® SP6690 Micro Power Boost Regulator Series White LED Driver FEATURES ■ Miniature Package: 8 Pin DFN, 5 Pin TSOT NC 1 8 NC or 5 Pin SOT-23 SP6690 7 SHDN FB 2 ■ High Output Voltage: Up to 30V 6 VIN NC 3 8 Pin DFN ■ Optimized for Single Supply, 2.7V - 4.2V Applications 5 GND SW 4 ■ Operated Down to 1V ■ High Efficiency: Greater Than 75% Now Available in Lead Free Packaging ■ Low Quiescent Current: 20µA ■ Ultra Low Shutdown Current: 10nA ■ Single Battery Cell Operation APPLICATIONS ■ Programmable Output Voltage ■ White LED Driver ■ High Voltage Bias ■ 1Ω switch (250mV at 250mA) ■ Digital Cameras ■ Cell Phone ■ Battery Backup ■ Handheld Computers DESCRIPTION The SP6690 is a micro power boost regulator that is specifically designed for powering series configuration white LED. The part utilizes fixed off time architecture and consumes only 10nA quiescent current in shutdown. Low voltage operation, down to 1V, fully utilizes maximal battery life. The SP6690 is offered in a 8 pin DFN, 5 pin TSOT or 5 pin SOT-23 package and enables the construction of a complete regulator occupying < 0.2 in2 board space. TYPICAL APPLICATION CIRCUIT 10µH L1 2.7V to 4.2V D1 SW VIN ® C2 SP6690 SHDN 4.7µF Date: 05/25/04 2.2 µF FB GND Rb C1 SP6690 Micro Power Boost Regualtor, Series White LED Driver 1 © Copyright 2004 Sipex Corporation ABSOLUTE MAXIMUM RATINGS VIN ....................................................................... 15V SW Voltage .............................................. -0.4 to 34V FB Voltage ......................................................... 2.5V All other pins ................................... -0.3 to VIN + 0.3V Current into FB ................................................. ±1mA TJ Max ............................................................. 125°C Operating Temperature Range ............ -40°C to 85°C Peak Output Current < 10us SW .................... 500mA Storage Temperature ...................... -65°C to +150°C Power Dissipation. ......................................... 200mW Lead Temperature (Soldering, 10 sec) ............ 300°C ESD Rating ................................................. 2kV HBM These are stress ratings only and functional operation of the device at these ratings or any other above those indicated in the operation sections of the specifications below is not implied. Exposure to absolute maximum rating conditions for extended periods of time may affect reliability. ELECTRICAL CHARACTERISTICS Specifications are at TA=25°C, VIN =3.3, VSHDN =VIN, ♦ denotes the specifications which apply over the full operating temperature range, unless otherwise specified. PARAMETER SYMBOL MIN Input Voltage VIN 1.0 Supply Current IQ Reference Voltage FB Hysteresis VFB Input Bias Current VFB 1.17 TYP MAX UNITS 13.5 V 20 30 µA 0.01 1 µA 1.22 1.27 V HYST 8 IFB 15 80 nA 0.3 CONDITIONS ♦ ♦ ♦ No Switching ♦ VFB = 1.22V SHDN = 0V (off) mV Line Regulation ∆Vo/∆VI 0.1 %/V 1.2 ≤ VIN ≤ 13.5V Switch Off Time TOFF 250 nS VFB > 1V 1200 nS VFB < 0.3V Switch Saturation Voltage VCESAT Switch Current Limit ILIM SHDN Bias Current ISHDN SHDN High Threshold (on) VIH SHDN Low Threshold (off) VIL Switch Leakage Current Date: 05/25/04 ISWLK 250 170 350 mV 350 450 mA 5 12 µA 0.25 V 5 µA 0.9 ♦ ♦ ♦ ISW = 250mA ♦ Switch Off, VSW = 5V VSHDN = 3.3V V 0.01 SP6690 Micro Power Boost Regualtor, Series White LED Driver 2 © Copyright 2004 Sipex Corporation PIN DESCRIPTION PIN NUMBER PIN NAME 1 SW 2 GND 3 FB 4 SHDN 5 VIN 5 PIN SOT-23 DESCRIPTION Switch input to the internal power switch. Ground Feedback Shutdown. Pull high (on) to enable. Pull low (off) for shutdown. Input Voltage. Bypass this pin with a capacitor as close to the device as possible. PIN NUMBER PIN NAME 1 NC No connect. 