ME3116
1A up to 40V Input Step-Down DC/DC Regulator ME3116
General Description                                                     Features
  The   ME3116     is    PWM        DC/DC      buck    (step-down)      ●Feedback pin voltage of 0.8V
regulators. With a wide input range from 4.75V-40V, they                ●Input voltage range of 4.75V to 40V
are suitable for a wide range of applications such as power             ●Output current up to 1A
conditioning from unregulated sources. They feature a low               ●550 KHz switching frequency
RDSON (0.9Ωtypical) internal switch for maximum efficiency              ●maximum efficiency 90%
90%. Operating frequency is fixed at 550 KHz allowing the               ●PWM and PFM switching
use of small external components while still being able to              ●Low shutdown IQ , 10 μA typical
have low output voltage ripple. The system has PWM and                  ●Short circuit protected
PFM switching function to ensure high efficiency under low              ●Internally compensated
load. The built-in soft-start prevents inrush current at                ●Soft-start circuitry
turn-on. the ME3116 is optimized for up to 1A load current.             ●SOT23-6 package
Both have a 0.8V nominal feedback voltage.
Additional   features    include:    thermal     shutdown,      VIN
under-voltage lockout, and gate drive under-voltage lockout.
                                                                        Applications
Selection Guide                                                         ●Battery powered equipment
                                                                        ●Industrial distributed power applications
                                                                        ●Portable media players
                                                                        ●Portable hand held instruments
Typical Application Circuit
                                                        1
                                                        BS                Cboot
                        VIN                 5 IN
                                                      ME3116                      L
                                    R3                         SW
                                                                    6                                 Vo
                                            4 EN                           D1         R1          C1
                                                                                                (Optional)
                          Cin                                       3
                                                               FB                                            Co
                                                      GND                             R2
                                                        2
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                                                                                             ME3116
Pin Configuration
                                BS                            SW
                              GND                             IN
                                FB                            EN
Pin Assignment
     Pin Num.    Symbol                                            Function
         1         BS       SW FET gate bias voltage. Connect CBOOT cap between BS and SW.
         2         GND      Ground
                            Feedback pin: Set feedback voltage divider ratio with VOUT= VFB (1+(R1/R2)).
         3         FB
                            Resistors should be in the 100-10KΩ range to avoid input bias errors.
                            Logic level shutdown input. Pull to GND to disable the device and pull high to enable
         4         EN
                            the device. If this function is not used tie to VIN with a resistor 1MΩ.
         5          IN      Power input voltage pin: 4.75V to 40V normal operating range
         6         SW       Power FET output: Connect to inductor, diode, and CBOOT cap.
Absolute Maximum Ratings
                         Parameter                                       Rating                      Unit
  Power supply voltage, VIN                                             -0.3~45                       V
  EN voltage VEN                                                              6                       V
  SW Voltage Vsw                                                        -0.3~45                       V
  Feedback voltage VFB                                                   -0.3~5                       V
  Switch voltage VSW                                                    -1V to 45                     V
  BS Voltage above SW Voltage                                                 7                       V
  Maximum Junction Temperature                                            150                         °C
  Lead Temperature                                                        300                         °C
  ESD Susceptibility: Human Body Model                                        2                       KV
Caution: The absolute maximum ratings are rated values exceeding which the product could suffer physical damage.
        These values must therefore not be exceeded under any conditions.
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                                                                                             ME3116
Recommended working condition
                       Parameter                                 Min                Max              Unit
  Power supply voltage, VIN                                      4.75               40                   V
  SW voltage                                                          -             42                   V
  Operating Junction Temperature Range                            -40               125                  °C
  Storage Temperature                                             -65               150                  °C
Block Diagram
    1
   BS                                                       Max Duty
                                                            Cycle Limit
                                                                                 Inductor
                                                                                  Current
    2                                                                          Measurement
  GND                              OSC            SET          DC
                                                              Limit                                           IN
                                                                                                               5
                                    PWM                         Buck       FET
                                    comp          Reset         Drive     Driver                               6
    3                                                                                                         SW
                    Error                                                                     Voltage
   FB               Amp                                                                      Regulator
                                                                                                              4
                                                    TSD      UVLO            UVLO
                                                                             COMP                             EN
                     Soft                         Thermal                           BG
          Bandgap
                     start                       Shutdown
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                                                                                                ME3116
 Electrical Characteristics
  Specifications in standard type face are for TJ = 25°C and those with boldface type apply over the full Operating
Temperature Range ( TJ = −40°C to +125°C). Minimum and Maximum limits are guaranteed through test, design, or
statistical correlation. Typical values represent the most likely parametric norm at TJ = +25°C, and are provided for
reference purposes only. Unless otherwise stated the following conditions apply: VIN = 12V.
