How to select and source STMicroelectronics UC3845BN
8 Terminals 7.6V~30V 8-Pin UC3845 DC to DC converter IC SWITCHING CONTROLLER 500kHz Transistor Driver









8 Terminals 7.6V~30V 8-Pin UC3845 DC to DC converter IC SWITCHING CONTROLLER 500kHz Transistor Driver
Select the right STMicroelectronics UC3845BN and source genuine parts in 2025 with tips on specs, trusted distributors, and authenticity checks.
Product Introduction
Are you feeling unsure about how to pick the right STMicroelectronics UC3845BN and make sure you get a real one? You are not alone. Picking electronic parts can feel tricky, but you can do it with the right steps. You just need to know what to look for and where to buy safely. Let’s make this process simple together!
STMicroelectronics UC3845BN
Features
You might wonder what makes the STMicroelectronics UC3845BN stand out. This chip works as a current mode controller, which means it helps control power in off-line and DC-DC converters. You can use it for many power supply projects. If you are just starting, you will like that it needs only a few extra parts to work. This makes your design simpler and saves you time. The UC3845BN gives you high-speed PWM operation, so your circuits can run fast and stay stable. It has an error amplifier built in, which helps keep your output steady. You also get built-in safety features like overcurrent and thermal shutdown. These protect your project from damage. The chip lets you set the dead-time, so you can adjust how it works for your needs. It works in a wide range of temperatures and voltages, so you can use it in many places. The output can drive N-channel MOSFETs, which are common in power supplies.
Tip: The UC3845BN has a lower undervoltage lockout (UVLO) threshold and a limited duty cycle compared to other chips in the same family. This helps prevent problems if your supply voltage drops too low.
Applications
You can use the STMicroelectronics UC3845BN in many types of power supplies. Here are some common uses:
Off-line switching power supplies
DC-DC converters for battery-powered devices
LED drivers
Power adapters for laptops or small appliances
Industrial control systems
If you want a chip that works well in boost or flyback converter designs, this one fits the job.
Key Specs
Here is a quick look at the main technical details:
| Specification | Value/Description |
|---|---|
| Input Voltage Range | 7.6 V to 30 V |
| Switching Frequency | Up to 500 kHz (guaranteed at 250 kHz) |
| Maximum Duty Cycle | About 48% |
| Output Current | High peak current, suitable for N-Channel MOSFETs |
| Undervoltage Lockout | 8.5 V (on), 7.9 V (off) |
| Operating Temperature | -40°C to 150°C |
| Output Type | Transistor Driver |
You can see that the STMicroelectronics UC3845BN gives you flexibility and safety for many power management projects.
Selection
Requirements
Before you pick a controller, you need to know what your project needs. Start by looking at three main things: input voltage, output current, and package type. These details help you choose the right part and avoid problems later.
Here’s a quick table to help you match your project’s needs with what the STMicroelectronics UC3845BN offers:
| Parameter | Specification |
|---|---|
| Typical Input Voltage | 7.6 V to 30 V |
| Maximum Output Current | 200 mA |
| Package Type | 8-pin DIP (Dual In-line Package), through-hole, supplied in tubes |
If your power supply or converter fits these numbers, you’re on the right track. The 8-pin DIP package is easy to handle, especially if you’re building a prototype or working on a breadboard. You can also find this chip in tubes, which makes storage and handling simple.
Tip: Always double-check your input voltage and output current before you buy. Picking the wrong specs can cause your circuit to fail or even damage your parts.
Datasheet Review
You should always check the latest datasheet before making your final choice. The datasheet gives you all the details you need to use the chip safely and correctly. Here are the most important things to look for:
Undervoltage lockout with hysteresis
Internally trimmed reference with undervoltage lockout
Current limiting
Trimmed oscillator for precise frequency control
Current mode operation up to 500kHz
Oscillator frequency guaranteed at 250kHz
Latching PWM for cycle-by-cycle operation
High current totem pole output
Automatic feed forward compensation
Differences in under-voltage lockout thresholds (8.5V on, 7.9V off for UC3845B)
Maximum duty cycle range (zero to less than 50% due to internal toggle flip flop)
Package type (DIP-8)
RoHS compliance
Industrial grade
You want to pay special attention to the pin configuration, undervoltage lockout (UVLO) levels, and duty cycle. These features affect how your circuit starts up and how much power it can deliver. If you miss these details, your design might not work as expected.