2 FB Feedback. 3 NC No connect. 3 SW Switch input to the internal power switch 5 GND 6 VIN 7 SHDN 8 NC Date: 05/25/04 8 PIN DFN DESCRIPTION Ground Input Voltage. Bypass this pin with a capacitor as close to the device as possible. Shutdown. Pull high (on) to enable. Pull low (off) for shutdown. No connect. SP6690 Micro Power Boost Regualtor, Series White LED Driver 3 © Copyright 2004 Sipex Corporation FUNCTIONAL DIAGRAM SW VIN 5 R1 R2 X1 DISABLE + Q1 FB 1 POWER TRANSISTOR SET Q2 250ns ONE-SHOT 3 CLEAR R3 X2 DRIVER + - R4 52.5mV 0.15 GND SHDN 4 Shutdown Logic 2 THEORY OF OPERATION General Overview: At the end of the 250ns time period, driver transistor is again allowed to turn on which ramps the current back up to the 350mA level. Comparator X2 clears the latch, it’s output turns off the driver transistor, and this allows delivery of L1’s stored kinetic energy to C2. This switching action continues until the output capacitor voltage is charged to the point where FB is at band gap (1.22V). When this condition is reached, X1 turns off the internal circuitry and the cycle repeats. The SP6690 contains circuitry to provide protection during start-up and while in short-circuit conditions. When FB pin voltage is less than approximately 300mV, the switch off time is increased to about 1.2uS and the current limit is reduced to about 70% of its normal value. While in this mode, the average inductor current is reduced and helps minimize power dissipation in the SP6690, the external inductor and diode. Operation can be best understood by referring to the functional diagram above and the typical application circuit on the front page. Q1 and Q2 along with R3 and R4 form a band gap reference. The input to this circuit completes a feedback path from the high voltage output through a voltage divider, and is used as the regulation control input. When the voltage at the FB pin is slightly above 1.22V, comparator X1 disables most of the internal circuitry. Current is then provided by capacitor C2, which slowly discharges until the voltage at the FB pin drops below the lower hysteresis point of X1, about 6mV. X1 then enables the internal circuitry, turns on chip power, and the current in the inductor begins to ramp up. When the current through the driver transistor reaches about 350mA, comparator X2 clears the latch, which turns off the driver transistor for a preset 250nS. At the instant of shutoff, inductor current is diverted to the output through diode D1. During this 250nS time limit, inductor current decreases while its energy charges C2. Date: 05/25/04 SP6690 Micro Power Boost Regualtor, Series White LED Driver 4 © Copyright 2004 Sipex Corporation PERFORMANCE CHARACTERISTICS Refer to the typical application circuit, TAMB = 25°C, unless otherwise specified. Vout = 12V Load Regulation Vout = 12V Efficiency 13.0 90 Vin = 5.0V Vin = 4.2V Vin = 3.3V 12.5 Vin = 2.7V Vout (V) Efficiency (%) 80 70 Vin = 5.0V 12.0 Vin = 4.2V 60 Vin = 3.3V 11.5 Vin = 2.7V 50 0 20 40 60 80 100 120 140 11.0 0 Iout (mA) Figure 1. 12V Output Efficiency 20 40 60 80 Iout (mA) 100 120 140 Figure 2. 12V Output Load Regulation Vout = 15V Efficiency Vout = 15V Load Regulation 90 16.0 Vin = 4.2V 80 15.5 Vin = 3.3V Vin = 2.7V Vout (V) Efficiency (%) Vin = 5.0V 70 Vin = 5.0V Vin = 4.2V 60 15.0 14.5 Vin = 3.3V Vin = 2.7V 50 14.0 0 10 20 30 40 50 60 70 80 90 100 0 10 20 30 Iout (mA) 40 50 60 70 80 90 100 Iout (mA) Figure 3. 15V Output Efficiency Figure 4. 15V Output Load Regulation Vout = 18V Load Regulation Vout = 18V Efficiency 19.0 90 Vin = 5.0V Vout (V) Efficiency (%) Vin = 4.2V 18.5 80 70 Vin = 3.3V Vin = 2.7V 18.0 Vin = 5.0V 60 17.5 Vin = 4.2V Vin = 3.3V Vin = 2.7V 50 17.0 0 10 20 30 40 50 60 70 80 0 10 Iout (mA) 30 40 50 60 70 80 Iout (mA) Figure 5. 