ZXLD1362_12 DIODES | Alldatasheet

Document overview

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Technical content

Features

  • Simple low parts count
  • Single pin on/off and brightness control using DC voltage or PWM
  • High efficiency (up to 95%)
  • Wide input voltage range: 6V to 60V
  • Up to 1MHz switching frequency
  • Qualified to AEC-Q100 Grade 1
  • Typical 2% output current accuracy
  • Thermally enhanced TSOT25: θJA 82°C/W
  • Available in Green molding ƒ Totally Lead-Free & Fully RoHS Compliant (Notes 1 & 2) ƒ Halogen and Antimony Free. “Green” Device (Note 3) Notes: 1. No purposely added lead. Fully EU Directiv e 2002/95/EC (RoHS) & 2011/65/EU (RoHS 2) compliant. 2. See http://www.diodes.com for more in formation about Diodes Incorporated’s definitions of Halogen- and Antimony-free, "Green" and Lead-free. 3. Halogen- and Antimony-free "Green” products are defined as those which contain <900ppm bromine, <900ppm chlorine (<1500ppm total Br + Cl) and <1000ppm antimony compounds. Typical Application Circuit SETVIN LX GND ADJ ZXLD1362 RS 0.1Ω 68µH 4.7µF GND VIN 24V 100nF
  • Leave floating for normal operation.(V ADJ = VREF = 1.25V giving nominal average output current o I OUTnom = 0.1/RS)
  • Drive to voltage below 0.2V to turn off output current
  • Drive with DC voltage (0.3V < V ADJ < 2.5V) to adjust output current from 25% to 200% of IOUTnom
  • Connect a capacitor from this pin to ground to increase soft-start time.
  • Soft-start time increases approximately 200µs/nF. ISENSE 4 Connect resistor RS from this pin to VIN to define nominal average output current IOUTnom = 0.1/RS (Note: RSMIN = 0.1Ω with ADJ pin open circuit) VIN 5 Input voltage (6V to 60V). Decouple to ground with 4.7µ F of higher X7R ceramic capacitor close to device. Block Diagram Voltage regulator Low voltage detector LXISENSEVIN RS 54 1 0.2V 1.35V 20k 50k 1.25V ADJ GND 4.7µF VIN MNGND GND

Figure 1. Block Diagram

Document number: DS33472 Rev. 5 - 2 3 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Absolute Maximum Ratings (Note 4) Symbol Parameter Rating Unit VIN Input Voltage -0.3 to +65 V VSENSE I SENSE Voltage (Note 5) +0.3 to -5 V VLX LX Output Voltage -0.3 to +65 V VADJ Adjust Pin Input Voltage -0.3 to +6 V ILX Switch Output Current 1.25 A PTOT Power Dissipation (Refer to Package thermal de-rating curve on page 16) 1 W TST Storage Temperature -55 to +150 °C TJ MAX Junction Temperature 150 °C Note: 4 All voltages unless otherwise stated are measured with respect to GND. 5. V SENSE is measured with respect to VIN. Caution: Stresses greater than the 'Absolute Maximum Ratings' sp ecified above, may cause permanent damage to the device. These are stress ratings only; functional operation of the devic e at conditions between maximum recommended operating conditions and absolute maximum ratings is not implied. Device reliability may be affected by exposure to absolute maximum rating conditions for extended periods of time. ESD Susceptibility Rating Unit Human Body Model 500 V Machine Model 75 V Caution: Semiconductor devices are ESD sensitive and may be damaged by exposure to ESD events. Suitable ESD precautions should be taken when handling and transporting these devices. The human body model is a 100pF capacitor discharge through a 1.5k Ω resistor pin. The machine model is a 200pF capacitor discharged directly into each pin. Thermal Resistance Symbol Parameter Rating Unit θJA Junction to Ambient 82 °C/W ΨJB Junction to Board 33 °C/W Recommended Operating Conditions Symbol Parameter Min Max Units VIN Input Voltage Range (Note 6) 6 60 V ILX Maximum recommended continuous/RMS switch current 1 A VADJ External control voltage range on ADJ pin for DC brightness control (Note 7) 0.3 2.5 V VADJoff DC voltage on ADJ pin to ensure devices is off 0.25 V tONMIN Minimum switch on-time 800 ns fLXmax Recommended maximum operating frequency (Note 8) 625 kHz DLX Duty cycle range 0.01 0.99 TA Ambient operating temperature range -40 +125 °C Notes: 6. V IN > 16V to fully enhance output transistor. Otherwise out current must be derated - see graphs. Operation at low supply may cause excessive heating due to increased on-resistance. Tested at 7V guaranteed for 6V by design. 7. 100% brightness corresponds to V ADJ = VADJ(nom) = VREF. Driving the ADJ pin above VREF will increase the VSENSE threshold and output current proportionally. 8. ZXLD1362 will operate at higher frequencies but accuracy will be affected due to propagation delays.