Note: The datasheet also tells you about safety features, like current limiting and thermal protection. These keep your project safe from damage.
Alternatives
Sometimes you want to compare a few options before you decide. The STMicroelectronics UC3845BN has several close alternatives. Some chips come in different packages or have slightly different prices. Here’s a table to help you compare:
| Part Number | Manufacturer | Function | Package | Price (USD) | Notes |
|---|---|---|---|---|---|
| UC3845BN | onsemi | IC Regulator Controller Boost/Flyback | 8DIP | 0.16 - 0.17 | Cost-effective option |
| UC3845BD1R2G | onsemi | IC Regulator Controller Boost/Flyback | 8SOIC | 0.16 | Similar price, different package |
| UC3845BD1G | onsemi | IC Regulator Controller Boost/Flyback | 8SOIC | 0.17 | Similar price, different package |
| UC3845BVD1R2G | onsemi | IC Regulator Controller Boost/Flyback | 8SOIC | 0.27 | Higher priced alternative |
| TI UC3845DTR | Texas Instruments | IC Regulator Controller Boost/Flyback | 8SOIC | 0.42 | Higher priced alternative |
You can see that the UC3845BN is one of the most cost-effective choices. If you need a different package, like SOIC for surface mounting, you can pick one of the other models. Some chips, like the TI UC3845DTR, cost more but may offer extra features or support.
Tip: Always compare the specs and prices before you buy. Sometimes a small change in the part number means a big difference in how you can use the chip.
Sourcing
Distributors
When you want to buy the STMicroelectronics UC3845BN, you need to know where to look. Trusted distributors help you avoid fake parts and wasted money. The official STMicroelectronics eStore is a great place to start. You get original parts straight from the manufacturer. This store gives you clear product details, support, and a warranty. You can also check big distributors like Digi-Key, Mouser, Arrow, and Jotrin. These companies have strong supplier checks and offer good customer service.
Here’s a quick table to help you compare what these trusted sources offer:
| Aspect | Details |
|---|---|
| Authenticity | Supplier audits and original manufacturer verification |
| Warranty | 365-day warranty; refund or replacement if quality is not perfect |
| Payment Methods | Bank transfer, PayPal, Credit Card, Western Union, Escrow |
| Shipping | DHL, FedEx, UPS, TNT, Registered Mail; tracking info sent by email; express delivery 3-5 days |
| Return Policy | Pre-shipment inspection; returns accepted within 90 days if unused and in original packaging |
| Customer Support | Email support for after-sales and technical questions |
Tip: Always use official channels or well-known distributors. This helps you get real parts and good support.
Authenticity
You want to make sure you get genuine parts. Fake chips can ruin your project and waste your money. Here are some simple steps you can follow to check for authenticity:
Look for the STMicroelectronics logo and clear part numbers on the chip.
Buy only from official stores or authorized distributors.
Check if the distributor has quality certifications like ISO9001 or IATF16949.
Ask for a datasheet or catalog and compare the specs with your needs.
Make sure the supplier does pre-shipment inspections and offers a return policy.
Read reviews or ask for proof that the supplier is an authorized agent.
Some platforms, like Ovaga, have teams that check every supplier before listing their products. They also inspect every order before shipping. This helps you get high-quality, real parts every time.
Note: If you ever feel unsure, contact customer support. They can answer your questions and help you check the part’s details.
Logistics
After you pick your distributor and check for authenticity, you need to think about shipping and delivery. Most trusted distributors use fast and safe shipping companies. You can choose from DHL, UPS, TNT, FedEx, or Registered Air Mail. Express shipping usually takes 2 to 7 days. Standard mail can take longer, sometimes up to 30 days.
Here’s a table to show you the typical lead times for shipping:
| Shipping Carrier | Typical Lead Time (days) |
|---|---|
| DHL | 2-5 |
| UPS | 2-5 |
| TNT | 2-5 |
| FedEx | 3-7 |
| EMS | 5-14 |
| Registered Air Mail | 7-30 |
You should also check the minimum order quantity and price before you buy. Some stores let you buy just one chip, while others have a minimum order. Prices can change based on how many you buy and how fast you want shipping.
Tip: Always track your order. Trusted distributors send you tracking numbers by email. This way, you know where your package is at all times.
Pitfalls
Selection Errors
You might feel excited to start your project, but it is easy to pick the wrong part if you rush. Many people choose a controller without checking the voltage or duty cycle. If you select a chip that cannot handle your input voltage, your circuit will not work. Sometimes, you may forget to check the maximum duty cycle. This mistake can cause your power supply to shut down or overheat. Always match your project’s needs with the chip’s specs. Double-check the datasheet before you buy.