18V Output Efficiency Date: 05/25/04 20 Figure 6. 18V Output Load Regulation SP6690 Micro Power Boost Regualtor, Series White LED Driver 5 © Copyright 2004 Sipex Corporation PERFORMANCE CHARACTERISTICS: Continued Refer to the typical application circuit, TAMB = 25°C, unless otherwise specified. Vout = 21V Efficiency Vout = 21V Load Regulation 90 21.5 Vin = 5.0V Vin = 4.2V 21.0 Vout (V) Efficiency (%) 80 70 Vin = 5.0V Vin = 3.3V Vin = 2.7V 20.5 Vin = 4.2V 60 20.0 Vin = 3.3V Vin = 2.7V 50 0 10 20 30 40 50 19.5 60 0 10 20 30 Iout (mA) Iout (mA) Figure 7. 21V Output Efficiency 50 60 Figure 8. 21V Output Load Regulation Vout = 24V Load Regulation Vout = 24V Efficiency 90 24.5 80 24.0 Vout (V) Efficiency (%) 40 70 Vin = 5.0V Vin = 5.0V Vin = 4.2V Vin = 3.3V Vin = 2.7V 23.5 Vin = 4.2V 60 Vin = 3.3V 23.0 Vin = 2.7V 50 0 5 10 15 20 25 30 35 22.5 40 0 5 10 Iout (mA) 15 20 25 30 35 40 Iout (mA) Figure 9. 24V Output Efficiency Figure 10. 24V Output Load Regulation Vout = 30V Load Regulation Vout = 30V Efficiency 90 Vin = 5.0V 30.5 Vin = 4.2V Vin = 3.3V 30.0 Vin = 2.7V 70 Vout (V) Efficiency (%) 80 Vin = 5.0V 60 Vin = 4.2V 29.0 Vin = 3.3V 50 29.5 Vin = 2.7V 40 28.5 0 5 10 15 20 25 30 0 5 Iout (mA) 15 20 25 30 Iout (mA) Figure 11. 30V Output Efficiency Date: 05/25/04 10 Figure 12. 30V Output Load Regulation SP6690 Micro Power Boost Regualtor, Series White LED Driver 6 © Copyright 2004 Sipex Corporation PERFORMANCE CHARACTERISTICS: Continued 25 10 20 8 Shutdown Pin Current (µA) Quiescent Current (uA) Refer to the typical application circuit, TAMB = 25°C, unless otherwise specified. 15 10 Tamb=-25C 5 Tamb=25C 6 4 2 Tamb=85C 0 0 1.2 1.8 2.4 3 3.6 4.2 4.8 5.4 1.2 1.8 2.4 Input Voltage (V) Figure 13. Quiescent Current IQ vs. VIN 4.2 4.8 5.4 Switch Saturation Voltage (mV) 400 500 Ipk Current Limit (mA) 3.6 Figure 14. Shutdown Pin Current vs. VIN 600 400 300 200 100 350 300 250 200 150 100 50 0 0 1.2 1.8 2.4 3 3.6 4.2 4.8 5.4 -30 -10 Input Voltage (V) 10 30 50 70 90 Temperature (°C) Figure 15. IPK Current Limit vs. VIN Figure 16. Switch Saturation Voltage VCESAT vs. Temperature (ISW = 350mA) 20 Average Output Current (mA) 1.25 1.24 Feedback Voltage (V) 3 Input Voltage (V) 1.23 1.22 1.21 1.20 16 12 8 4 0 -30 -10 10 30 50 70 90 0 20 Temperature (°C) Figure 17. Feedback Voltage vs. Temperature Date: 05/25/04 40 60 80 100 PWM Duty Cycle (%) Figure 18. Average IO vs. SHDN Duty Cycle (VIN=3.3V, Standard 4x20mA WLED Evaluation Board, PWM Frequency 100Hz) SP6690 Micro Power Boost Regualtor, Series White LED Driver 7 © Copyright 2004 Sipex Corporation PERFORMANCE CHARACTERISTICS: Continued Refer to the typical application circuit, TAMB = 25°C, unless otherwise specified. VIN VSW IL (0.5A/DIV) VOUT IIN (0.2A/DIV) VOUT (AC) Figure 19. Startup Waveform (VIN=3.3V, VOUT=15V, IOUT=20mA) Figure 20. Typical Switching Waveforms (VIN=3V, VOUT=15V, IOUT=20mA) IOUT (10mA/DIV) VOUT (AC) IL (0.5A/DIV) Figure 21. Load Step Transient (VIN=3V, VOUT=21V, 1∼15mA Load Step Date: 05/25/04 SP6690 Micro Power Boost Regualtor, Series White LED Driver 8 © Copyright 2004 Sipex Corporation APPLICATION INFORMAMTION Inductor Selection Capacitor Selection For SP6690, the internal switch will be turned off only after the inductor current reaches the typical dc current limit (ILIM=350mA). However, there is typically propagation delay of 200nS between the time when the current limit is reached and when the switch is actually turned off. During this 200nS delay, the peak inductor current will increase, exceeding the current limit by a small amount. The peak inductor current can be estimated by: Ceramic capacitors are recommended for their inherently