HLCP-J100 AVAGO | Alldatasheet
Document overview
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Technical content
Features
- Custom multicolor array capability
- Matched LEDs for uniform appearance
- End stackable
- Package interlock ensures correct alignment
- Low profile package
- Rugged construction
- Large, easily recognizable segments
- High ON-OFF contrast, segment to segment
- Wide viewing angle
- Categorized for luminous intensity
- HDSP-4832/4836/4840/4850 categorized for dominant wavelength
- HLCP-J100 operates at low current Typical intensity of 1.0 mcd at 1 mA drive current
Description
These 10-element LED arrays are designed to display information in easily recognizable bar graph form. The packages are end stackable and therefore capable of displaying long strings of information. Use of these bar graph arrays eliminates the alignment, intensity, and color matching problems associated with discrete LEDs. The HDSP-4820/4830/4840/4850 and HLCP-J100 each contain LEDs of one color. The HDSP-4832/4836 are multicolor arrays with High Efficiency Red, Yellow, and High Performance Green LEDs in a single package. HLCP-J100 HDSP-4830 HDSP-4820 HDSP-4832 Package Dimensions 5.08 (0.200) 25.40 (1.000) MAX. 0.38 (0.015) 10.16 (0.400) MAX. 2.54 (0.100) 1.52 (0.060) 0.61 (0.024) 2.54 ± 0.25 (0.100 ± 0.010) 4.06 (0.160) MIN. 5.08 (0.200) 6.10 ± 0.25 (0.240 ± 0.010) 7.62 ± 0.38 (0.300 ± 0.015) 0.38 (0.015) HDSP XXXX XYY ZW DATE CODE LUMINOUS INTENSITY CATEGORY COLOR BIN (NOTE 3) 1. DIMENSIONS IN MILLIMETERS (INCHES). 2. ALL UNTOLERANCED DIMEMSIONS FOR REFERENCE ONLY. 3. HDSP-4832/-4836/-4840/-4850 ONLY. PIN ONE MARKING
Applications
- Industrial controls
- Instrumentation
- Office equipment
- Computer peripherals
- Consumer products HLCP-J100 10-Element Bar Graph Array Data Sheet
Absolute Maximum Ratings [7] Red AlGaAs Red HER Yellow Green Parameter HDSP-4820 HLCP-J100 HDSP-4830 HDSP-4840 HDSP-4850 Average Power Dissipation per LED 63 mW 37 mW 87 mW 50 mW 105 mW A = 25°C) Peak Forward Current per LED 150 mA [1] 45 mA[2] 90 mA[3] 60 mA[3] 90 mA[3] DC Forward Current per LED 30 mA [4] 15 mA[4] 30 mA[5] 20 mA[5] 30 mA[5] Operating Temperature Range -40 °C to +85°C -20 °C to +100°C -40 °C to +85°C -20 °C to +85°C Storage Temperature Range -40 °C to +85°C -55 °C to +100°C -40 °C to +85°C Reverse Voltage per LED 3.0 V 5.0 V 3.0 V Lead Solder Dipping Temperature 260 °C for 5 seconds[8] (1.59 mm (1/16 inch) below seating plane)[6] Wave Soldering Temperature 250 °C for 3 seconds (at 2 mm distance from the body) Notes: 1. See Figure 1 to establish pulsed operating conditions. Maximum pulse width is 1.5 ms. 2. See Figure 2 to establish pulsed operating conditions. Maximum pulse width is 1.5 ms. 3. See Figure 8 to establish pulsed operating conditions. Maximum pulse width is 2 ms. 4. Derate maximum DC current for Red above T A = 62°C at 0.79 mA/ °C, and AlGaAs Red above T A = 91°C at 0.8 mA/ °C. See Figure 3. 5. Derate maximum DC current for HER above T A = 48°C at 0.58 mA/ °C, Yellow above T A = 70°C at 0.66 mA/ °C, and Green above T A = 37°C at 0.48 mA/°C. See Figure 9. 6. Clean only in water, isopropanol, ethanol, Freon TF or TE (or equivalent), or Genesolve DI-15 (or equivalent). 7. Absolute maximum ratings for HER, Yellow, and Green elements of the multicolor arrays are identical to the HDSP-4830/4840/48 50 maximum ratings. 8. Maximum tolerable component side temperature is 134 °C during solder process. Internal Circuit Diagram 12 0 a 10 11 j 21 9 31 8 41 7 51 6 61 5 71 4 81 3 91 2 b c d e f g h i Pin Function Pin Function
