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AOZ2260QI-1128V/6A Synchronous EZBuckTM Regulator
General DescriptionThe AOZ2260QI-11 is a high-efficiency, easy-to-use DC/DC synchronous buck regulator that operates up to 28V. The device is capable of supplying 6A of continuousoutput current with an output voltage adjustable down to0.8V (±1.0%).
A proprietary constant on-time PWM control with inputfeed-forward results in ultra-fast transient response whilemaintaining relatively constant switching frequency overthe entire input voltage range. The on-time can beexternally programmed up to 2.6µs.
The device features multiple protection functions such asVCC under-voltage lockout, cycle-by-cycle current limit,output over-voltage protection, short-circuit protection,and thermal shutdown.
The AOZ2260QI-11 is available in a 4mm x 4mm QFN-22L package and is rated over a -40°C to +85°C ambienttemperature range.
Features Wide input voltage range
– 2.7V to 28V 6A continuous output current Output voltage adjustable down to 0.8V (±1.0%) Low RDS(ON) internal NFETs
– 30m high-side– 17m low-side
Constant On-Time with input feed-forward Programmable on-time up to 2.6µs Selectable PFM light load operation Ceramic capacitor stable Adjustable soft start Ripple reduction Power Good output Integrated bootstrap diode Cycle-by-cycle current limit Short-circuit protection Thermal shutdown Thermally enhanced 4mm x 4mm QFN-22L package
Applications Portable computers Compact desktop PCs Servers Graphics cards Set-top boxes LCD TVs Cable modems Point-of-load DC/DC converters Telecom/Networking/Datacom equipment
Rev. 2.0 March 2019 www.aosmd.com Page 1 of 16
AOZ2260QI-11
Typical Application
AOZ2260QI-11
Input2.7V to 28V
Output1.05V, 6A
C388μF
R2
R3100kΩ
R1
C222μF
C50.1μF
IN
Power Good
Off On
VCC
PGOOD
EN
PFM
SSCSS
RTON
C44.7μF
BST
LX
FB
AGND
PGND
L11μH
TON
5V
Power Ground
Analog Ground
Rev. 2.0 March 2019 www.aosmd.com Page 2 of 16
AOZ2260QI-11
Ordering Information
AOS Green Products use reduced levels of Halogens, and are also RoHS compliant.Please visit www.aosmd.com/media/AOSGreenPolicy.pdf for additional information.
Pin Configuration
Part Number Ambient Temperature Range Package EnvironmentalAOZ2260QI-11 -40°C to +85°C 22-Pin 4mm x 4mm QFN Green Product
1
22 21 20 19 18
7 8 9 1110
2
3
4
5
PGOODIN IN IN LX LX
SS
VC
C
BS
T
PG
ND
LX
EN
PFM
AGND
FB
22-Pin 4mm x 4mm QFN(Top View)
17
16
15
13
12
LX
LX
PGND
PGND
PGND
PGND
LXIN14
6TON
Rev. 2.0 March 2019 www.aosmd.com Page 3 of 16
www.aosmd.com/media/AOSGreenPolicy.pdfwwww.aosmd.com/web/rohs_compliant.jsphttp://www.aosmd.com/web/quality/rohs_compliant.jsp
AOZ2260QI-11
Pin Description
Pin Number Pin Name Pin Function
1 PGOOD
Power Good Signal Output. PGOOD is an open-drain output used to indicate the status of the output voltage. It is internally pulled low when the output voltage is 15% lower than the nominal regulation voltage for or 20% higher than the nominal regulation voltage. PGOOD is pulled low during soft-start and shut down.
2 EN Enable Input. The AOZ2260QI-11 is enabled when EN is pulled high. The device shuts down when EN is pulled low.
3 PFM PFM Selection Input. Connect PFM pin to VCC for forced PWM operation. Connect PFM pin to ground for PFM operation to improve light load efficiency.
4 AGND Analog Ground.
5 FB Feedback Input. Adjust the output voltage with a resistive voltage-divider between the regulator’s output and AGND.
6 TON On-Time Setting Input. Connect a resistor between VIN and TON to set the on time.
7, 8, 9 IN Supply Input. IN is the regulator input. All IN pins must be connected together.