low ESR, which will help produce low peak to peak output ripple, and reduce high frequency spikes. IPK = ILIM + VIN(MAX) For the typical application, 4.7µF input capacitor and 2.2µF output capacitor are sufficient. The input and output ripple could be further reduced by increasing the value of the input and output capacitors. Place all the capacitors as close to the SP6690 as possible for layout. For use as a voltage source, to reduce the output ripple, a small feedforward (47pF) across the top feedback resistor can be used to provide sufficient overdrive for the error comparator, thus reduce the output ripple. • 200nS L The larger the input voltage and the lower the inductor value, the greater the peak current. In selecting an inductor, the saturation current specified for the inductor needs to be greater than the SP6690 peak current to avoid saturating the inductor, which would result in a loss in efficiency and could damage the inductor. Refer to Table 2 for some suggested low ESR capacitors. Table 2. Suggested Low ESR Capacitor Choosing an inductor with low DCR decreases power losses and increase efficiency. Refer to Table 1 for some suggested low ESR inductors. Table 1. Suggested Low ESR inductor MANUF. PART NUMBER DCR (Ω) Current Rating (mA) MURATA 770-436-1300 LQH32CN100K11 (10µH) 0.3 450 TDK 847-803-6100 NLC453232T-100K (10µH) 0.55 500 PART NUMBER CAP SIZE /VOLTAGE /TYPE MURATA 770-436-1300 GRM32RR71E 225KC01B 2.2µF /25V 1210 /X5R MURATA 770-436-1300 GRM31CR61A 475KA01B 4.7µF /10V 1206 /X5R TDK 847-803-6100 C3225X7R1E 225M 2.2µF /25V 1210 /X7R TDK 847-803-6100 C3216X5R1A 475K 4.7µF /10V 1206 /X5R LED Current Program In the white LEDs application, the SP6690 is generally programmed as a current source. The bias resistor Rb, as shown in the typical application circuit is used to set the operating current of the white LED using the equation: Diode Selection A schottky diode with a low forward drop and fast switching speed is ideally used here to achieve high efficiency. In selecting a Schottky diode, the current rating of the schottky diode should be larger than the peak inductor current. Moreover, the reverse breakdown voltage of the schottky diode should be larger than the output voltage. Date: 05/25/04 MANUF. Rb = VFB IF where VFB is the feedback pin voltage (1.22V), IF is the operating current of the White LEDs. In order to achieve accurate LED current, 1% SP6690 Micro Power Boost Regualtor, Series White LED Driver 9 © Copyright 2004 Sipex Corporation APPLICATION INFORMAMTION: Continued precision resistors are recommended. Table 3 below shows the Rb selection for different white LED currents. For example, to set the operating current to be 20mA, Rb is selected as 60.4 Ω, as shown in the schematic. Table 4. Divider Resistor Selection Table 3. Bias Resistor Selection VOUT (V) R1 (Ω) R2 (Ω) 12 1M 113K 15 1M 88.7K 18 1M 73.2K 21 1M 61.9K 30 1M 42.2K IF (mA) Rb (Ω) 5 243 10 121 Brightness Control 12 102 15 80.6 20 60.4 Dimming control can be achieved by applying a PWM control signal to the SHDN pin. The brightness of the white LEDs is controlled by increasing and decreasing the duty cycle of The PWM signal. A 0% duty cycle corresponds to zero LED current and a 100% duty cycle corresponds to full load current. While the operating frequency range of the PWM control is from 60Hz to 700Hz, the recommended maximum brightness frequency range of the PWM signal is from 60Hz to 200Hz. A repetition rate of at least 60Hz is required to prevent flicker. The magnitude of the PWM signal should be higher than the minimum SHDN voltage high. Output Voltage Program The SP6690 can be programmed as either a voltage source or a current source. To program the SP6690 