1 Anode a 11 Cathode j
2 Anode b 12 Cathode i
3 Anode c 13 Cathode h
4 Anode d 14 Cathode g
5 Anode e 15 Cathode f
6 Anode f 16 Cathode e
7 Anode g 17 Cathode d
8 Anode h 18 Cathode c
9 Anode i 19 Cathode b
10 Anode j 20 Cathode a
Multicolor Array Segment Colors HDSP-4832 HDSP-4836 Segment Segment Color Segment Color aH E R H E R bH E R H E R c HER Yellow d Yellow Yellow e Yellow Green f Yellow Green g Yellow Yellow h Green Yellow i Green HER j Green HER Electrical/Optical Characteristics at T A = 25°C[4] Red HDSP-4820 Parameter Symbol Min. Typ. Max. Units Test Conditions Luminous Intensity per LED (Unit Average) [1] IV 610 1250 µcd I F = 20 mA Peak Wavelength lPEAK 655 nm Dominant Wavelength[2] ld 645 nm Forward Voltage per LED V F 1.6 2.0 V I F = 20 mA Reverse Voltage per LED [5] VR 31 2 V I R = 100 µA Temperature Coefficient V F per LED ∆VF/°C -2.0 mV/ °C Thermal Resistance LED Junction-to-Pin R qJ-PIN 300 °C/W/LED AlGaAs Red HLCP-J100 Parameter Symbol Min. Typ. Max. Units Test Conditions Luminous Intensity per LED (Unit Average) [1] IV 600 1000 µcd I F = 1 mA
5200 I F = 20 mA Pk;
Peak Wavelength lPEAK 645 nm Dominant Wavelength[2] ld 637 nm Forward Voltage per LED V F 1.6 V I F = 1 mA 1.8 2.2 I F = 20 mA Reverse Voltage per LED [5] VR 51 5 V I R = 100 µA Temperature Coefficient V F per LED ∆VF/°C -2.0 mV/ °C Thermal Resistance LED Junction-to-Pin R qJ-PIN 300 °C/W/LED
High Efficiency Red HDSP-4830 Parameter Symbol Min. Typ. Max. Units Test Conditions Luminous Intensity per LED (Unit Average) [1,4] IV 900 3500 µcd I F = 10 mA Peak Wavelength lPEAK 635 nm Dominant Wavelength[2] ld 626 nm Forward Voltage per LED V F 2.1 2.5 V I F = 20 mA Reverse Voltage per LED [5] VR 33 0 V I R = 100 µA Temperature Coefficient V F per LED ∆VF/°C -2.0 mV/ °C Thermal Resistance LED Junction-to-Pin R qJ-PIN 300 °C/W/LED Yellow HDSP-4840 Parameter Symbol Min. Typ. Max. Units Test Conditions Luminous Intensity per LED (Unit Average) [1,4] IV 600 1900 µcd I F = 10 mA Peak Wavelength lPEAK 583 nm Dominant Wavelength[2,3] ld 581 585 592 nm Forward Voltage per LED V F 2.2 2.5 V I F = 20 mA Reverse Voltage per LED [5] VR 34 0 V I R = 100 µA Temperature Coefficient V F per LED ∆VF/°C -2.0 mV/ °C Thermal Resistance LED Junction-to-Pin R qJ-PIN 300 °C/W/LED Green HDSP-4850 Parameter Symbol Min. Typ. Max. Units Test Conditions Luminous Intensity per LED (Unit Average) [1,4] IV 600 1900 µcd I F = 10 mA Peak Wavelength lPEAK 566 nm Dominant Wavelength[2,3] ld 571 577 nm Forward Voltage per LED V F 2.1 2.5 V I F = 10 mA Reverse Voltage per LED [5] VR 35 0 V I R = 100 µA Temperature Coefficient V F per LED ∆VF/°C -2.0 mV/ °C Thermal Resistance LED Junction-to-Pin R qJ-PIN 300 °C/W/LED Notes: 1. The bar graph arrays are categorized for luminous intensity. The category is designated by a letter located on the side of th e package. 2. The dominant wavelength, ld, is derived from the CIE chromaticity diagram and is that single wavelength which defines the color of the device. 3. The HDSP-4832/-4836/-4840/-4850 bar graph arrays are categorized by dominant wavelength with the category designated by a num ber adjacent to the intensity category letter. Only the yellow elements of the HDSP-4832/-4836 are categorized for color. 4. Electrical/optical characteristics of the High-Efficiency Red elements of the HDSP-4832/-4836 are identical to the HDSP-4830 characteristics. Characteristics of Yellow elements of the HDSP-4832/-4836 are identical to the HDSP-4840. Characteristics of Green elements of the HDSP-4832/-4836 are identical to the HDSP-4850.