            Item                     Symbol                Test condition            Min      Typ.      Max     Unit
                                                               EN=0 V                  -       0.7       2       μA
Quiescent current                       IQ            Device On, Not Switching         -       1.3      1.75
                                                                                                                 mA
                                                         Device On, No Load            -      1.35      1.85
Switch ON resistance                  RDSON                                            -       0.9      1.6       Ω
Switch leakage current                 ILSW                   VIN =40V                 -        0       0.5      μA
Switch Current Limit                   ICL                                             -       1.2        -       A
Feedback pin Bias Current              IFB                                             -       0.1       1       μA
Feedback voltage                       VFB                                           0.788     0.8     0.812      V
Minimum ON time                        tMIN                                            -       100        -      nS
Switching Frequency                    fSW                    VFB=0.5V                 -       550        -      KHz
Short Circuit Frequency               Fshort                  VFB = 0V                 -       140        -      KHz
Maximum Duty Cycle                  DMAX                       VFB = 1.0V              -       88        94       %
                                      Vuvp                  On threshold              4.4      3.9        -       V
VIN UVLO Threshold
                                      Vuvhy                 Off threshold              -       3.7      3.5       V
EN Shutdown Threshold                VEN_ST                  VEN Rising                4        2         -       V
Voltage
Thermal Shutdown                        T                                              -       160        -      °C
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                                                                                                ME3116
Application Information
 The ME3116 has dedicated protection circuitry running during normal operation to protect the IC. The thermal
shutdown circuitry turns off the power device when the die temperature reaches excessive levels. The UVLO
comparator protects the power device during supply power startup and shutdown to prevent operation at voltages
less than the minimum input voltage. A gate drive (BS) under-voltage lockout is included to guarantee that there is
enough gate drive voltage to drive the MOSFET before the device tries to start switching. The ME3116 also features
a shutdown mode decreasing the supply current to approximately 0.7μA.
Continuous Conduction Mode
  The ME3116 contains a current-mode, PWM buck regulator. A buck regulator steps the input voltage down to a
lower output voltage. In continuous conduction mode (when the inductor current never reaches zero at steady state),
the buck regulator operates in two cycles. The power switch is connected between VIN and SW. In the first cycle of
operation the transistor is closed and the diode is reverse biased. Energy is collected in the inductor and the load
current is supplied by Co and the rising current through the inductor. During the second cycle the transistor is open
and the diode is forward biased due to the fact that the inductor current cannot instantaneously change direction. The
energy stored in the inductor is transferred to the load and output capacitor. The ratio of these two cycles determines
the output voltage. The output voltage is defined approximately as: D=Vo/VIN and D’ = (1- D) where D is the duty
cycle of the switch. D and D' will be required for design calculations.
Design Procedure
 This section presents guidelines for selecting external components.
Setting the Output Voltage
 The output voltage is set using the feedback pin and a resistor divider connected to the output as shown on the front
page schematic. The feedback pin voltage is 0.8V, so the ratio of the feedback resistors sets the output voltage
                                                  R1+R2
according to the following equation: Vo = 0.8 *
                                                   R2
Typically R2 will be given as 100Ω-10 KΩ for a starting value. To solve for R1 given R2 and Vo use :
                                                     Vo
                                       R1= R2 * (        -1)
                                                    0.8V
Feedforward Capacitor Selection
 Internal compensation function allows users saving time in design and saving cost by reducing the number of
external components. The use of a feedforward capacitor C1 in the feedback network is recommended to improve
the transient response or higher phase margin.