12, 13, 14, 15, 19 PGND Power Ground.
10, 11, 16, 17, 18 LX Switching Node.
20 BSTBootstrap Capacitor Connection. The AOZ2260QI-11 includes an internal bootstrap diode. Connect an external capacitor between BST and LX as shown in the Typical Appli-cation diagram.
21 VCC Supply Input for analog functions. Bypass VCC to AGND with a 1µF~10µF ceramic capacitor. Place the capacitor close to VCC pin.
22 SS Soft-Start Time Setting Pin. Connect a capacitor between SS and AGND to set the soft-start time.
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AOZ2260QI-11
Absolute Maximum RatingsExceeding the Absolute Maximum Ratings may damage the device.
Notes:1. Devices are inherently ESD sensitive, handling precautions are
required. Human body model rating: 1.5k in series with 100pF.2. LX to PGND Transient (t 2V, PFM mode
0.15 mA
IOFF Shutdown Supply Current VEN = 0V 1 20 µA
VFB Feedback VoltageTA = 25°C TA = 0°C to 85°C
0.7920.788
0.8000.800
0.8080.812
VV
Load Regulation 0.5 %
Line Regulation 1 %
IFB FB Input Bias Current 200 nA
Enable
VEN EN Input ThresholdOff thresholdOn threshold 1.6
0.5 VV
VEN_HYS EN Input Hysteresis 100 mV
PFM Control
VPFM PFM Input Threshold PFM Mode thresholdForce PWM threshold 2.5
0.5 VV
VPFMHYS PFM Input Hysteresis 100 mV
ModulatorTON On Time RTON = 100k, VIN = 12V 200 ns
TON_MIN Minimum On Time 100 ns
TON_MAX Maximum On Time 2.6 µs
TOFF_MIN Minimum Off Time 300 ns
Electrical CharacteristicsTA = 25°C, VIN = 12V, VCC = 5V, EN = 5V, unless otherwise specified. Specifications in BOLD indicate a temperature range of-40°C to +85°C.
Rev. 2.0 March 2019 www.aosmd.com Page 5 of 16
AOZ2260QI-11
Electrical Characteristics (Continued)TA = 25°C, VIN = 12V, VCC = 5V, EN = 5V, unless otherwise specified. Specifications in BOLD indicate a temperature range of
Soft-StartISS_OUT SS Source Current VSS = 0V
CSS = 0.001µF to 0.1µF7 11 15 µA
Power Good SignalVPG_LOW PGOOD Low Voltage IOL = 1mA 0.5 V
PGOOD Leakage Current ±1 µAVPGH PGOOD Threshold
(Low Level to High Level)FB rising 90 %
VPGL PGOOD Threshold(High Level to Low Level)
FB risingFB falling
12085
%%
PGOOD Threshold Hysteresis 5 %
Under Voltage and Over Voltage ProtectionVPL Under Voltage Threshold FB falling 70 %
TPL Under Voltage Delay Time 32 µs
VPH Over Voltage Threshold FB rising 120 %
Power Stage OutputRDS(ON) High-Side NFET On-Resistance VIN = 12V, VCC = 5V 30 m
High-Side NFET Leakage VEN = 0V, VLX = 0V 10 µA
RDS(ON) Low-Side NFET On-Resistance VLX = 12V, VCC = 5V 17 m
Low-Side NFET Leakage VEN = 0V 10 µA
Over-current and Thermal ProtectionILIM Current Limit VCC = 5V 9 A
Thermal Shutdown Threshold TJ risingTJ falling150100
°C°C
Symbol Parameter Conditions Min. Typ. Max Units
-40°C to +85°C.
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AOZ2260QI-11
Functional Block Diagram
ISENSEILIM
Error Comp
ILIM Comp
0.8V
ISENSE (AC) FB
Decode
OTP
Reference& Bias
BST
PG Logic
LX
AGNDPGND
ISENSE
ISENSE (AC)
CurrentInformationProcessing
Vcc
IN PGood
TON
TimerQ
TOFF_MIN
SR
Q
TimerQ
FB
SS
VCC
Light LoadThreshold
ISENSE
Light LoadComp
EN
UVLOEN
PFM
TON TONGenerator
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AOZ2260QI-11
Typical Performance CharacteristicsCircuit of Typical Application. TA = 25°C, VIN = 19V, VOUT = 1.05V, fs = 500kHz unless otherwise specified.
