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SMD LED 48-213/T2D-AQ2R2QY/3C Datasheet - 2.25x1.85x1.45mm - 3.2V - 95mW - Pure White - English Technical Document

Complete technical datasheet for the 48-213 SMD LED in 1206 package. Features pure white light, 2.25x1.85x1.45mm dimensions, 3.2V forward voltage, 95mW power dissipation, and detailed electro-optical characteristics.
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PDF Document Cover - SMD LED 48-213/T2D-AQ2R2QY/3C Datasheet - 2.25x1.85x1.45mm - 3.2V - 95mW - Pure White - English Technical Document

Table of Contents

1. Product Overview

The 48-213/T2D-AQ2R2QY/3C is a surface-mount device (SMD) LED in a compact 1206 package format. This mono-color, pure white LED is designed for modern electronic applications requiring high-density component placement and reliable performance. Its primary advantages include a significantly reduced footprint compared to leaded LEDs, enabling smaller printed circuit board (PCB) designs and higher packing density. The component is lightweight, making it suitable for miniature and portable applications. It is compliant with RoHS, EU REACH, and halogen-free standards (Br <900 ppm, Cl <900 ppm, Br+Cl < 1500 ppm), ensuring environmental and safety compliance for global markets.

1.1 Core Features and Applications

The LED is supplied on 8mm tape mounted on a 7-inch diameter reel, making it fully compatible with high-speed automatic pick-and-place assembly equipment. It is designed to withstand standard infrared (IR) and vapor phase reflow soldering processes, which are common in volume manufacturing.

Typical Applications:

2. Technical Specifications and In-Depth Interpretation

This section provides a detailed analysis of the absolute maximum ratings and electro-optical characteristics defined in the datasheet. Understanding these parameters is critical for reliable circuit design and ensuring the LED's longevity.

2.1 Absolute Maximum Ratings

These ratings define the limits beyond which permanent damage to the device may occur. Operation under or at these limits is not guaranteed.

2.2 Electro-Optical Characteristics (Ta=25°C)

These are the typical performance parameters under standard test conditions. Designers should use the typical (Typ.) or maximum/minimum values as the basis for their designs.

3. Binning System Explanation

To ensure consistency in mass production, LEDs are sorted into "bins" based on key performance parameters. This allows designers to select parts that meet specific brightness and voltage requirements for their application.

3.1 Luminous Intensity Binning

The luminous intensity is sorted into three primary bins at IF=5mA:

The product code "AQ2R2QY" indicates this specific part is from intensity bin Q2 and R2. A tolerance of ±11% applies within each bin.

3.2 Forward Voltage Binning

The forward voltage is grouped and binned to help with power supply design and current regulation. The bins (Group Q) are defined in 0.1V steps:

The tolerance for forward voltage within a bin is ±0.05V.

3.3 Chromaticity Coordinate Binning

For white LEDs, color consistency is critical. The chromaticity coordinates (CIE x, y) define the precise color point on the CIE 1931 diagram. The datasheet defines six bins (A1 through A6), each representing a small quadrilateral area on the color chart. The product's color is guaranteed to fall within the specified polygon with a tolerance of ±0.01 in both x and y coordinates. This tight control ensures minimal visible color variation between different LEDs in an array or backlight.

4. Performance Curve Analysis

The datasheet provides several characteristic curves that illustrate the LED's behavior under varying conditions. These are essential for advanced design considerations.

4.1 Forward Current vs. Forward Voltage (I-V Curve)

This curve shows the non-linear relationship between current and voltage. The forward voltage increases logarithmically with current. For stable operation, a constant current driver or a current-limiting resistor is mandatory, as a small increase in voltage beyond the nominal VF can cause a large, potentially destructive increase in current.

4.2 Luminous Intensity vs. Forward Current

The light output is approximately proportional to the forward current. However, efficiency (lumens per watt) may drop at very high currents due to increased heat generation within the chip. Operating near the maximum continuous current (25mA) may reduce long-term reliability.