Document number: DS33472 Rev. 5 - 2 4 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Electrical Characteristics (Test conditions: VIN = 24V, TA = +25°C, unless otherwise specified.) Symbol Parameter Condition Min Typ Max Unit VSU Internal regulator start-up threshold 4.85 V VSD Internal regulator shutdown threshold 4.75 V IINQoff Quiescent supply current with output off ADJ pin grounded 65 90 µA IINQon Quiescent supply current with output switching (Note 9) ADJ pin floating, L = 68µH,

3 LEDs, f = 260kHz

1.8 mA VSENSE Mean current sense threshold voltage (Defines LED current setting accuracy) Measured on I SENSE pin with respect to VIN VADJ = 1.25V 95 100 105 mV VSENSEHYS Sense threshold hysteresis ±10 % ISENSE I SENSE pin input current VSENSE = VIN -0.1 4 10 µA VREF Internal reference voltage Measured on ADJ pin with pin floating 1.25 V ΔVREF/ΔT Temperature coefficient of V REF 50 ppm/°C VADJ External control voltage range on ADJ pin for DC brightness control (Note 7) 0.3 2.5 V VADJoff DC voltage on ADJ pin to switch device from active (on) state to quiescent (off) state VADJ falling 0.15 0.2 0.27 V VADJon DC voltage on ADJ pin to switch device from quiescent (off) state to active (on) state VADJ rising 0.2 0.25 0.3 V RADJ Resistance between ADJ pin and V REF 0 < VADJ < VREF VADJ > VREF +100mV 10.4 14.2 kΩ ILXmean Continuous LX switch current 1 A RLX LX switch ‘On’ resistance @ ILX = 1A 0.5 1.0 Ω ILX(leak) LX switch leakage current 5 µA DPWM(LF) Duty cycle range of PWM signal applied to ADJ pin during low frequency PWM dimming mode PWM frequency <300Hz PWM amplitude = VREF Measured on ADJ pin 0.001 1 Brightness control range 1000:1 DCADJ DC Brightness control range Note 10 5:1 tSS Soft start time Time taken for output current to reach 90% of final value after voltage on ADJ pin has risen above 0.3V. Requires external capacitor 22nF. See graphs for more details 2 ms fLX Operating frequency (See graphs for more details) ADJ pin floating L = 68µH (0.1V) I OUT = 1A @ VLED = 3.6V Driving 3 LEDs 300 kHz tONmin Minimum switch ‘ON’ time LX switch ‘ON’ 130 ns tOFFmin Minimum switch ‘OFF’ time LX switch ‘OFF’ 70 ns Notes: 9. Static current of device is approximately 700µA, see Graph, Page 16.

The device, in conjunction with the coil (L1) and current sense resistor (RS), forms a self-oscillating continuous-mode buck converter. Figure 2. Theoretical Operating Waveforms ADJ) appears directly at the (+) input of the comparator. by VIN and L1 to produce a voltage ramp (V SENSE) across R S.