as voltage source, the SP6690 requires 2 feedback resistors R1 & R2 to control the output voltage. As shown in Figure 22. VIN D1 L1 VOUT Open Circuit Protection C2 R1 When any white LED inside the white LED module fails or the LED module is disconnected from the circuit, the output and the feedback control will be open, thus resulting in a high output voltage, which may cause the SW pin voltage to exceed it maximum rating. In this case, a zener diode can be used at the output to limit the voltage on the SW pin and protect the part. The zener voltage should be larger than the maximum forward voltage of the White LED module. C1 U1 5 VI N 4 1 SW SP6690 SHDN FB G ND 3 1.22V R2 2 Figure 22. Using SP6690 as Voltage Source The formula and table for the resistor selection are shown below: R 1 =( VOUT 1.22 Date: 05/25/04 - 1 ) • R2 SP6690 Micro Power Boost Regualtor, Series White LED Driver 10 © Copyright 2004 Sipex Corporation APPLICATION INFORMAMTION: Continued Layout Consideration Both the input capacitor and the output capacitor should be placed as close as possible to the IC. VIN DS R1 150Kohm C2 2.2uF C1 4.7uF U1 5 V IN 4 SHDN WLED MODULE 1 SW D1 SP6690 FB 3 0.7V 1.22V GND DIODE Rb 34.8ohm 2 method. Figure 23. Improve Efficiency with Diode in Feedback Loop To further improve the efficiency and reduce the effects of the ambient temperature on the diode D1 used in method 1, an op amp circuit can be used as shown in Figure 24. The gain of the op amp circuit can be calculated by: Power Efficiency For the typical application circuit, the output efficiency of the circuit is expressed by VOUT • IOUT Av = R 1 + R2 R1 VIN • IIN Where VIN , IIN, VOUT, IOUT are the input and output voltage and current respectively. If the voltage across the bias resistor is set to be 0.1V the current through R1 and R2 to be around 100µA, R1 and R2 can be selected as 1K and 11.2K respectively. LMV341 can be used because of its small supply current, offset voltage and minimum supply voltage. By using this method, the efficiency can be increased around While the white LED efficiency is expressed by η= Murata LQH32CN100K11 L1 10uH 0.45A MBR0530 This can reduce the copper trace resistance which directly effects the input and output ripples. The feedback resistor network should be kept close to the FB pin to minimize copper trace connections that can inject noise into the system. The ground connection for the feedback resistor network should connect directly to the GND pin or to an analog ground plane that is tied directly to the GND pin. The inductor and the schottky diode should be placed as close as possible to the switch pin to minimize the noise coupling to the other circuits, especially the feedback network. η= 2.7-4.2V (VOUT - 1.22) • IOUT VIN • IIN This equation indicates that the white LED efficiency will be much smaller than the output efficiency of the circuit when VOUT is not very large, compared to the feedback voltage (1.22V). Vbattery 2.7-4.2V Murata LQH32CN100K11 L1 10uH 0.45A DS MBR0530 Vbattery C1 4.7uF The other power is consumed by the bias resistor. To reduce this power loss, two circuits can be used, as shown in Figure 23 and Figure 24. In Figure 23, a general-purpose diode (for example, 1N4148) is used to bring the voltage across the bias resistor to be around 0.7V. R1 is used to create a loop that provides around 100µA operating current for the diode. 