Normal Operation
Vo ripple10mV/div
VLX10V/div
ILX5A/div
5μs/div
Load Transient 0A to 6A
Vo ripple50mV/div
ILX5A/div
500μs/div
Full Load Start-up
VLX20V/div
EN5V/div
Vo1V/div
lLX5A/div
VLX20V/div
ILX10A/div
Vo500mV/div
1ms/div
Short Circuit Protection
20μs/div
Rev. 2.0 March 2019 www.aosmd.com Page 8 of 16
AOZ2260QI-11
Detailed DescriptionThe AOZ2260QI-11 is a high-efficiency, easy-to-use,synchronous buck regulator optimized for notebookcomputers. The regulator is capable of supplying 6A ofcontinuous output current with an output voltageadjustable down to 0.8V. The programmable on-timefrom 100ns to 2.6µs, enables optimizing the configurationfor PCB area and efficiency.
The input voltage of AOZ2260QI-11 can be as low as2.7V. The highest input voltage of AOZ2260QI-11 can be28V. Constant on-time PWM with input feed-forwardcontrol scheme results in ultra-fast transient responsewhile maintaining relatively constant switching frequencyover the entire input range. True AC current mode controlscheme guarantees the regulator can be stable with aceramic output capacitor. The switching frequency canbe externally programmed. Protection features includeVCC under-voltage lockout, current limit, output overvoltage and under voltage protection, short-circuitprotection, and thermal shutdown.
The AOZ2260QI-11 is available in 22-pin 4mm x 4mmQFN package.
Enable and Soft StartThe AOZ2260QI-11 has external soft start feature to limitin-rush current and ensure the output voltage ramps upsmoothly to regulation voltage. A soft start processbegins when VCC rises to 4.5V and voltage on EN pin isHIGH. An internal current source charges the externalsoft start capacitor; the FB voltage follows the voltage ofsoft start pin (VSS) when it is lower than 0.8V. When VSSis higher than 0.8V, the FB voltage is regulated byinternal precise band-gap voltage (0.8V). When VSS ishigher than 3.3V, the PGOOD signal is high. The softstart time can be calculated by the following formula:
TSS(µs) = 330 x CSS(nF)
If CSS is 1nF, the soft start time will be 330µs; if CSS is10nF, the soft start time will be 3.3ms.
Figure 1. Soft Start Sequence of AOZ2260QI-11
Constant-On-Time PWM Control with Input Feed-ForwardThe control algorithm of AOZ2260QI-11 is constant-on-time PWM Control with input feed-forward.
The simplified control schematic is shown in Figure 2.
Figure 2. Simplified Control Schematic of AOZ2260QI-11
The high-side switch on-time is determined solely by aone-shot whose pulse width can be programmed by oneexternal resistor and is inversely proportional to inputvoltage (IN). The one-shot is triggered when the internal0.8V is lower than the combined information of FBvoltage and the AC current information of inductor, whichis processed and obtained through the sensed lower-sideMOSFET current once it turns on. The added AC currentinformation can help the stability of constant-on timecontrol even with pure ceramic output capacitors, whichhave very low ESR. The AC current information has noDC offset, which does not cause offset with output loadchange, which is fundamentally different from other V2constant-on time control schemes.
The constant-on-time PWM control architecture is apseudo-fixed frequency with input voltage feed-forward.The internal circuit of AOZ2260QI-11 sets the on-time ofhigh-side switch inversely proportional to the IN.
To achieve the flux balance of inductor, the buck converter has the equation:
Once the product of VIN x TON is constant, the switchingfrequency keeps constant and is independent with inputvoltage.
