DATASHEET SEARCH SITE | WWW.ALLDATASHEET.COM

Document overview

  • Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
  • PDF pages: 24

Technical content

Power Management and Multimarket Data Sheet Revision 3.2, 2014-07-09 ILD6070 60 V / 0.7 A High Efficiency Step-Down LED Driver IC LED Driver ICs for High Power LEDs

81726 Munich, Germany

© 2014 Infineon Technologies AG All Rights Reserved. Legal Disclaimer The information given in this document shall in no event be regarded as a guarantee of conditions or characteristics. With respect to any examples or hints given herein, any typical values stated herein and/or any information regarding the application of the device, Infineon Technologies hereby disclaims any and all warranties and liabilities of any kind, including without limitation, warranties of non-infringement of intellectual property rights of any third party. Information For further information on technology, delivery terms and conditions and prices, please contact the nearest Infineon Technologies Office (www.infineon.com). Warnings Due to technical requirements, components may contain dangerous substances. For information on the types in question, please contact the nearest Infineon Technologies Office. Infineon Technologies components may be used in life-support devices or systems only with the express written approval of Infineon Technologies, if a failure of such components can reasonably be expected to cause the failure of that life-support device or system or to affect the safety or effectiveness of that device or system. Life support devices or systems are intended to be implanted in the human body or to support and/or maintain and sustain and/or protect human life. If they fail, it is reasonable to assume that the health of the user or other persons may be endangered.

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 4 Revision 3.2, 2014-07-09 Hilgraeve Incorporated. IEC™ of Commission Electrot echnique Internationale. IrDA™ of Infrared Data Association Corporation. ISO™ of INTERNATIONAL ORGANIZATION FOR STANDARDIZATION. MATLAB™ of MathWorks, Inc. MAXIM™ of Maxim Integrated Products, Inc. MICROTEC™, NUCLEUS™ of Mentor Graphics Corporation. MIPI™ of MIPI Allianc e, Inc. MIPS™ of MIPS Technologies, Inc., U SA. muRata™ of MURATA MANUFACTURING CO., MICROWAVE OFFICE™ (MWO) of Applied Wave Research Inc., OmniVision™ of OmniVision Technologies, Inc. Openwave™ Openwave Systems Inc. RED HAT™ Red Hat, Inc. RFMD™ RF Micro Devices, Inc. SIRIUS™ of Si rius Satellite Radio Inc. SOLARIS™ of Sun Microsystems, Inc. SPANSION™ of Spansion LLC Ltd. Symbian™ of Symbian Software Limited. TAIYO YUDEN™ of Taiyo Yuden Co. TEAKLITE™ of CEVA, Inc. TEKTRO NIX™ of Tektronix Inc. TOKO™ of TOKO KABUSHIKI KAISHA TA. UNIX™ of X/Open Company Limited. VERILOG™, PALLADIUM™ of Cadence Design Systems, Inc. VLYNQ™ of Texas Instruments Incorporated. VXWORKS™, WIND RIVER™ of WIND RI VER SYSTEMS, INC. ZETEX™ of Diodes Zetex Limited. Last Trademarks Update 2011-11-11

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Table of Contents Data Sheet 5 Revision 3.2, 2014-07-09 Table of Contents

60 V / 0.7 A High Efficiency Step-Down LED Driver IC List of Tables Data Sheet 7 Revision 3.2, 2014-07-09 List of Tables

Product Name Package Marking ILD6070 PG-DSO-8-27 ILD6070 60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 8 Revision 3.2, 2014-07-09

1 Features

  • Wide input voltage range from 4.5 V to 60 V
  • Capable to provide up to 0.7 A average output current
  • Up to 1 MHz switching frequency
  • Soft-start capability
  • Analog and PWM dimming possible
  • Integrated PWM generator for analog dimming input
  • Typical 3% output current accuracy
  • Very low LED current drift over temperature
  • Adjustable over-tem perature protection
  • Undervoltage lockout
  • Over-current protection
  • Thermally optimized package: PG-DSO-8-27

Applications

  • LED driver for general lighting
  • Retail, office and residential downlights
  • Street and tunnel lighting
  • LED ballasts

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Product Brief Data Sheet 9 Revision 3.2, 2014-07-09