Document number: DS33472 Rev. 5 - 2 6 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Device Description Switching Thresholds With V ADJ = V REF, the ratios of R1, R2 and R3 define an average V SENSE switching threshold of 100mV (measured on the ISENSE pin with respect to V IN). The average output current IOUTnom is then defined by this voltage and RS according to: IOUTnom = 100mV/RS Nominal ripple current is ±10mV/RS Adjusting output current The device contains a low pass filter between the ADJ pin and the threshold comparator and an internal current limiting resistor (50k Ω nom) between ADJ and the internal reference voltage. This allows the ADJ pin to be overdriven with either DC or pulse signals to change the V SENSE switching threshold and adjust the output current. Details of the different modes of adjusting output current are given in the applications section. Output Shutdown The output of the low pass filter drives the shutdown circuit. When the input voltage to this ci rcuit falls below the threshold (0.2V nom.), the internal regulator and the output switch are turned off. The voltage reference remains powered during shutdown to provide the bias cu rrent for the shutdown circuit. Quiescent supply current during shutdown is nominally 60 μA and switch leakage is below 5μA. Actual Operating Waveforms VIN = 15V, RS = 0.1V, L = 100µH Normal operation. Output Current (Ch1) and LX Voltage (Ch2) VIN = 30V, RS = 0.1V, L = 100µH Normal Operation. Output Current (Ch1) and LX Voltage (Ch2) VIN = 60V, RS = 0.1V, L = 100µH Normal Operation. Output Current (Ch1) and LX Voltage (Ch2)

Document number: DS33472 Rev. 5 - 2 7 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics 0 7040 50 6010 20 30 ZXLD1362 Output Current L = 68µH Supply Voltage (V)

15 LED13 LED11 LE D9 LED7 LED5 LED3 LED1 LED

Output Current (mA) 0 7040 50 6010 20 30 ZXLD1362 Output Current L = 68µH Supply Voltage (V) 10%Output Current Deviation -10% -8% -6% -4% -2%

15 LED13 LED11 LED9 LED7 LED5 LED3 LED1 LED

100%Ef ficiency (%) 50% 60% 70% 90% 80% 0 7040 50 6010 20 30 Supply Voltage (V) L = 68µH

Document number: DS33472 Rev. 5 - 2 8 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) ZXLD1362 Switching Frequenc y L = 68µH 500 Switching Frequency (kHz) 100 200 400 300 Supply Voltage (V) Supply Voltage (V) ZXLD1362 Duty Cycle L = 68µH 100 Duty Cycle (%)

Document number: DS33472 Rev. 5 - 2 9 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) 1000 11 00 1010 1090 1020 1080 1030 1070 1040 1060 1050 Output Current (mA) Supply Voltage (V) ZXLD1362 Output Current L = 100µH ZXLD1362 Output Current L = 100µH Supply Voltage (V) -10% 10% -8% -6% -4% -2% Output Current Deviation Supply Voltage (V) ZXLD1362 Efficienc y L = 100µH 100%Ef ficiency (%) 50% 60% 70% 90% 80%

Document number: DS33472 Rev. 5 - 2 10 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) ZXLD1362 Switching Frequency L = 100µH 500 Switching Frequency (kHz) 100 200 400 300 Supply Voltage (V) ZXLD1362 Switching Frequenc y L = 100µH Supply Voltage (V) 100 Duty Cycle (%)

Document number: DS33472 Rev. 5 - 2 11 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) ZXLD1362 Output Current L = 150µH 1000 11 00 1010 1090 1020 1080 1030 1070 1040 1060 1050 Output Current (mA) Supply Voltage (V) Supply Voltage (V) ZXLD1362 Output Current L = 150µH -10% 10% -8% -6% -4% -2% Output Current Deviation Supply Voltage (V) ZXLD1362 Efficiency L = 150µH 100%Ef ficiency (%) 50% 60% 70% 90% 80%

Document number: DS33472 Rev. 5 - 2 12 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) ZXLD1362 Switching Frequenc y L = 150µH Supply Voltage (V) 500 Switching Frequency (kHz) 100 200 400 300 ZXLD1362 Duty Cycle L = 150µH Supply Voltage (V) 100 Duty Cycle (%)