An external resistor between the IN and TON pin sets theswitching on-time according to the following curves:
0.8V
FB Voltage/AC Current Information
CompProgrammableOne-Shot
IN
PWM
+
–
TONRTON
VIN V ------------------------- (1)
FSWVOUT
VIN TON---------------------------= (2)
VSS=0.8V
VOUT
VSS
PGOOD
VSS=3.3V
Rev. 2.0 March 2019 www.aosmd.com Page 9 of 16
AOZ2260QI-11
Figure 3. TON vs. RTON Curves for AOZ2260QI-11
A further simplified equation will be:
If VOUT is 1.05V, VIN is 19V, and set FS = 500kHz.According to equation 3, TON = 110ns is needed. Finally,use the TON to RTON curve, we can find out RTON is82k.
This algorithm results in a nearly constant switchingfrequency despite the lack of a fixed-frequency clockgenerator.
True Current Mode Control The constant-on-time control scheme is intrinsicallyunstable if output capacitor’s ESR is not large enough asan effective current-sense resistor. Ceramic capacitorsusually cannot be used as output capacitor.
The AOZ2260QI-11 senses the low-side MOSFETcurrent and processes it into DC and AC currentinformation using AOS proprietary technique. The ACcurrent information is decoded and added on the FB pinon phase. With AC current information, the stability of
constant-on-time control is significantly improved evenwithout the help of output capacitor’s ESR, and thus thepure ceramic capacitor solution can be applicable. Thepure ceramic capacitor solution can significantly reducethe output ripple (no ESR caused overshoot andundershoot) and less board area design.
Current-Limit Protection The AOZ2260QI-11 uses the current-limit protection byusing RDSON of the lower MOSFET current sensing. Todetect real current information, a minimum constant-off(300ns typical) is implemented after a constant-on time. Ifthe current exceeds the current-limit threshold, the PWMcontroller is not allowed to initiate a new cycle. The actualpeak current is greater than the current-limit threshold byan amount equal to the inductor ripple current. Therefore,the exact current-limit characteristic and maximum loadcapability are a function of the inductor value as well asinput and output voltages. The current limit will keep thelow-side MOSFET ON and will not allow another high-side on-time, until the current in the low-side MOSFETreduces below the current limit.
After 64 switching cycles, the AOZ2260QI-11 considersthis is a true failed condition and therefore, turns-off bothhigh-side and low-side MOSFETs and latches off. Onlywhen triggered, the enable can restart the AOZ2260QI-11 again.
Output Voltage Under-Voltage ProtectionIf the output voltage is lower than 70% by over-current orshort circuit, the AOZ2260QI-11 will wait for 32µs(typical) and turns-off both high-side and low-sideMOSFETs and latches off. Only when triggered, theenable can restart the AOZ2260QI-11 again.
Output Voltage Over-Voltage Protection The threshold of OVP is set 20% higher than 0.8V. Whenthe VFB voltage exceeds the OVP threshold, the high-side MOSFET is turned-off and the low-side MOSFETs isturned-on at 1µs, then latch-off.
Power Good Output The power good (PGOOD) output, which is an opendrain output, requires the pull-up resistor. When theoutput voltage is 15% below than the nominal regulationvoltage, the PGOOD is pulled low. When the outputvoltage is 20% higher than the nominal regulationvoltage, the PGOOD is also pulled low.
When combined with the under-voltage-protection circuit,this current limit method is effective in almost everycircumstance.
FSW kHz VOUT V
VIN V TON ns ------------------------------------------------ 106= (3)
On-Time vs. On-Time Resistance(@ VIN=5V~15V)
60 74 88 102 116 130 144 158 172 186 200
11301064
998932866800734668602536470404338272206140
On-Time Resistance (KΩ)
On-
Tim
e (n
S)
VIN=5VVIN=7VVIN=9VVIN=11VVIN=13VVIN=15V
On-Time vs. On-Time Resistance(@ VIN=17V~28V)
60 74 88 102 116 130 144 158 172 186 200
315299283267251235219203187171155139123107
9175
On-Time Resistance (KΩ)
On-
Tim
e (n
S)
VIN=17VVIN=19VVIN=21VVIN=24VVIN=26VVIN=28V
Rev. 2.0 March 2019 www.aosmd.com Page 10 of 16
AOZ2260QI-11
Application InformationThe basic AOZ2260QI-11 application circuit is shown inpage 2. Component selection is explained below.