Tip: Make a checklist of your voltage, current, and package needs. Use this list every time you shop for parts.
Sourcing Risks
Buying electronic parts online can feel risky. Some sellers offer prices that seem too good to be true. These deals often mean fake or used chips. Counterfeit parts may look real, but they can fail fast or damage your project. Unreliable suppliers may also send the wrong part or ship late. You can avoid these problems by sticking with trusted distributors. Look for stores with good reviews and clear return policies.
Check for official logos and part numbers.
Ask for proof of authenticity if you feel unsure.
Avoid sellers with little information or no support.
Troubleshooting
If you get a part that does not work, do not panic. Start by checking your circuit for wiring mistakes. Use a multimeter to test voltages at each pin. Compare your results with the datasheet. Sometimes, the problem comes from static damage during handling. Always use an anti-static wrist strap when you work with chips. If you suspect a fake part, contact your supplier right away. Good suppliers will help you replace bad parts.
Note: Keep your workspace clean and organized. This simple step helps you avoid mix-ups and makes troubleshooting easier.
You can select and source the right controller with a few simple steps. First, check your voltage and current needs. Next, review the datasheet and compare options. Always buy from trusted suppliers and look for a warranty. Before you order, confirm packaging and authenticity checks. Here’s a quick checklist:
Match specs to your project.
Inspect parts before use.
Stay confident—these steps help you avoid mistakes and get the results you want!
FAQ
How do you know if your UC3845BN is genuine?
Look for the STMicroelectronics logo and clear part numbers on the chip. Buy only from trusted distributors. If you feel unsure, ask for proof or check reviews.
Can you use the UC3845BN for both AC and DC power supplies?
Yes, you can use it for both off-line (AC) and DC-DC converters. Just make sure your input voltage matches the chip’s range. Always check your circuit design before you start.
What tools help you test the UC3845BN after buying?
You can use a multimeter to check voltages at each pin. An oscilloscope helps you see the switching waveform. Anti-static tools protect the chip during handling.
What should you do if your chip does not work?
First, check your wiring and connections. Test voltages with a multimeter. Compare your results with the datasheet. If you still have problems, contact your supplier for help or a replacement.
Specifications
- TypeParameter
- Lifecycle Status
Lifecycle Status refers to the current stage of an electronic component in its product life cycle, indicating whether it is active, obsolete, or transitioning between these states. An active status means the component is in production and available for purchase. An obsolete status indicates that the component is no longer being manufactured or supported, and manufacturers typically provide a limited time frame for support. Understanding the lifecycle status is crucial for design engineers to ensure continuity and reliability in their projects.
ACTIVE (Last Updated: 7 months ago) - Factory Lead Time10 Weeks
- Mount
In electronic components, the term "Mount" typically refers to the method or process of physically attaching or fixing a component onto a circuit board or other electronic device. This can involve soldering, adhesive bonding, or other techniques to secure the component in place. The mounting process is crucial for ensuring proper electrical connections and mechanical stability within the electronic system. Different components may have specific mounting requirements based on their size, shape, and function, and manufacturers provide guidelines for proper mounting procedures to ensure optimal performance and reliability of the electronic device.
Through Hole - Mounting Type
The "Mounting Type" in electronic components refers to the method used to attach or connect a component to a circuit board or other substrate, such as through-hole, surface-mount, or panel mount.
Through Hole - Package / Case
refers to the protective housing that encases an electronic component, providing mechanical support, electrical connections, and thermal management.
8-DIP (0.300, 7.62mm) - Number of Pins8
- Operating Temperature
The operating temperature is the range of ambient temperature within which a power supply, or any other electrical equipment, operate in. This ranges from a minimum operating temperature, to a peak or maximum operating temperature, outside which, the power supply may fail.
-40°C~150°C TJ - Packaging
Semiconductor package is a carrier / shell used to contain and cover one or more semiconductor components or integrated circuits. The material of the shell can be metal, plastic, glass or ceramic.
Tube - Tolerance
In electronic components, "tolerance" refers to the acceptable deviation or variation from the specified or ideal value of a particular parameter, such as resistance, capacitance, or voltage. It indicates the range within which the actual value of the component can fluctuate while still being considered acceptable for use in a circuit. Tolerance is typically expressed as a percentage or a specific value and is important for ensuring the accuracy and reliability of electronic devices. Components with tighter tolerances are more precise but may also be more expensive. It is crucial to consider tolerance when selecting components to ensure proper functionality and performance of the circuit.