3% efficiency improvement can be achieved by using this 5 V 4 U1 IN FB GND 2 WLED MODULE 6 5 SP6690 SHDN C2 2.2uF 1 SW 3 4 OUT 1.22V + 1 0.1V LMV341 2 - 3 R2 Rb 11.2K R1 1K 5.1Ω 7%. Figure 24. Improve Efficiency with Op Amp in Feedback Loop Date: 05/25/04 SP6690 Micro Power Boost Regualtor, Series White LED Driver 11 © Copyright 2004 Sipex Corporation PACKAGE: PINOUTS VIN SHDN 5 4 VIN 5 SP6690 SP6690 5 Pin TSOT Date: 05/25/04 SHDN 4 5 Pin SOT-23 1 2 3 SW GND FB 1 SW NC 1 FB 2 SP6690 7 SHDN NC 3 8 Pin DFN 6 VIN SW 4 2 GND 3 FB 8 NC 5 GND SP6690 Micro Power Boost Regualtor, Series White LED Driver 12 © Copyright 2004 Sipex Corporation PACKAGE: 5 PIN TSOT D e1 N N/2 +1 H E/2 E1/2 B E E1 B INDEX AREA (D/2 X E1/2) 1 2 SEE VIEW C N/2 e Ø1 Detais of the pin1 identifier are optional, but must be located within the zone indicated. b Gauge Plane 5 PIN TSOT JEDEC MO-193 (AB) Variation Dimensions in (mm) MIN - - 1.10 A1 0 - 0.10 A2 0.70 0.90 0.30 - 0.50 b1 0.30 0.40 0.45 c 0.08 - 0.20 c1 0.08 0.13 0.16 D 2.90 BSC e 0.95 BSC e1 1.90 BSC E 2.80 BSC L1 Ø1 VIEW C A2 A SEATING PLANE C A1 SIDE VIEW WITH PLATING b b1 c1 c 0.60 0.60 REF L2 Ø 0.45 L2 ø L1 1.60 BSC 0.30 L 1.00 b E1 4X ø1 NOM MAX A L Seating Plane 0.25 BSC 0º 4º BASE METAL 4º 8º 10º 12º 5 PIN TSOT Date: 05/25/04 SP6690 Micro Power Boost Regualtor, Series White LED Driver 13 © Copyright 2004 Sipex Corporation PACKAGE: 5 PIN SOT-23 D e1 N N/2 +1 H E/2 E1/2 B E E1 B 1 2 SEE VIEW C N/2 e Ø1 b Gauge Plane 5 PIN SOT-23 JEDEC MO-178 (AA) Variation Dimensions in (mm) Seating Plane 4X Ø1 L L1 MIN NOM MAX A - - 1.45 A1 0 - 0.15 A2 0.90 b 0.30 - 0.50 c 0.08 - 0.22 1.15 VIEW C 1.30 A2 A A1 D SIDE VIEW 2.90 BSC e 0.95 BSC e1 1.90 BSC E 2.80 BSC E1 1.60 BSC L Ø L2 0.30 0.45 L1 0.60 REF L2 0.25 BSC b WITH PLATING 0.60 Ø 0º 4º 8º Ø1 5º 10º 15º c BASE METAL 5 PIN SOT-23 Date: 05/25/04 SP6690 Micro Power Boost Regualtor, Series White LED Driver 14 © Copyright 2004 Sipex Corporation PACKAGE: 8 PIN DFN Top View Bottom View D D2 D/2 1 2 E/2 E E2 K L Pin 1 identifier to be located within this shaded area. Terminal #1 Index Area (D/2 * E/2) 2x3 8 Pin DFN JEDEC mo-229C (VCED-2) Variation Side View A b e A1 A3 Dimensions in (mm) Symbol MIN NOM MAX A 0.80 0.90 1.00 A1 0 0.02 0.05 A3 - 0.20 - 0.18 0.25 0.30 b D D2 e 2.00 BSC 1.50 - E E2 - 1.75 0.50 - 3.00 BSC 1.60 - 1.90 0.50 K 0.20 - L 0.30 0.40 2x3 8 Pin DFN Date: 05/25/04 SP6690 Micro Power Boost Regualtor, Series White LED Driver 15 © Copyright 2004 Sipex Corporation ORDERING INFORMATION Part Number Topmark Temperature Range Package Type SP6690EK1 ....................... P3WW ...................... -40˚C to +85˚C ............................. 5 Pin TSOT SP6690EK1/TR .................. P3WW ...................... -40˚C to +85˚C ............................ 5 Pin TSOT SP6690EK ......................... C3WW ...................... -40˚C to +85˚C .......................... 5 Pin SOT-23 SP6690EK/TR .................... C3WW ...................... -40˚C to +85˚C ......................... 5 Pin SOT-23 SP6690ER ........................ 6690ES ..................... -40˚C to +85˚C ............................... 8 Pin DFN SP6690ER/TR .................. 6690ES ..................... -40˚C to +85˚C .............................. 8 Pin DFN Available in lead free packaging. To order add "-L" suffix to part number. Example: SP6690ER/TR = standard; SP6690ER-L/TR = lead free /TR = Tape and Reel Pack quantity is 2500 for TSOT or SOT-23 and 3,000 for DFN. Corporation ANALOG EXCELLENCE Sipex Corporation Headquarters and Sales Office 233 South Hillview Drive Milpitas, CA 95035 TEL: (408) 934-7500 FAX: (408) 935-7600 Sipex Corporation reserves the right to make changes to any products described herein. Sipex does not assume any liability arising out of the application or use of any product or circuit described herein; neither does it convey any license under its patent rights nor the rights of others. Date: 05/25/04 SP6690 Micro Power Boost Regualtor, Series White LED Driver 16 © Copyright 2004 Sipex Corporation