Input CapacitorThe input capacitor must be connected to the IN pins andPGND pin of the AOZ2260QI-11 to maintain steady inputvoltage and filter out the pulsing input current. A smalldecoupling capacitor, usually 1F, should be connectedto the VCC pin and AGND pin for stable operation of theAOZ2260QI-11. The voltage rating of input capacitormust be greater than maximum input voltage plus ripplevoltage.
The input ripple voltage can be approximated by equation below:
Since the input current is discontinuous in a buckconverter, the current stress on the input capacitor isanother concern when selecting the capacitor. For a buckcircuit, the RMS value of input capacitor current can becalculated by:
if let m equal the conversion ratio:
The relation between the input capacitor RMS currentand voltage conversion ratio is calculated and shown inFigure 4. It can be seen that when VO is half of VIN, CIN isunder the worst current stress. The worst current stresson CIN is 0.5 x IO.
Figure 4. ICIN vs. Voltage Conversion Ratio
For reliable operation and best performance, the inputcapacitors must have current rating higher than ICIN-RMSat worst operating conditions. Ceramic capacitors arepreferred for input capacitors because of their low ESRand high ripple current rating. Depending on theapplication circuits, other low ESR tantalum capacitor oraluminum electrolytic capacitor may also be used. Whenselecting ceramic capacitors, X5R or X7R type dielectricceramic capacitors are preferred for their bettertemperature and voltage characteristics. Note that theripple current rating from capacitor manufactures isbased on certain amount of life time. Further de-ratingmay be necessary for practical design requirement.
InductorThe inductor is used to supply constant current to outputwhen it is driven by a switching voltage. For given inputand output voltage, inductance and switching frequencytogether decide the inductor ripple current, which is:
The peak inductor current is:
High inductance gives low inductor ripple current butrequires a larger size inductor to avoid saturation. Lowripple current reduces inductor core losses. It alsoreduces RMS current through inductor and switches,which results in less conduction loss. Usually, peak topeak ripple current on inductor is designed to be 30% to50% of output current.
When selecting the inductor, make sure it is able tohandle the peak current without saturation even at thehighest operating temperature.
The inductor takes the highest current in a buck circuit.The conduction loss on the inductor needs to be checkedfor thermal and efficiency requirements.
Surface mount inductors in different shapes and stylesare available from Coilcraft, Elytone and Murata.Shielded inductors are small and radiate less EMI noise,but they do cost more than unshielded inductors. Thechoice depends on EMI requirement, price and size.
VINIO
f CIN----------------- 1
VOVIN---------–
VO
VIN---------= (4)
ICIN_RMS IOVOVIN--------- 1
VOVIN---------–
= (5)
VOVIN--------- m= (6)
ILVOf L----------- 1
VOVIN---------–
= (7)
ILpeak IOIL2--------+=
(8)
0
0.1
0.2
0.3
0.4
0.5
0 0.5 1m
ICIN_RMS(m)
IO
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AOZ2260QI-11
Output CapacitorThe output capacitor is selected based on the DC outputvoltage rating, output ripple voltage specification andripple current rating.
The selected output capacitor must have a higher ratedvoltage specification than the maximum desired outputvoltage including ripple. De-rating needs to beconsidered for long term reliability.
Output ripple voltage specification is another importantfactor for selecting the output capacitor. In a buck con-verter circuit, output ripple voltage is determined byinductor value, switching frequency, output capacitorvalue and ESR. It can be calculated by the equationbelow:
where,
CO is output capacitor value and ESRCO is the Equivalent Series Resistor of output capacitor.
When a low ESR ceramic capacitor is used as outputcapacitor, the impedance of the capacitor at theswitching frequency dominates. Output ripple is mainlycaused by capacitor value and inductor ripple current.The output ripple voltage calculation can be simplified to:
If the impedance of ESR at switching frequencydominates, the output ripple voltage is mainly decided bycapacitor ESR and inductor ripple current. The outputripple voltage calculation can be further simplified to:
For lower output ripple voltage across the entireoperating temperature range, X5R or X7R dielectric typeof ceramic, or other low ESR tantalum are recommendedto be used as output capacitors.