2 Product Brief

The ILD6070 is a hysteretic buck LED driver IC for drivin g high power LEDs in general lighting applications with average currents up to 0.7 A. The ILD6070 is suitable for LED applications with a wide range of supply voltages from 4.5 V to 60 V. A multifunctional PWM input signal allo ws dimming of the LEDs with an anal og DC voltage or an external PWM signal. To minimize colorshifts of the LEDs an analog PWM voltage is converted to an internal 1.6 kHz PWM signal modulating the LED current. The ILD6070 incorporates an undervoltage lock-out that will shut down the IC when the minimum supply voltage threshold is exceeded. The over-current protection turns off the output stage once the output current is above the current threshold. An integrated over-temperature protection circuit will start to reduce the LED current by internal PWM modulation once the adjustable junction temperature threshold of the IC is exceeded. Realizing a thermal coupling between LED driver IC and LE Ds this feature eliminates the need of external temperature senors as NTCs or PTCs. Thanks to the hysteretic concept the current control is extremely fast and always stable. A maximum contrast ratio of 3000:1 can be achieved depending of the dimensioning of the external components. The efficiency of the LED driver IC is remarkable high, reaching up to 98% of efficiency over a wide range. The output current accuracy from device to device and under all load conditions and over temperature is limited to a minimum, making ILD6070 the perfect fit for LED ballasts. Figure 1 Block Diagram Tadj GND VB VS Vsense ILD6070 Buck LED Driver PWM GND Vswitch I / V VSTAB Vstab OTP 4 5 OCP UVLO VREF DC to PWM Hysteretic Comparator EP

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Product Brief Data Sheet 10 Revision 3.2, 2014-07-09 Pin Definition Table 1 Pin Definition and Function Pin No. Name Pin Type Buffer Type Function

1 VB Input – Bias control input voltage, recommended to connect to pin

2 PWM Input – Dimming signal:

  • Analog dimming
  • PWM dimming

3 GND GND – IC ground

4 GND GND – IC ground

5 Vswitch Output – Power switch output

6 Vsense Input – LED current sense input

7 VS Input – Supply voltage

8 Tadj Output – Over-temperature adjustment

EP Exposed Pad GND – IC ground and heat spreader

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Maximum Ratings Data Sheet 11 Revision 3.2, 2014-07-09

3 Maximum Ratings

Attention: Stresses above the max. values listed here may cause permanent damage to the device. Exposure to absolute maximum rating conditions for extended periods may affect device reliability. Maximum ratings are absolute ratings; exceeding only one of these values may cause irreversible damage to the integrated circuit. Table 2 Maximum Ratings Parameter Symbol Values Unit Note / Test ConditionMin. Typ. Max. Supply voltage VS -0.3 – 60 V – Bias control voltage VB -0.3 – VS V– PWM voltage VPWM -0.3 – 5.5 V – Tadj voltage VTadj -0.3 – 3.5 V – Sense voltage Vsense VS - 0.3 – VS V– Switch voltage Vswitch -0.3 – 60 V – Average switch output current Iout ––0 . 7 A – Total power dissipation, TS ≤ 118°C Ptot ––1 . 6 W – Junction temperature TJ -40 – 150 °C – Storage temperature range TSTG -65 – 150 °C – ESD capability at all pins1) 1) Two different classes of ESD protecti on elements are implemented within ILD6070: 1. ESD protection at pin VS will be triggered if the voltage at pin VS rises by more than 5 V with a slew rate of more than 5 V/µs. This condition is met during an ESD event, but might also occur if the LED driver gets hotplugged into a power supply and the VS blocking capacitor has a too small capacitance. ESD protection will remain triggered as long as the slewrate condition is met. If the ESD protection gets triggered while VS is supplied the IC might be damaged. 2. ESD protection at all other pins is triggered once the connected voltage signal exceeds a threshold higher than the maximum voltage rating specified for each pin. No preventions regarding slew rate control need to be taken for these pins. VESD HBM ––2k V H B M a c c . t o JESD22 - A114

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Thermal Characteristics Data Sheet 12 Revision 3.2, 2014-07-09