2% - JESD-609 Code
The "JESD-609 Code" in electronic components refers to a standardized marking code that indicates the lead-free solder composition and finish of electronic components for compliance with environmental regulations.
e3 - Part Status
Parts can have many statuses as they progress through the configuration, analysis, review, and approval stages.
Active - Moisture Sensitivity Level (MSL)
Moisture Sensitivity Level (MSL) is a standardized rating that indicates the susceptibility of electronic components, particularly semiconductors, to moisture-induced damage during storage and the soldering process, defining the allowable exposure time to ambient conditions before they require special handling or baking to prevent failures
1 (Unlimited) - Number of Terminations8
- ECCN Code
An ECCN (Export Control Classification Number) is an alphanumeric code used by the U.S. Bureau of Industry and Security to identify and categorize electronic components and other dual-use items that may require an export license based on their technical characteristics and potential for military use.
EAR99 - Terminal Finish
Terminal Finish refers to the surface treatment applied to the terminals or leads of electronic components to enhance their performance and longevity. It can improve solderability, corrosion resistance, and overall reliability of the connection in electronic assemblies. Common finishes include nickel, gold, and tin, each possessing distinct properties suitable for various applications. The choice of terminal finish can significantly impact the durability and effectiveness of electronic devices.
Matte Tin (Sn) - annealed - Max Power Dissipation
The maximum power that the MOSFET can dissipate continuously under the specified thermal conditions.
1.25W - Terminal Position
In electronic components, the term "Terminal Position" refers to the physical location of the connection points on the component where external electrical connections can be made. These connection points, known as terminals, are typically used to attach wires, leads, or other components to the main body of the electronic component. The terminal position is important for ensuring proper connectivity and functionality of the component within a circuit. It is often specified in technical datasheets or component specifications to help designers and engineers understand how to properly integrate the component into their circuit designs.
DUAL - Terminal Pitch
The center distance from one pole to the next.
2.54mm - Frequency
In electronic components, the parameter "Frequency" refers to the rate at which a signal oscillates or cycles within a given period of time. It is typically measured in Hertz (Hz) and represents how many times a signal completes a full cycle in one second. Frequency is a crucial aspect in electronic components as it determines the behavior and performance of various devices such as oscillators, filters, and communication systems. Understanding the frequency characteristics of components is essential for designing and analyzing electronic circuits to ensure proper functionality and compatibility with other components in a system.
250kHz - Base Part Number
The "Base Part Number" (BPN) in electronic components serves a similar purpose to the "Base Product Number." It refers to the primary identifier for a component that captures the essential characteristics shared by a group of similar components. The BPN provides a fundamental way to reference a family or series of components without specifying all the variations and specific details.
UC3845 - Function
The parameter "Function" in electronic components refers to the specific role or purpose that the component serves within an electronic circuit. It defines how the component interacts with other elements, influences the flow of electrical signals, and contributes to the overall behavior of the system. Functions can include amplification, signal processing, switching, filtering, and energy storage, among others. Understanding the function of each component is essential for designing effective and efficient electronic systems.
Step-Up/Step-Down - Output Voltage
Output voltage is a crucial parameter in electronic components that refers to the voltage level produced by the component as a result of its operation. It represents the electrical potential difference between the output terminal of the component and a reference point, typically ground. The output voltage is a key factor in determining the performance and functionality of the component, as it dictates the level of voltage that will be delivered to the connected circuit or load. It is often specified in datasheets and technical specifications to ensure compatibility and proper functioning within a given system.
5V - Output Type
The "Output Type" parameter in electronic components refers to the type of signal or data that is produced by the component as an output. This parameter specifies the nature of the output signal, such as analog or digital, and can also include details about the voltage levels, current levels, frequency, and other characteristics of the output signal. Understanding the output type of a component is crucial for ensuring compatibility with other components in a circuit or system, as well as for determining how the output signal can be utilized or processed further. In summary, the output type parameter provides essential information about the nature of the signal that is generated by the electronic component as its output.
Transistor Driver - Input Voltage-Nom
Input Voltage-Nom refers to the nominal or rated input voltage that an electronic component or device is designed to operate within. This parameter specifies the voltage level at which the component is expected to function optimally and safely. It is important to ensure that the actual input voltage supplied to the component does not exceed this nominal value to prevent damage or malfunction. Manufacturers provide this specification to guide users in selecting the appropriate power supply or input voltage source for the component. It is a critical parameter to consider when designing or using electronic circuits to ensure reliable performance and longevity of the component.