4.3 Luminous Intensity vs. Ambient Temperature

The light output of an LED decreases as the junction temperature rises. This curve quantifies that derating. For applications operating in high ambient temperatures, the drive current may need to be reduced to maintain brightness or to prevent overheating.

4.4 Forward Current Derating Curve

This is a critical curve for thermal management. It defines the maximum allowable continuous forward current as a function of the ambient temperature. As temperature increases, the maximum safe current decreases to keep the junction temperature within safe limits and prevent thermal runaway.

4.5 Spectral Distribution

The spectrum curve shows the relative power emitted across different wavelengths. A pure white LED typically uses a blue InGaN chip combined with a yellow phosphor. The spectrum will show a peak in the blue region (around 450nm) and a broad emission in the yellow/green region from the phosphor, combining to produce white light.

5. Mechanical and Package Information

5.1 Package Dimensions

The LED conforms to the standard 1206 (inch) or 3216 (metric) package size. Key dimensions (in mm) are:

Tolerances are ±0.1mm unless otherwise specified. A cathode mark is clearly indicated on the package for correct polarity orientation during assembly.

5.2 Recommended Pad Layout

The datasheet includes a suggested land pattern (pad design) for PCB layout. The recommended pad size is 1.40mm x 1.10mm. It is emphasized that this is for reference only, and the pad dimensions should be optimized based on the specific solder paste, stencil, and assembly process used by the manufacturer.

6. Soldering and Assembly Guidelines

Proper handling and soldering are vital for yield and reliability.

6.1 Current Limiting Requirement

Mandatory: An external current-limiting resistor must always be used in series with the LED. The LED is a current-driven device, and its forward voltage has a negative temperature coefficient. Without a resistor, even a small increase in supply voltage or a drop in VF due to heating can cause an uncontrolled rise in current, leading to immediate failure.

6.2 Storage and Moisture Sensitivity

The components are packaged in a moisture-resistant bag with desiccant.

6.3 Reflow Soldering Profile

A lead-free reflow profile is specified:

Critical Notes:

6.4 Hand Soldering

If hand soldering is necessary, use a soldering iron with a tip temperature below 350°C. Contact time per terminal should be less than 3 seconds. Use an iron with a power rating of 25W or less. Allow a minimum interval of 2 seconds between soldering each terminal to prevent excessive heat buildup.

7. Packaging and Ordering Information

7.1 Reel and Tape Specifications

The LEDs are supplied in embossed carrier tape on 7-inch reels.

7.2 Label Explanation

The reel label contains critical information for traceability and verification:

8. Application Design Considerations

8.1 Circuit Design

Always calculate the series resistor using the maximum forward voltage from the datasheet (3.2V) to ensure sufficient current limiting under all conditions. For a 5V supply and a target current of 5mA: R = (5V - 3.2V) / 0.005A = 360Ω. The nearest standard value (360Ω or 390Ω) would be chosen. The resistor power rating should be I2R = (0.005)2 * 360 = 0.009W, so a standard 1/10W or 1/8W resistor is more than adequate.

8.2 Thermal Management

While the 1206 package has no dedicated thermal pad, heat is conducted away through the two solder terminals. Ensure the PCB has adequate copper area connected to the LED pads, especially if operating near the maximum current or in high ambient temperatures. Avoid placing the LED near other heat-generating components.

8.3 Optical Design

The wide 130-degree viewing angle makes this LED suitable for applications requiring broad, diffuse illumination rather than a focused beam. For indicator applications, consider the required luminous intensity at the viewing angle; brightness falls off towards the edges of the viewing cone.

9. Technical Comparison and Differentiation

The 48-213 LED, in its 1206 package, offers a balance between size, brightness, and ease of assembly.