4 Thermal Characteristics

Figure 2 Total Power Dissipation The major part of the IC power dissipa tion is caused by the switch resistan ce in conductive state. Therefore Equation (1) is a first estimation to calculate the total power dissipation of the IC (1) D: Duty cycle of the output switch For a more precise analysis measure the soldering point temperature TS of ILD6070 at GND pin and use Figure 2 as a reference. Table 3 Maximum Thermal Resistance Parameter Symbol Values Unit Note / Test ConditionMin. Typ. Max. Junction - soldering point1) 1) For calculation of R thJA please refer to application note AN077 (Thermal Resistance Calculation) RthJS –2 0 –K / W – 0.5 1.5 0 20 40 60 80 100 120 140 160 Ptot [W] TS [°C] SSoutONtot VIDIRP ⋅+⋅⋅=

60 V / 0.7 A High Efficiency Step-Down LED Driver IC

Electrical Characteristics

Data Sheet 13 Revision 3.2, 2014-07-09

5 Electrical Characteristics

5.1 DC Characteristics

All parameters at TA = 25 °C, unless otherwise specified. ILD6070 has an integrated over-temperature protecti on based upon the junction temperature on chip. The threshold of the over-temperature protec tion circuit is tunable by resistor R Tadj connected from pin Tadj to GND. Table 4 DC Characteristics Parameter Symbol Values Unit Note / Test ConditionMin. Typ. Max. Operating supply voltage VS 4.5 – 60 V – Operating bias control voltage VB 4.5 – VS V recommended to connect to VS Under Voltage Lock Out VS, UV, off 4.05 4.25 4.45 V IC deactivated 1) 1) IC gets deactivated once the supply voltage drops below VS, UV, off and gets operative once supply voltage rises above VS, UV, on. VS, UV, on 4.15 4.35 4.50 V IC operative Supply current consumption open load VS = Vsense, ILED =0m A IS,OL, 12V 1.60 2.2 2.70 mA VS=1 2V IS,OL, 60V 1.60 2.24 2.80 mA VS=6 0V Supply voltage reset time tS, reset 105 160 210 µs Reset time after VS power up2) 2) Reset timer starts after supply voltage exceeds the lower limi t of the supply voltage. Output stage gets enabled once reset timer expires. Current of Vsense input Isense 12 17 22 µA At any LED current Current of VB input IB, 60V 35 55 70 µA VB =6 0V Output over current protection threshold Iout, OCP 1.25 1.5 1.75 A Output over current protection delay time tdelay, OCP 160 220 300 ns turn off delay Output over current protection time out ttimeout, OCP 30 57 – µs turn off duration 3) 3) Once the over current protection threshold has been exceeded the output switch gets disabled. It is enabled again once the time out expired. Over-temperature protection threshold range (typical), 10 % reduction TOTP, range 75 – 145 °C R Tadj = 35 kΩ ... 0 Ω4) 4) TOTP, range specifies the typical temperature tuning range achievable at a 10 % reduction of LED current using resistors with 1 % accuracy. Temperatures specified refer to junction temperature on chip. Accuracy of the temperature sensor is typical ±5 K. Any resistor value RTadj ≥ 0 Ω can be selected but it might not influence OTP temperature if out of the ranges specified. Over-temperature protection threshold open, 10 % reduction TOTP, open –1 1 5 –° C R Tadj ≥ 150 kΩ Over-temperature protection threshold short, 10 % reduction TOTP, short –1 4 5 –° C R Tadj = 0 Ω Over-temperature protection, turn off TOTP, off –1 6 0 –° C Tadj pin current source to GND I Tadj, short -75 -60 -45 µA R Tadj = 0 Ω5) 5) Definition of current referenc e: Currents flowing out of the IC have a negative magnitude.