15V - Analog IC - Other Type
Analog IC - Other Type is a parameter used to categorize electronic components that are integrated circuits (ICs) designed for analog signal processing but do not fall into more specific subcategories such as amplifiers, comparators, or voltage regulators. These ICs may include specialized analog functions such as analog-to-digital converters (ADCs), digital-to-analog converters (DACs), voltage references, or signal conditioning circuits. They are typically used in various applications where precise analog signal processing is required, such as in audio equipment, instrumentation, communication systems, and industrial control systems. Manufacturers provide detailed specifications for these components to help engineers select the most suitable IC for their specific design requirements.
SWITCHING CONTROLLER - Output Configuration
Output Configuration in electronic components refers to the arrangement or setup of the output pins or terminals of a device. It defines how the output signals are structured and how they interact with external circuits or devices. The output configuration can determine the functionality and compatibility of the component in a circuit design. Common types of output configurations include single-ended, differential, open-drain, and push-pull configurations, each serving different purposes and applications in electronic systems. Understanding the output configuration of a component is crucial for proper integration and operation within a circuit.
Positive, Isolation Capable - Power Dissipation
the process by which an electronic or electrical device produces heat (energy loss or waste) as an undesirable derivative of its primary action.
1.25W - Output Current
The rated output current is the maximum load current that a power supply can provide at a specified ambient temperature. A power supply can never provide more current that it's rated output current unless there is a fault, such as short circuit at the load.
200mA - Voltage - Supply (Vcc/Vdd)
Voltage - Supply (Vcc/Vdd) is a key parameter in electronic components that specifies the voltage level required for the proper operation of the device. It represents the power supply voltage that needs to be provided to the component for it to function correctly. This parameter is crucial as supplying the component with the correct voltage ensures that it operates within its specified limits and performance characteristics. It is typically expressed in volts (V) and is an essential consideration when designing and using electronic circuits to prevent damage and ensure reliable operation.
7.6V~30V - Max Supply Current
Max Supply Current refers to the maximum amount of electrical current that a component can draw from its power supply under normal operating conditions. It is a critical parameter that ensures the component operates reliably without exceeding its thermal limits or damaging internal circuitry. Exceeding this current can lead to overheating, performance degradation, or failure of the component. Understanding this parameter is essential for designing circuits that provide adequate power while avoiding overload situations.
17mA - Control Features
Control features in electronic components refer to specific functionalities or characteristics that allow users to manage and regulate the operation of the component. These features are designed to provide users with control over various aspects of the component's performance, such as adjusting settings, monitoring parameters, or enabling specific modes of operation. Control features can include options for input/output configurations, power management, communication protocols, and other settings that help users customize and optimize the component's behavior according to their requirements. Overall, control features play a crucial role in enhancing the flexibility, usability, and performance of electronic components in various applications.
Frequency Control - Topology
In the context of electronic components, "topology" refers to the arrangement or configuration of the components within a circuit or system. It defines how the components are connected to each other and how signals flow between them. The choice of topology can significantly impact the performance, efficiency, and functionality of the electronic system. Common topologies include series, parallel, star, mesh, and hybrid configurations, each with its own advantages and limitations. Designers carefully select the appropriate topology based on the specific requirements of the circuit to achieve the desired performance and functionality.
Boost, Flyback - Control Mode
In electronic components, "Control Mode" refers to the method or mode of operation used to regulate or control the behavior of the component. This parameter determines how the component responds to input signals or commands to achieve the desired output. The control mode can vary depending on the specific component and its intended function, such as voltage regulation, current limiting, or frequency modulation. Understanding the control mode of an electronic component is crucial for proper integration and operation within a circuit or system.
CURRENT-MODE - Frequency - Switching
"Frequency - Switching" in electronic components refers to the rate at which a device, such as a transistor or switching regulator, turns on and off during operation. This parameter is crucial in determining the efficiency and performance of power converters, oscillators, and other circuits that rely on rapid switching. Higher switching frequencies typically allow for smaller component sizes but may require more advanced design considerations to manage heat and electromagnetic interference.
500kHz - Control Technique
In electronic components, "Control Technique" refers to the method or approach used to regulate and manage the operation of the component. This parameter is crucial in determining how the component functions within a circuit or system. Different control techniques can include analog control, digital control, pulse-width modulation (PWM), and various feedback mechanisms. The choice of control technique can impact the performance, efficiency, and overall functionality of the electronic component. It is important to select the appropriate control technique based on the specific requirements and characteristics of the application in which the component will be used.