10. Frequently Asked Questions (FAQs)

10.1 Can I drive this LED without a current-limiting resistor?

No. This is explicitly warned against in the datasheet. The LED must be driven by a constant current source or, more commonly, a voltage source in series with a current-limiting resistor. Direct connection to a voltage source will result in failure.

10.2 Why is the luminous intensity range so wide (90-180 mcd)?

This is the full possible range across production. Individual units are sorted into tighter bins (Q2, R1, R2). When ordering, you specify the bin code (e.g., AQ2R2QY) to get LEDs from specific intensity and color bins, ensuring consistency in your product.

10.3 How many times can I reflow solder this LED?

The datasheet states reflow soldering should not be done more than two times. A third reflow cycle risks damaging the internal wire bonds or the LED chip due to cumulative thermal stress.

10.4 What does "Pb-free" mean in the context of soldering?

It means the LED's external terminals are finished with a lead-free plating (typically tin). The specified reflow profile (peak 260°C) is designed for lead-free solder pastes (e.g., SAC305), which have a higher melting point than traditional tin-lead solder.

11. Practical Design and Usage Examples

11.1 Example 1: Simple Status Indicator

Scenario: A power-on indicator for a 3.3V logic board.
Design: Use a 5mA drive current for good visibility with low power consumption. R = (3.3V - 3.2V) / 0.005A = 20Ω. Since 3.2V is the max VF, the actual current may be slightly higher if the LED's VF is lower. A 33Ω or 47Ω resistor would provide a more conservative and stable current. Connect the LED with the cathode (marked side) to ground.

11.2 Example 2: Backlight Array for a Small LCD

Scenario: Uniform backlighting requiring 10 LEDs.
Design: To ensure uniform brightness, all LEDs should be from the same luminous intensity bin (e.g., R2). They should be connected in parallel, each with its own dedicated current-limiting resistor. Connecting multiple LEDs in parallel to a single resistor is not recommended due to variations in VF, which can cause uneven current sharing and brightness.

12. Operating Principle

This is a semiconductor photonic device. It is based on an Indium Gallium Nitride (InGaN) chip. When a forward voltage exceeding the diode's junction potential (VF) is applied, electrons and holes recombine within the active region of the semiconductor, releasing energy in the form of photons (light). In a "pure white" LED, the primary chip emits blue light. This blue light excites a layer of yellow phosphor coating the chip. The combination of the blue light from the chip and the yellow light from the phosphor is perceived by the human eye as white light. This method is known as phosphor-converted white light generation.

13. Technology Trends

SMD LEDs in packages like the 1206 represent a mature and widely adopted technology. The general industry trend is towards:

The 48-213 LED, with its well-defined specifications, reliable performance, and standard package, remains a fundamental and versatile component in the optoelectronics landscape, suitable for a vast array of indicator and backlighting applications.

LED Specification Terminology

Complete explanation of LED technical terms

Photoelectric Performance

Term Unit/Representation Simple Explanation Why Important
Luminous Efficacy lm/W (lumens per watt) Light output per watt of electricity, higher means more energy efficient. Directly determines energy efficiency grade and electricity cost.
Luminous Flux lm (lumens) Total light emitted by source, commonly called "brightness". Determines if the light is bright enough.
Viewing Angle ° (degrees), e.g., 120° Angle where light intensity drops to half, determines beam width. Affects illumination range and uniformity.
CCT (Color Temperature) K (Kelvin), e.g., 2700K/6500K Warmth/coolness of light, lower values yellowish/warm, higher whitish/cool. Determines lighting atmosphere and suitable scenarios.
CRI / Ra Unitless, 0–100 Ability to render object colors accurately, Ra≥80 is good. Affects color authenticity, used in high-demand places like malls, museums.
SDCM MacAdam ellipse steps, e.g., "5-step" Color consistency metric, smaller steps mean more consistent color. Ensures uniform color across same batch of LEDs.
Dominant Wavelength nm (nanometers), e.g., 620nm (red) Wavelength corresponding to color of colored LEDs. Determines hue of red, yellow, green monochrome LEDs.
Spectral Distribution Wavelength vs intensity curve Shows intensity distribution across wavelengths. Affects color rendering and quality.