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 14 Revision 3.2, 2014-07-09 RTadj resistor values within 0 to 35 kΩ define the over-temperature protection behavior as shown in Figure 3. RTadj values ≥ 150 kΩ set the OTP threshold to TOTP, open. The over-temperature protection is based upon modulation of the LED current with an internal PWM generator. Once t he junction temperature exceeds the OTP threshold the PWM duty cycle as well as the average LED current will get reduced. Once junction temperature reaches TOTP, off the PWM duty cycle and LED current will be reduced to zero. Figure 3 Typical Output Current Duty Cycle of Over-Temperature Protection vs. T J and RTadj 100 60 70 80 90 100 110 120 130 140 150 160 170 Iout Duty Cycle [%] TJ [°C] 0 kΩ 10 kΩ 20 kΩ 35 kΩ Open

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 15 Revision 3.2, 2014-07-09

5.2 Switching Characteristics

All parameters at TA = 25 °C, unless otherwise specified. Table 5 Switching Characteristics Parameter Symbol Values Unit Note / Test Condition Min. Typ. Max. Switching frequency fswitch ––1M H z Mean current sense threshold voltage Vsense –1 2 5 –m V fswitch = 100 kHz Sense threshold hysteresis Vsensehys – ±22 – % peak to average VS =1 2V fswitch =1 0 0k H z Output current variation over supply voltage Iout, Vs – ±3– % Output current variation over temperature Iout, Ts – ±4 – % for temperatures below OTP threshold Output current variation over load Iout, load – ±3– % f i x e d VS Switch on resistance RON, 25°C – 0.46 0.50 Ω ISW =0 . 5A , TJ =2 5° C RON, 125°C – 0.67 0.74 Ω ISW =0 . 5A , TJ =1 2 5° C

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 16 Revision 3.2, 2014-07-09

5.3 Digital Control Signals

All parameters at TA = 25 °C, unless otherwise specified. Dimming of the LED current can be achieved by an analog or digital input voltage connected to pin PWM. A digital input signal will modulate the LED current according to Table 6. Figure 4 PWM Input An analog PWM input voltage activates modulation of the LED current by the integrated PWM generator running at frequency fPWM, int. Its duty cycle corresponds to analog PWM control voltage as shown in Table 7 and Figure 5. Table 6 Digital Control Parameter at Pin PWM1) 1) PWM pin has an internal pull-up circuit to high level if not connected externally on PCB Parameter Symbol Values Unit Note / Test ConditionMin. Typ. Max. PWM voltage logic high level VPWM, high 2.6 – 5.5 V output stage enabled PWM voltage logic low level VPWM, low -0.3 – 0.5 V output stage disabled PWM output current ICC,PWM -23 -18 -12 µA VPWM =0V PWM delay time td, PWM, on –0 . 8 –µ s VPWM = rising to 2.5 V Vswitch = falling to td, PWM, off –0 . 6 –µ s VPWM = falling to 0.5 V Vswitch = rising to PWM signal frequency fPWM, ext ––2 5 k H z ICC,PWM PWM 4.7 V

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 17 Revision 3.2, 2014-07-09 Figure 5 Typical Integrated PWM Duty Cycle vs. PWM Control Voltage

5.4 Switching Parameters

For all shown switching parameters ILD6070 has been measured on evaluation board ILD6070 at TA = 25 °C. Used LEDs have a typical VfLED of 3 V. Efficiency figure shows total efficiency of the application board including losses of external components as inductor or Schottky diode. See the application note for further details. Table 7 Analog Control Parameter at Pin PWM Parameter Symbol Values Unit Note / Test ConditionMin. Typ. Max. PWM input voltage for 0% duty cycle VPWM, 0% –0 . 6 1 –V PWM input voltage for 50% duty cycle VPWM, 50% –1 . 5 2 –V PWM input voltage for 100% duty cycle VPWM, 100% –2 . 4 3 –V Sensitivity of PWM duty cycle vs. PWM input voltage D.C./VPWM –5 5 –% / V Integrated PWM generator frequency fPWM, int 1.2 1.6 2.1 kHz 100 0 0.5 1 1.5 2 2.5 3 PWM Duty Cycle [%] VPWM [V]

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 18 Revision 3.2, 2014-07-09 Performance vs. supply voltage and number of LEDs: Rsense = 178 m Ω, L = 68 µH, VfLED =3V 0.680 0.690 0.700 0.710 0.720 0 5 10 15 20 25 30 35 40 45 50 55 60 ILED [A] VS [V] ILED versus VS and number of LEDs

