5.0 v 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -40 -20 0 20 40 60 80 temperature [c] v en [v] 0.0 2.0 4.0 6.0 8.0 10.0 -40 -20 0 20 40 60 80 temperature [c] i en > $ @ 0.0 0.5 1.0 1.5 2.0 2.5 -40 -20 0 20 40 60 80 temperature [c] i freq > $ @ 0.5 1.0 1.5 2.0 2.5 3.0 3.5 -40 -20 0 20 40 60 80 temperature [c] v freq [v] 10 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves - continued figure 18. high side on - resistance vs temperature figure 19. low side on - resistan ce vs temperature figure 16. mode t hreshold v oltage vs t emperature figure 17. mode input current vs t emperature v in =5v v in =3.3v v in =5v v in =5v v in =3.3v v in =5v v in =3.3v 20.0 22.5 25.0 27.5 30.0 32.5 35.0 37.5 40.0 -40 -20 0 20 40 60 80 temperature [c] r onl [m b? ] 0.5 1.0 1.5 2.0 2.5 3.0 3.5 -40 -20 0 20 40 60 80 temperature [c] v mode [v] 20.0 22.5 25.0 27.5 30.0 32.5 35.0 37.5 40.0 -40 -20 0 20 40 60 80 temperature [c] r onh [m b? ] 3.0 3.5 4.0 4.5 5.0 5.5 6.0 -40 -20 0 20 40 60 80 temperature [c] i mode > $ @ 11 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves - continued figure 22 . soft start time vs temperature figure 23. ss t erminal c urrent vs temperature figure 20. pgd threshol d vs temperature figure 21. pgd on - resistance vs temperature rising falling v in =5v v in =3.3v v in =5v v in =3.3v v in =5v v in =3.3v 0.0 0.5 1.0 1.5 2.0 2.5 3.0 -40 -20 0 20 40 60 80 temperature [c] i ss > $ @ 0.0 0.5 1.0 1.5 2.0 -40 -20 0 20 40 60 80 temperature [c] t ss [msec] 60 65 70 75 80 85 -40 -20 0 20 40 60 80 temperature [c] v pgd [%] 60 70 80 90 100 110 120 -40 -20 0 20 40 60 80 temperature [c] p gd on > @ 12 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves - continued figure 26 . swi t chi n g frequency vs input voltage figure 27. swi t chi n g frequency vs i nput voltage figure 24. swi t chi n g frequency vs load current figure 25. swi t chi n g frequency vs load current mode=l mode=h freq=h v in =5v mode=l mode=h freq=l v in =5v v out = 1.2v mode=h freq=l i out = 4 a v out = 1.2v mode=h freq= h i out =4 a 0 200 400 600 800 1000 1200 0 1000 2000 3000 4000 load current [ma] f sw [khz] 800 850 900 950 1000 1050 1100 1150 1200 3.0 3.5 4.0 4.5 5.0 5.5 vin input voltage [v] f sw [khz] 1600 1700 1800 1900 2000 2100 2200 2300 2400 3.0 3.5 4.0 4.5 5.0 5.5 vin input voltage [v] f sw [khz] 0 400 800 1200 1600 2000 2400 0 1000 2000 3000 4000 load current [ma] f sw [khz] 13 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves - continued figure 30 . power up waveform with vin (freq =h , r load =0. 3 figure 31 . power down waveform with vin (freq =h , r load fi gure 28. power up waveform with en (freq =h , r load =0.3 figure 29. power down waveform with en (freq =h , r load time=1ms/div v in =5v/div en=5v/div v out =1v/div sw=5v/div v in =5v/div en=5v/div v out =1v/div sw=5v/div time=1ms/div v in =5v/div en=5v/div v out =1v/div sw=5v/div v in =5v/div en=5v/div v out =1v/div sw=5v/div time=1ms/div time=1ms/div 14 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves - continued figure 35 . switching waveform ( v in =5v, v out = 1.2v, freq=h, i out =4a) figure 32 . switching waveform ( v in =5v, v out = 1.2v, f req=l, i out =0.1a) figure 33 . switching waveform ( v in =5v, v out = 1.2v, freq=l, i out =4a) figure 34 . switching waveform ( v in =5v, v out = 1.2v, freq=h, i out =0.2a) time=1s/div v out =20mv/div sw=2v/div v out =20mv/div sw=2v/div time=1s/div time=1s/div v out =20mv/div sw=2v/div v out =20mv/div sw=2v/div time=1s/div 15 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 t ypical performance curves - continued figure 36. line regulation (v out =1.2v, l=1.0 h, freq=h , i out =4a ) figure 37. load regulation (v in =5v, v out =1.2v, l=1. 0 h , freq=h) figure 38. load transient response i out =0.1a to 3a (v in =5v, v out =1.2v, freq=l , mode=l , c out =ceramic 44f) figure 39. load transient response i out = 0 .1a to 4 a (v in =5v, v out =1.2v, freq=l , mode= h, c out =ceramic 44f) mode=h mode= l mode= l mode=h v out = 50m v/div v out = 50m v/div i out = 2a /div i out = 2a /div time = 0.4ms /div time = 0.4ms /div -3.0 -2.0 -1.0 0.0 1.0 2.0 3.0 0.0 1.0 2.0 3.0 4.0 load current [a] output voltage deviation[%] -3.0 -2.0 -1.0 0.0 1.0 2.0 3.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 vin input voltage[v] output voltage deviation[%] 16 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 function explanation ( s ) 1 . basic operation (1) dc/dc converter operation bd 9b400 muv is a synchronous rectifying step - down switching regulator that achieves faster transient response by employing constant on - time control system. it utilizes switching operation in pwm (pulse width modulation) mode for heav ier load, while it utilizes deep - sllm ( deep_ simple light load mode) control for lighter load to improve efficiency. figure 40 . efficiency (deep - sllm control and pwm control) 17 / 30 ? 20 16 rohm co., ltd. all rights reserved. www.rohm.com tsz22111 ? 15 ? 001 b d 9b400muv tsz02201 - 0j3j0aj01200 - 1 - 2 22.apr.2016 rev.002 (2) enable control the ic shutdown can be controlled by the voltage applied to the en terminal. when v en reaches 2.0 v(typ), the internal circuit i s activated and the ic starts up. to enable shutdown control with the en terminal, the shutdown interval (low level interval of en) must be set to 100 s or longer. startup by en must be at the same time or after the input of power supply voltage. figure 43 . start up and down with enable (3) power good when the out put voltage reaches more than 8 0% of the voltage setting, the open drain nmosfet , internally connected to the pgd terminal , turns off and the pgd terminal turns to hi - z condi tion. also when the output voltage falls below 70% of voltage setting, the open drain nmos fet turns on and pgd terminal pulls down with & |