Document number: DS33472 Rev. 5 - 2 13 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) ZXLD1362 Output Current L = 220µH Supply Voltage (V) 1000 11 00 1010 1090 1020 1080 1030 1070 1040 1060 1050 Output Current (mA) ZXLD1362 Output Current L = 220µH -10% 10% -8% -6% -4% -2% Output Current Deviation Supply Voltage (V) Supply Voltage (V) 100%Ef ficiency (%) 50% 60% 70% 90% 80% ZXLD1362 Efficienc y L = 220µH

Document number: DS33472 Rev. 5 - 2 14 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) ZXLD1362 Switching Frequency L = 2200µH Supply Voltage (V) 500 Switching Frequency (kHz) 100 200 400 300 ZXLD1362 Duty Cycle L = 2200µH Supply Voltage (V) 100 Duty Cycle (%)

Document number: DS33472 Rev. 5 - 2 15 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) LED Current vs Vadj 200 400 600 800 1000 1200 0123 ADJ Pin Voltage (V) LED Current (mA) R=100mΩ R=150mΩ R=330mΩ Vref 1.238 1.2385 1.239 1.2395 1.24 1.2405 1.241 1.2415 1.242 1.2425 1.243 0 1 02 03 04 05 06 07 0 ADJ pin voltage (V) Supply current 100 200 300 400 500 600 700 800 0 1 02 03 04 05 06 07 0 Supply voltage (V) Supply voltage (V) Supply voltage (V) Supply current (mA) Shutdow n current 0 1 02 03 0 4 05 06 07 0 Shutdown current (mA)

Document number: DS33472 Rev. 5 - 2 16 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Typical Characteristics (cont.) Lx on-resistance vs die temperature 0.2 0.4 0.6 0.8 1.2 1.4 1.6 -50 0 50 100 150 200 Die Temperature (C) On-resistance (Oh ms) 12V 20V 30V Lx on-resistance vs supply voltage 0.2 0.4 0.6 0.8 1.2 1.4 1.6 0 5 10 15 20 25 30 35 Supply Voltage (V) On-resistance (Ohms) -40C 20C 150C Vadj vs Temperature 1.244 1.246 1.248 1.25 1.252 1.254 1.256 1.258 1.26 1.262 -50 0 50 100 150 200 Temperature (C) Vadj (V) 12V 20V 30V

Document number: DS33472 Rev. 5 - 2 17 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated

Application Information

Setting Nominal Average Output Current with External Resistor RS The nominal average output current in the LED(s) is determined by the value of the external current sense resistor (R S) connected between VIN and ISENSE and is given by: IOUTnom = 0.1/RS [for RS > 0.1Ω] The table below gives values of nominal average output current for several preferred values of current setting resistor (R S) in the typical application circuit shown on page 1: RS (Ω) Nominal average output current (mA) 0.1 1000 0.13 760 0.15 667 The above values assume that the ADJ pin is floating and at a nominal voltage of V REF (= 1.25V). Note that R S = 0.1 Ω is the minimum allowed value of sense resistor under these conditions to maintain switch current below the specified maximum value. It is possible to use different values of R S if the ADJ pin is driven from an external voltage. (See next section). Output Current Adjustment by External DC Control Voltage The ADJ pin can be driven by an external dc voltage (V ADJ), as shown, to adjust the output current to a value above or below the nominal average value defined by RS. The nominal average output current in this case is given by: IOUTdc = (VADJ /1.25) x (100mV/RS) [for 0.3< VADJ <2.5V] Note that 100% brightness setting corresponds to V ADJ = V REF. When driving the ADJ pin above 1.25V, R S must be increased in proportion to prevent IOUTdc exceeding 1A maximum. The input impedance of the ADJ pin is 50k Ω ±25% for voltages below VREF and 14.2kΩ ±25% for voltages above VREF +100mV. Output Current Adjustment by PWM Control Directly driving ADJ input A Pulse Width Modulated (PWM) signal with duty cycle D PWM can be applied to the ADJ pin, as shown below, to adjust the output current to a value above or below the nominal average value set by resistor RS: Driving the ADJ Input via Open Collector Transistor The recommended method of driving the ADJ pin and controlling the amplitude of the PWM waveform is to use a small NPN switching transistor as shown below: This scheme uses the 50k resistor between the ADJ pin and the internal voltage reference as a pull-up resistor for the external transistor. Driving the ADJ Input from a Microcontroller Another possibility is to drive the device from the open drain output of a microcontroller. The diagram below shows one method of doing this: If the NMOS transistor within the microcontroller has high Gate / Drain capacitance, this arrangem ent can inject a negative spike into ADJ input of the 1362 and cause erratic operation but the addition of a Schottky clamp diode (cathode to ADJ) to ground and inclusion of a series resistor (3.3k) will prevent this. See the section on PWM dimming for more det ails of the various modes of control using high frequency and low frequency PWM signals. GND ZXLD1362ADJ GND DC PWM GND VADJ GND ZXLD1362ADJ PWM GND ZXLD1362ADJ GND GND ZXLD1362ADJ MCU 3.3k