In a buck converter, output capacitor current iscontinuous. The RMS current of output capacitor isdecided by the peak to peak inductor ripple current. It can be calculated by:
Usually, the ripple current rating of the output capacitor isa smaller issue because of the low current stress. Whenthe buck inductor is selected to be very small andinductor ripple current is high, the output capacitor couldbe overstressed.
Thermal Management and Layout ConsiderationIn the AOZ2260QI-11 buck regulator circuit, high pulsingcurrent flows through two circuit loops. The first loopstarts from the input capacitors, to the VIN pin, to the LXpins, to the filter inductor, to the output capacitor andload, and then returns to the input capacitor throughground. Current flows in the first loop when the high sideswitch is on. The second loop starts from the inductor, tothe output capacitors and load, to the low side switch.Current flows in the second loop when the low sideswitch is on.
In PCB layout, minimizing the two loops area reduces thenoise of this circuit and improves efficiency. A groundplane is strongly recommended to connect the inputcapacitor, output capacitor and PGND pin of theAOZ2260QI-11.
In the AOZ2260QI-11 buck regulator circuit, the majorpower dissipating components are the AOZ2260QI-11and output inductor. The total power dissipation of theconverter circuit can be measured by input power minusoutput power.
The power dissipation of inductor can be approximatelycalculated by output current and DCR of inductor andoutput current.
The actual junction temperature can be calculated withpower dissipation in the AOZ2260QI-11 and thermalimpedance from junction to ambient.
The maximum junction temperature of AOZ2260QI-11 is150ºC, which limits the maximum load current capability.
The thermal performance of the AOZ2260QI-11 isstrongly affected by the PCB layout. Extra care should betaken by users during design process to ensure that theIC will operate under the recommended environmentalconditions.
VO IL ESRCO1
8 f CO-------------------------+
= (9)
VO IL1
8 f CO-------------------------= (10)
VO IL ESRCO=(11)
ICO_RMSIL12----------= (12)
Ptotal_loss VIN IIN VO IO–= (13)
Pinductor_loss IO2 Rinductor 1.1= (14)
Tjunction Ptotal_loss Pinductor_loss– JA= (15)
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AOZ2260QI-11
Layout ConsiderationsSeveral layout tips are listed below for the best electric and thermal performance. 1. The LX pins and pad are connected to internal low
side switch drain. They are low resistance thermalconduction path and most noisy switching node.Connect a large copper plane to LX pin to helpthermal dissipation.
2. The IN pins and pad are connected to internal highside switch drain. They are also low resistancethermal conduction path. Connect a large copperplane to IN pins to help thermal dissipation.
3. Input capacitors should be connected to the IN pinand the PGND pin as close as possible to reduce theswitching spikes.
4. Decoupling capacitor CVCC should be connected toVCC and AGND as close as possible.
5. Voltage divider R1 and R2 should be placed as closeas possible to FB and AGND.
6. RTON should be connected as close as possible toPin 6 (TON pin).
7. A ground plane is preferred; Pin 19 (PGND) must beconnected to the ground plane through via.
8. Keep sensitive signal traces such as feedback tracefar away from the LX pins.
9. Pour copper plane on all unused board area andconnect it to stable DC nodes, like VIN, GND orVOUT.
PGND
PG
ND
PG
ND
PG
ND
PG
ND
Vin
Vout
Vout
Rev. 2.0 March 2019 www.aosmd.com Page 13 of 16
AOZ2260QI-11
Package Dimensions, QFN4x4-22L, EP2_S
TOP VIEW
SIDE VIEW
BOTTOM VIEW
Notes:1. Controlling dimensions are in millimeters. Converted inch dimensions are not necessarily exact.2. Tolerance: ± 0.05 unless otherwise specified.3. Radius on all corners is 0.152 max., unless otherwise specified.4. Package wrapage: 0.012 max.5. No plastic flash allowed on the top and bottom lead surface.6. Pad planarity: ± 0.1027. Crack between plastic body and lead is not allowed.