PULSE WIDTH MODULATION - Rise Time
In electronics, when describing a voltage or current step function, rise time is the time taken by a signal to change from a specified low value to a specified high value.
50ns - Synchronous Rectifier
Synchronous rectification is a technique for improving the efficiency of rectification by replacing diodes with actively controlled switches, usually power MOSFETs or power bipolar junction transistors (BJT).
No - Fall Time (Typ)
Fall Time (Typ) is a parameter used to describe the time it takes for a signal to transition from a high level to a low level in an electronic component, such as a transistor or an integrated circuit. It is typically measured in nanoseconds or microseconds and is an important characteristic that affects the performance of the component in digital circuits. A shorter fall time indicates faster switching speeds and can result in improved overall circuit performance, such as reduced power consumption and increased data transmission rates. Designers often consider the fall time specification when selecting components for their circuits to ensure proper functionality and efficiency.
50 ns - Nominal Input Voltage
The actual voltage at which a circuit operates can vary from the nominal voltage within a range that permits satisfactory operation of equipment. The word “nominal” means “named”.
15V - Switcher Configuration
Switcher Configuration in electronic components refers to the arrangement or setup of a switcher circuit, which is a type of power supply that converts one form of electrical energy into another. The configuration of a switcher circuit includes the specific components used, such as transistors, diodes, capacitors, and inductors, as well as their interconnections and control mechanisms. The switcher configuration determines the efficiency, voltage regulation, and other performance characteristics of the power supply. Different switcher configurations, such as buck, boost, buck-boost, and flyback, are used for various applications depending on the desired output voltage and current requirements. Understanding and selecting the appropriate switcher configuration is crucial in designing reliable and efficient power supply systems for electronic devices.
SINGLE - Max Duty Cycle
Max Duty Cycle refers to the maximum percentage of time that an electronic component, such as a switch or a power supply, can be in an "on" state during a defined time period. It is an important parameter in pulse-width modulated (PWM) systems and helps determine how often a device can operate without overheating or sustaining damage. By specifying the maximum duty cycle, manufacturers provide guidance on the safe operational limits of the component, ensuring reliability and efficiency in various applications.
50 % - Duty Cycle (Max)
The "Duty Cycle (Max)" parameter in electronic components refers to the maximum percentage of time that a signal is active or on within a specific period. It is commonly used in components such as pulse-width modulation (PWM) controllers, oscillators, and timers. A duty cycle of 100% means the signal is always on, while a duty cycle of 0% means the signal is always off. Understanding the maximum duty cycle is important for ensuring proper operation and performance of the electronic component within its specified limits. It is typically expressed as a percentage and helps determine the amount of power or energy being delivered by the signal.
48% - Number of Output Phases1
- Height3.32mm
- Length10.92mm
- Width6.6mm
- REACH SVHC
The parameter "REACH SVHC" in electronic components refers to the compliance with the Registration, Evaluation, Authorization, and Restriction of Chemicals (REACH) regulation regarding Substances of Very High Concern (SVHC). SVHCs are substances that may have serious effects on human health or the environment, and their use is regulated under REACH to ensure their safe handling and minimize their impact.Manufacturers of electronic components need to declare if their products contain any SVHCs above a certain threshold concentration and provide information on the safe use of these substances. This information allows customers to make informed decisions about the potential risks associated with using the components and take appropriate measures to mitigate any hazards.Ensuring compliance with REACH SVHC requirements is essential for electronics manufacturers to meet regulatory standards, protect human health and the environment, and maintain transparency in their supply chain. It also demonstrates a commitment to sustainability and responsible manufacturing practices in the electronics industry.
No SVHC - RoHS Status
RoHS means “Restriction of Certain Hazardous Substances” in the “Hazardous Substances Directive” in electrical and electronic equipment.
ROHS3 Compliant - Lead Free
Lead Free is a term used to describe electronic components that do not contain lead as part of their composition. Lead is a toxic material that can have harmful effects on human health and the environment, so the electronics industry has been moving towards lead-free components to reduce these risks. Lead-free components are typically made using alternative materials such as silver, copper, and tin. Manufacturers must comply with regulations such as the Restriction of Hazardous Substances (RoHS) directive to ensure that their products are lead-free and environmentally friendly.
Lead Free
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