Document number: DS33472 Rev. 5 - 2 18 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Application Information (cont.) Shutdown Mode Taking the ADJ pin to a voltage below 0.2V for more than approximately 100µs will turn off the output and supply current to a low standby level of 20µA nominal. Note that the ADJ pin is not a logic input. Taking the ADJ pin to a voltage above V REF will increase output current above the 100% nominal average value. (See page 18 graphs for details). Soft-Start An external capacitor from the ADJ pin to ground will provide a soft-start delay, by increasing the time taken for the voltage on this pin to rise to the turn-on threshold and by slowing down the rate of rise of the control voltage at the input of the comparator. Adding capacitance increases th is delay by approximately 200µs/nF. The graph to the left shows the variation of soft-start time for different values of capacitor. 40 6002 0 8 0 1 0 0 1 2 0 CAPACITANCE (nF) Soft Start Time vs. Capacitance from ADJ Pin to Ground SOFT START TIME (ms) Actual Operating Waveforms [V IN = 24V, R S = 0.1 Ω, L = 68µH, 22nF on ADJ] Soft-start operation. Output current (Ch2) and LX voltage (Ch1) VIN Capacitor Selection A low ESR capacitor should be used for input decoupling, as the ESR of this capacitor appears in series with the supply source impedance and lowers overa ll efficiency. This capacitor has to supply the relatively high peak current to the coil and smooth the current ripple on the input supply. To avoid transients into the IC, the size of the input capacitor will depend on the VIN voltage: V IN = 6 to 40V CIN = 2.2μF V IN = 40 to 50V CIN = 4.7μF VIN = 50 to 60V CIN = 10μF When the input voltage is close to the output voltage the input current increases which puts more demand on the input capacitor. The minimum value of 2.2 μF may need to be increased to 4.7 μF; higher values will improve performance at lower input voltages, especially when the source impedance is high. The input capacitor should be placed as close as possible to the IC. For maximum stability over temperature and voltage, capacitors with X7R, X5R, or better dielectric is recommended. Capacitors with Y5V dielectric are not suitable for decoupling in this application and should NOT be used. If higher voltages are used and the C IN is 10μF. This can be an electrolytic capacitor provide a suitable 1µF ceramic capacitor is also used and positioned as close the V IN of the IC as possible. A suitable capacitor would be NACEW100M1006.3x8TR13F. The following web sites are useful when finding alternatives: www.murata.com www.niccomp.com www.kemet.com

delays, which result in increased ripple and lower efficiency. the required mean output current. be useful in finding suitable components. over the supply voltage and load current range. Figure 3. ZXLD1362 Minimum Recommended Inductor