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                                                                                                  ME3116
 For optimizing the feedforward capacitor, knowing the cross frequency is the first thing. The cross frequency (or the
converter bandwidth) can be determined by using a network analyzer. When getting the cross frequency with no
feedforward capacitor identified, the value of feedforward capacitor       C1 can be calculated with the following
equation:
                                                      1        1   1  1
                                          C1                *   *(    )
                                                 2 * FCROSS   R1 R1 R2
 Where FCROSS is the cross frequency. to reduce transient ripple, the feedforward capacitor value can be increased
to push the cross frequency to higher region. Although this can improve transient response, it also decreases phase
margin and causes more ringing. In the other hand, if more phase margin is desired, the feedforward capacitor value
can be decreased to push the cross frequency to lower region. In general, the feedforward capacitor range is
between 10pF to 220pF.
                       FB Compensation capacitor selection recommendation                  Note
                                          R1               R2              C1
                                       5.1KΩ              1KΩ          47p-220p
                                                                                         VIN≤40V
                       VO=5V            56KΩ             10KΩ          47p-100p
                                       112KΩ             20KΩ             20p
                                       3.3KΩ              1KΩ          440p-660p
                                        10KΩ              3KΩ          100p-330p         VIN≤24V
                      VO=3.3V
                                        33KΩ             10KΩ          67p-100p
                                       100KΩ             30KΩ             20p
 Input Capacitor
 A low ESR ceramic capacitor (CIN) is needed between the VIN pin and GND pin. This capacitor prevents large
voltage transients from appearing at the input. Use a 2.2 μF-10 μF value with X5R or X7R dielectric. Depending on
construction, a ceramic capacitor’s value can decrease up to 50% of its nominal value when rated voltage is applied.
Consult with the capacitor manufacturer's data sheet for information on capacitor derating over voltage and
temperature.
Inductor Selection
 The most critical parameters for the inductor are the inductance, peak current, and the DC resistance. The
inductance is related to the peak-to-peak inductor ripple current, the input and the output voltages.
                                          (VIN - Vo) * Vo
                                     L=
                                          VIN*IR I P P L*Ef S W
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                                                                                                  ME3116
 A higher value of ripple current reduces inductance, but increases the conductance loss, core loss, and current
stress for the inductor and switch devices. It also requires a bigger output capacitor for the same output voltage ripple
requirement. A reasonable value is setting the ripple current to be 30% of the DC output current. Since the ripple
current increases with the input voltage, the maximum input voltage is always used to determine the inductance. The
DC resistance of the inductor is a key parameter for the efficiency. Lower DC resistance is available with a bigger
winding area. A good tradeoff between the efficiency and the core size is letting the inductor copper loss equal 2% of
the output power. A good starting point for most applications is a 4.7μH to 15μH with 1A or greater current rating for
the ME3116. Using such a rating will enable the ME3116 to current limit without saturating the inductor. This is
preferable to the ME3116 going into thermal shutdown mode and the possibility of damaging the inductor if the
output is shorted to ground or other long term overload.
Output Capacitor
  The selection of Co is driven by the maximum allowable output voltage ripple. The output ripple in the constant
                                                                               1
frequency, PWM mode is approximated by: VRIPPLE = IRIPPLE * (ESR +                      )
                                                                         8 * fSW * Co
The ESR term usually plays the dominant role in determining the voltage ripple. Low ESR ceramic capacitors are
recommended. Capacitors in the range of 22μF-100μF are a good starting point with an ESR of 0.1Ω orless.
Booststrap Capacitor
  A 0.15μF ceramic capacitor or larger is recommended for the bootstrap capacitor (Cboot). For applications where
the input voltage is less than twice the output voltage a larger capacitor is recommended, generally 0.15μF to 1μF to
ensure plenty of gate drive for the internal switches and a consistently low RDSON.
Soft-Start
  The built-in soft start, controlled by the clock signal frequency, in order to prevent the current overshoort when
opening.
Shutdown Operation
 The EN pin of the ME3116 is designed so that it may be controlled using 1.5V or higher logic signals. If the
shutdown function is not to be used the EN pin may be tied to VIN with a resistor(A 1MΩ or larger resistor is
recommended between the input voltage and the EN pin to protect the device.). The maximum voltage to the EN pin
should not exceed 5V.