300 Hz1 KHz3KHz10 KHz f - REFRESH RATE100 Hz
Figure 3. Maximum Allowable DC Current vs. and TJMAX = 110°C for AlGaAs Red. Figure 4. Relative Efficiency (Luminous Intensity per Unit Current) vs. Peak Current. Figure 5. Forward Current vs. Forward
1 AT 20 mA FOR RED: AT 1mA FOR AlGaAs RED)
Figure 6. Relative Luminous Intensity vs. DC Figure 7. Relative Luminous Intensity vs. DC
300 Hz1 KHz10 KHz
3 KHz
Figure 8. Maximum Tolerable Peak Current vs. Pulse Duration – HER/Yellow/Green. Figure 9. Maximum Allowable DC Current vs. Ambient Temperature. T JMAX = 100°C. Figure 10. Relative Efficiency (Luminous Intensity per Unit Current) vs. Peak Current. Figure 11. Forward Current vs. Forward Figure 12. Relative Luminous Intensity vs. DC
1.5 YELLOW SERIES
These versatile bar graph arrays are composed of ten light emit- ting diodes. The light from each LED is optically stretched to form individual elements. The Red (HDSP-4820) bar graph array LEDs use a p-n junction diffused into a GaAsP epitaxial layer on a GaAs substrate. The AlGaAs Red (HLCP-J100) bar graph array LEDs use double heterojunction AlGaAs on a GaAs substrate. HER (HDSP- 4830) and Yellow (HDSP-4840) bar graph array LEDs use a GaAsP epitaxial layer on a GaP substrate. Green (HDSP-4850) bar graph array LEDs use liquid phase GaP epitaxial layer on a GaP substrate. The multicolor bar graph arrays (HDSP-4832/ 4836) have HER, Yellow, and Green LEDs in one package. These displays are designed for strobed operation. The typical forward voltage values can be scaled from Figures 5 and 11. These values should be used to calculate the current limiting resistor value and typical power consumption. Expected maxi- mum V F values for driver circuit design and maximum power dissipation may be calculated using the V FMAX models: Standard Red HDSP-4820 series VFMAX = 1.8 V + IPeak (10 Ω ) For: IPeak ≥ 5 mA AlGaAs Red HLCP-J100 series VFMAX = 1.8 V + IPeak (20 Ω ) For: IPeak ≤ 20 mA VFMAX = 2.0 V + IPeak (10 Ω ) For: IPeak ≥ 20 mA HER (HDSP-4830) and Yellow (HDSP-4840) series VFMAX = 1.6 + IPeak (45 Ω ) For: 5 mA ≤ IPeak ≤ 20 mA VFMAX = 1.75 + IPeak (38 Ω ) For: IPeak ≥ 20 mA Green (HDSP-4850) series VFMAX = 2.0 + IPeak (50 Ω ) For: IPeak > 5 mA Figures 4 and 10 allow the designer to calculate the luminous intensity at different peak and average currents. The following equation calculates intensity at different peak and average currents: I VAVG = (IFAVG/IFAVG DATA SHEET)hpeak)(IVDATA SHEET) Where: IVAVG is the calculated time averaged luminous intensity resulting from I FAVG. IFAVG is the desired time averaged LED current. IFAVG DATA SHEET is the data sheet test current for IVDATA SHEET. hpeak is the relative efficiency at the peak current, scaled from Figure 4 or 10. I V DATA SHEET is the data sheet luminous intensity, resulting from I FAVG DATA SHEET. For example, what is the luminous intensity of an HDSP- 4830 driven at 50 mA peak 1/5 duty factor? I FAVG = (50 mA)(0.2) = 10 mA IFAVG DATA SHEET = 10 mA hpeak = 1.3 IV DATA SHEET = 3500 µcd Therefore IVAVG = (10 mA/10 mA) (1.3)(3500 µcd) = 4550 µcd
For product information and a complete list of distributors, please go to our website: www.avagotech.com Avago, Avago Technologies, and the A logo are trademarks of Avago Technologies Limited in the United States and other countries . Data subject to change. Copyright © 2006 Avago Technologies Limited. All rights reserved. Obsoletes 5989-2902EN AV01-0277EN June 26, 2006