Electrical Parameters

Term Symbol Simple Explanation Design Considerations
Forward Voltage Vf Minimum voltage to turn on LED, like "starting threshold". Driver voltage must be ≥Vf, voltages add up for series LEDs.
Forward Current If Current value for normal LED operation. Usually constant current drive, current determines brightness & lifespan.
Max Pulse Current Ifp Peak current tolerable for short periods, used for dimming or flashing. Pulse width & duty cycle must be strictly controlled to avoid damage.
Reverse Voltage Vr Max reverse voltage LED can withstand, beyond may cause breakdown. Circuit must prevent reverse connection or voltage spikes.
Thermal Resistance Rth (°C/W) Resistance to heat transfer from chip to solder, lower is better. High thermal resistance requires stronger heat dissipation.
ESD Immunity V (HBM), e.g., 1000V Ability to withstand electrostatic discharge, higher means less vulnerable. Anti-static measures needed in production, especially for sensitive LEDs.

Thermal Management & Reliability

Term Key Metric Simple Explanation Impact
Junction Temperature Tj (°C) Actual operating temperature inside LED chip. Every 10°C reduction may double lifespan; too high causes light decay, color shift.
Lumen Depreciation L70 / L80 (hours) Time for brightness to drop to 70% or 80% of initial. Directly defines LED "service life".
Lumen Maintenance % (e.g., 70%) Percentage of brightness retained after time. Indicates brightness retention over long-term use.
Color Shift Δu′v′ or MacAdam ellipse Degree of color change during use. Affects color consistency in lighting scenes.
Thermal Aging Material degradation Deterioration due to long-term high temperature. May cause brightness drop, color change, or open-circuit failure.

Packaging & Materials

Term Common Types Simple Explanation Features & Applications
Package Type EMC, PPA, Ceramic Housing material protecting chip, providing optical/thermal interface. EMC: good heat resistance, low cost; Ceramic: better heat dissipation, longer life.
Chip Structure Front, Flip Chip Chip electrode arrangement. Flip chip: better heat dissipation, higher efficacy, for high-power.
Phosphor Coating YAG, Silicate, Nitride Covers blue chip, converts some to yellow/red, mixes to white. Different phosphors affect efficacy, CCT, and CRI.
Lens/Optics Flat, Microlens, TIR Optical structure on surface controlling light distribution. Determines viewing angle and light distribution curve.

Quality Control & Binning

Term Binning Content Simple Explanation Purpose
Luminous Flux Bin Code e.g., 2G, 2H Grouped by brightness, each group has min/max lumen values. Ensures uniform brightness in same batch.
Voltage Bin Code e.g., 6W, 6X Grouped by forward voltage range. Facilitates driver matching, improves system efficiency.
Color Bin 5-step MacAdam ellipse Grouped by color coordinates, ensuring tight range. Guarantees color consistency, avoids uneven color within fixture.
CCT Bin 2700K, 3000K etc. Grouped by CCT, each has corresponding coordinate range. Meets different scene CCT requirements.

Testing & Certification

Term Standard/Test Simple Explanation Significance
LM-80 Lumen maintenance test Long-term lighting at constant temperature, recording brightness decay. Used to estimate LED life (with TM-21).
TM-21 Life estimation standard Estimates life under actual conditions based on LM-80 data. Provides scientific life prediction.
IESNA Illuminating Engineering Society Covers optical, electrical, thermal test methods. Industry-recognized test basis.
RoHS / REACH Environmental certification Ensures no harmful substances (lead, mercury). Market access requirement internationally.
ENERGY STAR / DLC Energy efficiency certification Energy efficiency and performance certification for lighting. Used in government procurement, subsidy programs, enhances competitiveness.