1 LED

2 LEDs

3 LEDs

4 LEDs

5 LEDs

6 LEDs

7 LEDs

8 LEDs

9 LEDs

10 LEDs

0 5 10 15 20 25 30 35 40 45 50 55 60 ILEDrelative [%] VS [V] Relative change of ILED versus VS and number of LEDs 0.6 0.7 0.8 0.9 0 5 10 15 20 25 30 35 40 45 50 55 60 Efficiency [-] VS [V] Efficiency versus VS and number of LEDs 0 5 10 15 20 25 30 35 40 45 50 55 60 fSwitch [kHz] VS [V] fSwitch versus VS and number of LEDs 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 0 5 10 15 20 25 30 35 40 45 50 55 60 Duty Cycle [-] VS [V] Duty Cycle versus VS and number of LEDs

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 19 Revision 3.2, 2014-07-09 Performance vs. supply voltage and number of LEDs: Rsense = 353 m Ω, L = 150 µH, VfLED =3V 0.340 0.345 0.350 0.355 0.360 0 5 10 15 20 25 30 35 40 45 50 55 60 ILED [A] VS [V] ILED versus VS and number of LEDs 0 5 10 15 20 25 30 35 40 45 50 55 60 ILEDrelative [%] VS [V] Relative change of ILED versus VS and number of LEDs 0.6 0.7 0.8 0.9 0 5 10 15 20 25 30 35 40 45 50 55 60 Efficiency [-] VS [V] Efficiency versus VS and number of LEDs 0 5 10 15 20 25 30 35 40 45 50 55 60 fSwitch [kHz] VS [V] fSwitch versus VS and number of LEDs 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 0 5 10 15 20 25 30 35 40 45 50 55 60 Duty Cycle [-] VS [V] Duty Cycle versus VS and number of LEDs

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Data Sheet 20 Revision 3.2, 2014-07-09 LED current vs. soldering point temperature: Rsense =3 5 3mΩ, L =1 5 0µ H , VfLED =3V , RTadj =0 Ω. Note: Soldering point temperature was measured on application PCB close to chip exposed pad. See application note AN-EVAL-ILD6070 for board details. Over-temperature protection has been adjusted to max. threshold connecting Tadj pin to GND with RTadj = 0 Ω. LED current vs. soldering point temperature: Rsense =1 7 8mΩ, L =6 8µ H , VfLED =3V , RTadj =0 Ω. 0.340 0.345 0.350 0.355 0.360 -40 -20 0 20 40 60 80 100 120 ILED [A] TS [°C] ILED versus TS and number of LEDs, supply voltage

1 LED, 5 V

3 LEDs, 12 V

6 LEDs, 24 V

12 LEDs, 48 V

-40 -20 0 20 40 60 80 100 120 ILEDrel [%] TS [°C] ILED versus TS and number of LEDs, supply voltage 0.680 0.690 0.700 0.710 0.720 -40 -20 0 20 40 60 80 100 120 ILED [A] TS [°C] ILED versus TS and number of LEDs, supply voltage -40 -20 0 20 40 60 80 100 120 ILEDrel [%] TS [°C] ILED versus TS and number of LEDs, supply voltage

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Application Circuit Data Sheet 21 Revision 3.2, 2014-07-09

6 Application Circuit

Figure 6 Application Circuit A VS blocking capacitor shall be placed close to pin 7 to enable a low ripple Vsense measurement and to avoid a false triggering of the VS ESD protection element inside the IC. To enable the bias control of the IC it is most simple to connect pin 1 of the IC to supply voltage VS.

6.1 Setting the average LED current

The average output current for the LEDs is set by the external sense resistor Rsense. To calculate the value of this resistor a first approximation can be calculated using Equation (2). Vsense is slightly dependent on the supply voltage VS and the number of LEDs as shown in Chapter 5.4. (2) Example calculation VS = 12 V, 68 µH, VfLED = 3 V, 3 LEDs in series → Vsense = 125 mV ILED = 0.7 A → Rsense = 178 mΩ Vs PWM Rsense RTadj Exposed pad to be connected to GND CPWM CPWM is optional for soft start I / V VSTAB Vstab OTP 4 5 OCP UVLO VREF DC to PWM Hysteretic Comparator EP L LED sense sense I VR =

60 V / 0.7 A High Efficiency Step-Down LED Driver IC Application Circuit Data Sheet 22 Revision 3.2, 2014-07-09 An easy way to achieve these resistor values is to connect standard resistors in parallel.