Document number: DS33472 Rev. 5 - 2 20 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Application Information (cont.) Diode Selection For maximum efficiency and performance, the rectifier (D1) should be a fast low capacitanc e Schottky diode* with low reverse leakage at the maximum operating voltage and temperature. They also provide better efficiency than silicon diodes, due to a combination of lower forward voltage and reduced recovery time. It is important to select parts with a peak current rating above the peak coil current and a continuous current rating higher than the maximum output load current. It is very important to consider the reverse leakage of the diode when operating above +85°C. Excess leakage will increase the power dissipation in the device and if close to the load may create a thermal runaway condition. The higher forward voltage and overshoot due to reverse recovery time in silicon diodes will increase the peak voltage on the LX output. If a silicon diode is used, care should be taken to ensure that the total voltage appearing on the LX pin including supply ripple, does not exceed the specified maximum value. *A suitable Schottky diode would be 30BQ100PBF (IR). Reducing Output Ripple Peak to peak ripple current in the LED(s) can be reduced, if required, by shunting a capacitor Cled across the LED(s) as shown below: VIN VIN ISENSE LX ZXLD1362 Rs CledLED A value of 1 μF will reduce the supply ripple current by a factor three (approx.). Proportionally lower ripple can be achieved with higher capacitor values. Note that the capacitor will not affect operating frequency or efficiency, but it will increase start-up delay, by reducing the rate of rise of LED voltage. By adding this capacitor the current waveform through the LED(s) changes from a triangular ramp to a more sinusoidal version without altering the mean current value. Operation at Low Supply Voltage Below the under-voltage lockout threshold (VSD) the drive to the output transistor is turned off to prevent device operation with excessive on-resistance of the output transistor. The output transistor is not full enhanced until the supply voltage exceeds approximately 17V. At supply voltages between V SD and 17V care must be taken to avoid excessive power dissipation due to the on-resistance. If the supply voltage is always less than 30V continuous an alternative device is available, the ZXLD1360 or the AL8805. Note that when driving loads of two or more LEDs, the forward drop will normally be sufficient to prevent the device from switching below approximately 6V. This will minimize the risk of damage to the device.

Document number: DS33472 Rev. 5 - 2 21 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated Application Information (cont.) Thermal Considerations When operating the device at high ambient temperatures, or when driving maximum load current, care must be taken to avoid exceeding the package pow er dissipation limits. The graph below gives details for power derating. This assumes the device to be mounted on a 25mm PCB with 1oz copper standing in still air. -10 10-50 -30 30 90 110 AMBIENT TEMPERATURE (°C) Maximum Power Dissipation 130 15050 70 1100 1000 900 800 500 200 100 700 600 POWER (mW) 400 300 Note that the device power dissipation will most often be a maximum at minimum supply voltage. It will also increase if the efficiency of the circuit is low. This may result from the use of unsuitable coils, or excessive parasitic output capacitance on the switch output. Thermal Compensation of Output Current High luminance LEDs often need to be supplied with a temperature compensated current in order to maintain stable and reliable operation at all drive levels. The LEDs are usually mounted remotely from the device so, for this reason, the temperature coefficients of the internal circuits for the ZXLD1362 have been optimized to minimize the change in output current when no compensation is employed. If output current compensation is required, it is possible to use an external temperature sensi ng network - normally using Negative Temperature Coefficient (NTC) thermistors and/or diodes, mounted very close to the LED(s). The output of the sensing network can be used to drive the ADJ pin in order to reduce output current with increasing temperature. Layout Considerations LX Pin The LX pin of the device is a fast switching node, so PCB tracks should be kept as short as possible. To minimize ground 'bounce', the ground pin of the device should be soldered directly to the ground plane. Coil and Decoupling Capacitors and Current Sense Resistor It is particularly important to mount the coil and the input decoupling capacitor as close to the device pins as possible to minimize parasitic resistance and inductance, which will degrade efficiency. It is also impor tant to minimize any track resistance in series with current sense resistor R S. Its best to connect VIN directly to one end of R S and ISENSE directly to the opposite end of R S with no other currents flowing in these tracks. It is important that the cathode current of the Schottky diode does not flow in a track between R S and VIN as this may give an apparent higher measure of current than is actual because of track resistance.

noise and provide protection against high voltage transients. reduce the risk of leakage current s due to board contamination. output current under these conditions. provide quick testing of the ZXLD1362 device. OUTavg proportional to the PWM duty cycle. (See Figure 4 - Low frequency PWM operating waveforms). Figure 4. Low Frequency PWM Operating Waveforms This mode is preferable if optimum LED 'whiteness' is required. It will also provide the widest possible dimming range (approx.