Schottky Diode
 The breakdown voltage rating of the diode (D1) is preferred to be 25% higher than the maximum input voltage. The
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                                                                                                  ME3116
circuit rent rating for the diode should be equal to the maximum output current for best reliability in most applications.
In cases where the input voltage is much greater than the output voltage the average diode current is lower. In this
case it is possible to use a diode with a lower average current rating, approximately (1-D)Io, however the peak
current rating should be higher than the maximum load current 0.5A to 1A rated diode is a good starting point.
Layout Considerations
 To reduce problems with conducted noise pick up, the ground side of the feedback network should be connected
directly to the GND pin with its own connection. The feedback network, resistors R1 and R2, should be kept close to
the FB pin, and away from the inductor to minimize coupling noise into the feedback pin. The input bypass capacitor
CIN must be placed close to the VIN pin. This will reduce copper trace resistance which effects input voltage ripple of
the IC. The inductor L should be placed close to the SW pin to reduce magnetic and electrostatic noise. The output
capacitor, Co should be placed close to the junction of L and the diode D1. The L, D1, and Co trace should be as
short as possible to reduce conducted and radiated noise and increase overall efficiency. The ground connection for
the diode, CIN, and Co should be as small as possible and tied to the system ground plane in only one spot
(preferably at the Co ground point) to minimize conducted noise in the system ground plane.
Typical Performance Characteristics
 T =25°C, unless otherwise noted.
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                           ME3116
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                                         ME3116
      Start up (EN from Low to High)
                                               Vo
                                               2V/div
                                               EN
                                               2V/div
                   2ms/div
      Start up (EN from High to Low)
                                               Vo
                                               2V/div
                                                EN
                                                2V/div
                      2ms/div
      Load Transient (Load 10% to 90%)
                                              VOUT
                                              500mV/div
                                              IOUT
                                              500mA/div
                      2ms/div
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                                          ME3116
      Load Transient (Load 50% to 100%)
                                               VOUT
                                               500mV/div
                                                IOUT
                                                500mA/div
                     2ms/div
       PWM and PFM switching
                                                IL
                                                0.5A/div
                                                SW
                                                5V/div
                  2us/div
                                               IL
                                               0.5A/div
                                                SW
                                                5V/div
                  2us/div
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                                               ME3116
      Switching Node and Output (IOUT=600mA)
                                                      Vo ripple
                                                      50mV/div
                                                      VSW
                                                      5V/div
                           1μs/div
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                                                                                   ME3116
Package Information
Package type:SOT23-6 Unit:mm(inch)
                               Millimeters                             Inches
         DIM
                        Min                  Max              Min                  Max
          A             0.9                  1.45            0.0354               0.0570
          A1             0                   0.15              0                  0.0059
          A2            0.9                  1.3             0.0354               0.0511
          B             0.2                  0.5             0.0078               0.0196
          C             0.09                 0.26            0.0035               0.0102
          D             2.7                  3.10            0.1062               0.1220
          E             2.2                  3.2             0.0866               0.1181
          E1            1.30                 1.80            0.0511               0.0708
          e                    0.95REF                                0.0374REF
          e1                   1.90REF                                0.0748REF
          L             0.10                 0.60            0.0039               0.0236
          a0             00                  300               00                  300
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                                                                                            ME3116
         The information described herein is subject to change without notice.
         Nanjing Micro One Electronics Inc is not responsible for any problems caused by circuits or
          diagrams described herein whose related industrial properties, patents, or other rights
          belong to third parties. The application circuit examples explain typical applications of the
          products, and do not guarantee the success of any specific mass-production design.
         Use of the information described herein for other purposes and/or reproduction or copying
          without the express permission of Nanjing Micro One Electronics Inc is strictly prohibited.
         The products described herein cannot be used as part of any device or equipment affecting
          the human body, such as exercise equipment, medical equipment, security systems, gas
          equipment, or any apparatus installed in airplanes and other vehicles, without prior written
          permission of Nanjing Micro One Electronics Inc.
         Although Nanjing Micro One Electronics Inc exerts the greatest possible effort to ensure
          high quality and reliability, the failure or malfunction of semiconductor products may occur.
          The user of these products should therefore give thorough consideration to safety design,
          including redundancy, fire-prevention measures, and malfunction prevention, to prevent any
          accidents, fires, or community damage that may ensue.
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