RECOMMENDED LAND PATTERN Dimensions in millimeters Dimensions in inches
UNIT: MM
Symbols Min. Typ. Max.A
A1A2E
E1E2E3D
D1D2D3L
L1L2L3L4L5be
0.800.00
3.902.951.652.953.900.650.751.100.350.570.230.570.300.170.20
0.90—
0.2 REF4.003.051.753.054.000.750.851.200.400.620.280.620.350.270.25
0.50 BSC
1.000.05
4.103.151.853.154.100.850.951.300.450.670.330.670.400.370.30
Symbols Min. Typ. Max.A
A1A2E
E1E2E3D
D1D2D3L
L1L2L3L4L5be
0.0310.000
0.1530.1160.0650.1160.1530.0260.0290.0430.0140.0220.0090.0220.0120.0070.008
0.035—
0.008 REF0.1570.1200.0690.1200.1570.0300.0330.0470.0160.0240.0110.0240.0140.0110.010
0.020 BSC
0.0390.002
0.1610.1240.0730.1240.1610.0340.0370.0510.0180.0260.0130.0260.0160.0150.012
D2 D3L5
L1
L
E3
b
L3
D1D1
L4L2
E2E1
e
L5
DPin #1 DotBy Marking
E
A1A
A2
0.60
0.50
0.45
0.250.25
0.22
3.102.75 3.10
3.43
0.270.750.85
0.250.75
1.20
1.00
0.04
Rev. 2.0 March 2019 www.aosmd.com Page 14 of 16
AOZ2260QI-11
Tape and Reel Dimensions, QFN4x4-22L, EP2_S
Carrier Tape
Reel
Tape Size12mm
Reel Sizeø330
Mø330.0
±2.0
Nø79.0±1.0
UNIT: mm
G
M
W1
S
K
H
N
W
V
R
Trailer Tape300mm min.
Components TapeOrientation in Pocket
Leader Tape500mm min.
Hø13.0±0.5
W12.4
+2.0/-0.0
W117.0
+2.6/-1.2
K10.5±0.2
S2.0±0.5
G—
R—
V—
Leader/Trailer and Orientation
UNIT: mm
P1
D1 P2
B0
P0D0
E2
E1
E
A0Feeding Direction
Package A0 B0 K0 E E1 E2D0 D1 P0 P1 P2 T
4.35±0.10 ±0.10
4.35±0.101.10 1.50 1.50 12.00
±0.101.75
±0.055.50
±0.108.00
±0.104.00
±0.052.00
±0.050.30
±0.30+0.10/-0Min.QFN 4x4(12mm)
T
K0
Rev. 2.0 March 2019 www.aosmd.com Page 15 of 16
AOZ2260QI-11
Part Marking
Part Number Code
Assembly Lot CodeFab & Assembly Location
Year & Week Code
Z2260QIB
FAYWLT
AOZ2260QI-11(QFN4x4)
As used herein:
1. Life support devices or systems are devices orsystems which, (a) are intended for surgical implant intothe body or (b) support or sustain life, and (c) whosefailure to perform when properly used in accordancewith instructions for use provided in the labeling, can bereasonably expected to result in a significant injury ofthe user.
2. A critical component in any component of a lifesupport, device, or system whose failure to perform canbe reasonably expected to cause the failure of the lifesupport device or system, or to affect its safety oreffectiveness.
LIFE SUPPORT POLICY
ALPHA AND OMEGA SEMICONDUCTOR PRODUCTS ARE NOT AUTHORIZED FOR USE AS CRITICAL COMPONENTS IN LIFE SUPPORT DEVICES OR SYSTEMS.
LEGAL DISCLAIMER
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 make changes to product specifications without notice. It is the responsibility of the customer to evaluate suitability of the product for their intended application. Customer shall comply with applicable legal requirements, including all applicable export control rules, regulations and limitations.
AOS' products are provided subject to AOS' terms and conditions of sale which are set forth at:http://www.aosmd.com/terms_and_conditions_of_sale
Rev. 2.0 March 2019 www.aosmd.com Page 16 of 16