Document number: DS33472 Rev. 5 - 2 23 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated

Ordering Information

(Note 11) Reel size (mm) Reel width (mm) Quantity per reel Part Number Suffix AEC-Q100 grade ZXLD1362ET5TA 1362 ET5 TSOT25 180 8 3000 TA 1 Note: 11. Pad layout as shown on Diodes Inc. suggested pad la yout document AP02001, which can be found on our website at http://www.d iodes.com/datasheets/ap02001.pdf. Package Outline Dimensions TSOT25 Suggested Pad Layout TSOT25 TSOT25 Dim Min Max Typ A − 1.00 − A1 0.01 0.10 − A2 0.84 0.90 − D − − 2.90 E − − 2.80 E1 − − 1.60 b 0.30 0.45 − c 0.12 0.20 − e − − 0.95 e1 − − 1.90 L 0.30 0.50 L2 − − 0.25 θ 0° 8° 4° θ1 4° 12° − All Dimensions in mm Dimensions Value (in mm) C 0.950 X 0.700 Y 1.000 Y1 3.199 c L E1 E D e 5x b θ 4x 1 θ A C C X (5x) Y (5x)

Document number: DS33472 Rev. 5 - 2 24 of 24 www.diodes.com May 2012 © Diodes Incorporated A Product Line of Diodes Incorporated IMPORTANT NOTICE DIODES INCORPORATED MAKES NO WARRANTY OF ANY KIND, EXPRESS OR IMPLIED, WITH REGARDS TO THIS DOCUMENT, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE (AND THEIR EQUIVALENTS UNDER THE LAWS OF ANY JURISDICTION). Diodes Incorporated and its subsidiaries rese rve the right to make modifications, enhanc ements, improvements, corrections or ot her changes without further notice to this document and any product described herein. Diodes Incorporated does not assume any liability arising out of the application or use of this document or any product described her ein; neither does Diodes Incorporated convey any license under its patent or trademark rights, nor the rights of others. Any Customer or user of this document or products described herein in such applica tions shall assume all risks of such use and will agree to hold Diodes In corporated and all the companies whose products are represented on Diodes Incorporated website, harmless against all damages. Diodes Incorporated does not warrant or accept any liability what soever in respect of any prod ucts purchased through unauthoriz ed sales channel. Should Customers purchase or use Diodes In corporated products for any unintended or unauthorized application, Customers shall i ndemnify and hold Diodes Incorporated and its representatives harmless a gainst all claims, damages, expens es, and attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized application. Products described herein may be covered by one or more United States, international or foreign patents pending. Product names and markings noted herein may also be covered by one or more United States, international or foreign trademarks. LIFE SUPPORT Diodes Incorporated products are specifically not authorized for use as critical components in life support devices or systems without the express written approval of the Chief Executive Officer of Diodes Incorporated. As used herein: A. Life support devices or systems are devices or systems which: 1. are intended to implant into the body, or 2. support or sustain life and whose failure to perform when prop erly used in accordance with instructions for use provided in the labeling can be reasonably expected to re sult in significant injury to the user. B. A critical component is any component in a life support device or system whose failure to perform can be reasonably expected to cause the failure of the life support device or to affect its safety or effectiveness. Customers represent that they have all necessary expertise in the safety and regulatory ramifications of their life support dev ices or systems, and acknowledge and agree that they are solely responsible for all legal, regulatory and safety-related requirements concerning their products and any use of Diodes Incorporated products in such safety-cri tical, life support devices or systems, notwithstanding any devic es- or systems- related information or support that may be provided by Diodes Incorporated. Further, Customers must fully indemnify Diodes Incorporated and its representatives against any damages aris ing out of the use of Diodes Incorporated products in such safety-critical, life su pport devices or systems. Copyright © 2012, Diodes Incorporated www.diodes.com