6.2 Inductor Selection Guideline

The inductance of the inductor L, the supply voltage VS, the number of LEDs driven and their average LED current significantly influence the slew rate of the LED current in on and off condition of the LE D driver IC output switch. Due to the hysteretic current control ILD6070 will toggle the output driver stage each time upper or lower current threshold are reached. To maintain best regulation capability of the LED driver IC it is reasonable to keep a margin to the minimum switch on and off time defined by in ternal propagation delay times. Disregard of this recommendation by choosing too small inductor values mi ght result in an increased LED current ripple and loss of LED current regulation accuracy. Minimum 350 ns on and off time are recommended as a reasonable design target for the inductor selection. Below figures provide a guideline concerning minimum inductance value versus supply voltage and number of LEDs. It is assumed that the forward voltage of each LED is with in a range of 2.5 V to 3.9 V over temperature and LED production tolerances. Minimum forward voltage (e.g. occuring at high LED temperatures) needs to be considered with respect to the minimum switch on-time while maximum forward voltage (e.g. occuring at low temperatures) needs to be considered with respect to the switch off-time. The saturation current of the chosen inductor has to be higher than the peak LED current and the rating of its continous current needs to exceed the average LED current. Figure 7 Minimum Inductance for 0.35 A Average LED Current Figure 8 Minimum Inductance for 0.7 A Average LED Current 0.35 A VS [ V ] 123456789 1 0 1 1 1 2 1 3 1 4 1 5 5 15 10 22 33 15 47 33 47 20 68 47 47 47 68 25 68 68 68 47 68 68 30 100 100 68 68 68 68 100 35 100 100 100 100 68 68 100 100 40 150 100 100 100 100 100 100 100 100 150 45 150 150 150 100 100 100 100 100 100 150 150 50 150 150 150 150 150 100 100 100 100 150 150 150 55 150 150 150 150 150 150 150 100 100 150 150 150 150 220 60 220 220 150 150 150 150 150 150 150 150 150 150 150 220 220 Inductance in µH; 2.5 V ≤ VfLED ≤ 3.9 V Number of LEDs 0.7 A VS [ V ] 123456789 1 0 1 1 1 2 1 3 1 4 1 5 5 6.8 10 10 15 15 22 15 22 20 33 22 22 33 33 25 33 33 33 33 33 47 30 47 47 33 33 33 47 47 35 47 47 47 47 33 47 47 47 40 68 68 47 47 47 47 47 47 68 68 45 68 68 68 68 47 47 47 47 68 68 68 50 68 68 68 68 68 68 47 47 68 68 68 68 55 100 100 68 68 68 68 68 68 68 68 68 68 100 60 1 0 0 1 0 0 1 0 0 1 0 0 6 86 86 86 86 86 86 86 8 1 0 0 1 0 0 1 0 0 Inductance in µH; 2.5 V ≤ VfLED ≤ 3.9 V Number of LEDs

60 V / 0.7 A High Efficiency Step-Down LED Driver IC

Package Information

Data Sheet 23 Revision 3.2, 2014-07-09

7 Package Information

Figure 9 Package outline PG-DSO-8-27 (dimensions in mm) Figure 10 Recommended PCB Footprint for Reflow Soldering (dimensions in mm) Figure 11 Tape Loading (dimensions in mm) PG-DSO-8-27-PO V01 8x0.41±0.09 2) M0.2 DC A-B 1.27 C Stand Off -0.10.1 (1.45) 1.7 MAX. 0.08 Seating Plane C A B 3) JEDEC reference MS-012 variation BA 1) Does not include plastic or metal protrusion of 0.15 max. per side 2) Dambar protrusion shall be maximum 0.1 mm total in excess of lead width Bottom View ±0.23 ±0.22.65 0.2±0.2 D 6 M D 8x 0.64±0.25 3.9±0.11) 0.1 0.35 x 45˚ CD2 x +0.06 0.19 8˚ MAX. Index Marking PG-DSO-8-27-FP V01 1.27 5.69 0.65 1.31 2.65 6.4 5.2 0.3 ±0.312 2.1 1.75 PG-DSO-8-27-TP V05 Pin 1 marking

Published by Infineon Technologies AG www.infineon.com