A Complete Guide to Murata GRM155C80J106ME11D Datasheet
GRM 10μF Ceramic Capacitor ±20% X6S 0.039Lx0.020W 1.00mmx0.50mm -55°C~105°C 2 Terminations Surface Mount, MLCC 0402 (1005 Metric)
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GRM 10μF Ceramic Capacitor ±20% X6S 0.039Lx0.020W 1.00mmx0.50mm -55°C~105°C 2 Terminations Surface Mount, MLCC 0402 (1005 Metric)
Access the Murata GRM155C80J106ME11D datasheet, specs, and documentation. Find key features, applications, and compliance info for your circuit designs.
Product Introduction
You can find the official datasheet for Murata GRM155C80J106ME11D here. The datasheet gives you important details, such as electrical specifications, key features, usage notes, and compliance information. Always use the official datasheet when you select parts or design circuits. This helps you make safe and smart choices for your projects.
Murata GRM155C80J106ME11D Overview
Features
You will find that the Murata GRM155C80J106ME11D is a multilayer ceramic capacitor (MLCC) designed for surface mounting. This component offers a balance of high capacitance and small size, making it useful in many modern electronic devices. Here is a table that summarizes its main features:
| Feature | Specification |
|---|---|
| Capacitance Value | 10μF |
| Voltage Rating | 6.3V DC |
| Tolerance | ±20% |
| Dielectric Type | X6S |
| Package Size | 0402 (1.0 x 0.5 x 0.5 mm) |
| Mounting Technology | Surface Mount |
| Operating Temperature | -55°C to 105°C |
| Termination Style | Pad |
| Number of Terminals | 2 |
| Construction | Flat |
| Case Style | Ceramic Chip |
| Packaging | Tape and Reel |
| Special Features | Large Capacity, Small Size |
| Lead-Free / RoHS Status | Lead-free, RoHS Compliant |
Tip: The small 0402 package lets you save space on your circuit board while still getting a high 10μF capacitance.
Applications
You can use the Murata GRM155C80J106ME11D in many types of electronic equipment. Its stable performance and compact size make it a popular choice for engineers. Here are some common application areas:
Automotive electronics
Consumer electronics
Communication networks
Security monitoring systems
Wireless interconnection devices
Smart touch devices
Industrial control systems
Medical devices, such as wearable health trackers
Power management circuits
Computers and peripherals
Motor control units
Smart home products
You will often see this capacitor used for:
Decoupling in digital and analog circuits
Filtering noise and smoothing voltage in power supplies and signal lines
Coupling AC signals in electronic circuits
The Murata GRM155C80J106ME11D works well in portable medical devices, IoT sensor nodes, smartphones, tablets, and automotive systems. Its wide temperature range and RoHS compliance help you meet strict industry standards.
Datasheet Access
Official Sources
You should always start your search for datasheets at the manufacturer’s website. For the Murata GRM155C80J106ME11D, visit the Murata official product page. On this page, you will see a link to download the datasheet in PDF format. This file gives you the most accurate and current information about the part. You can also find technical notes, safety data, and other important documents here.
Tip: Always check the date on the datasheet. Murata updates their documents when they improve products or add new details.
Distributor Links
You can also find datasheets on trusted distributor websites. Distributors like Mouser, DigiKey, and Arrow list the Murata GRM155C80J106ME11D in their catalogs. Here is how you can access the datasheet from these sites:
Mouser: Go to the Mouser website and search for the part number. Click on the product page. You will see a datasheet link under the product details.
DigiKey: Enter the part number in the DigiKey search bar. On the product page, look for the "Documents & Media" section. The datasheet link is easy to find.
Arrow: Search for the part on Arrow’s site. The product page will have a datasheet download button.
Using these official sources helps you avoid outdated or incorrect information. Distributors update their links when Murata releases new datasheets. You get the latest specs and compliance details every time.
Note: Never rely on random internet sources for datasheets. Only use Murata or authorized distributors to make sure your information is correct and safe for your designs.
Key Specifications
Electrical Specs
You need to know the main electrical values before you use the Murata GRM155C80J106ME11D in your design. These values help you decide if this capacitor fits your circuit.
| Parameter | Value |
|---|---|
| Rated Capacitance | 10 μF |
| Rated Voltage | 6.3 V |
| Tolerance | ±20% |
This capacitor gives you a 10 microfarad (μF) capacitance. It can handle up to 6.3 volts of direct current (DC). The tolerance is ±20%, which means the actual capacitance can be a bit higher or lower than 10 μF. You should always check these numbers in your design to make sure the capacitor works as expected.
The dielectric type is ceramic, and the temperature characteristic is X6S. This means the capacitance stays stable over a wide temperature range. You can trust this part for circuits that need steady performance.
Tip: Always match the voltage rating to your circuit. Never use a capacitor at a voltage higher than its rating.
Physical Dimensions
The Murata GRM155C80J106ME11D comes in a very small package. The size code is 0402, which means the capacitor measures about 1.0 mm long and 0.5 mm wide. The height is also about 0.5 mm. This tiny size lets you fit many capacitors on a small circuit board.
| Attribute | Value |
|---|---|
| Package | 0402 (metric 1005) |
| Length | 1.0 mm |
| Width | 0.5 mm |
| Height | 0.5 mm |
| Mounting | Surface Mount |
You can use this capacitor in compact devices like smartphones, tablets, and wearables. The small size helps you save space and keep your designs neat.
Temperature & Reliability
You want your circuits to work in many environments. The Murata GRM155C80J106ME11D has a temperature characteristic code of X6S. This means it works from -55°C up to 105°C. The ceramic dielectric keeps the capacitance stable, even when the temperature changes.
Maximum Operating Temperature: 105°C
Operating Temperature Range: -55°C to 105°C
Voltage Rating: 6.3 V
Derating: Recommended
You should follow derating guidelines. This means you use the capacitor below its maximum voltage and temperature to make it last longer. For example, if your circuit gets hot, you might use a lower voltage than 6.3 V. This helps prevent failure and keeps your design safe.
Note: The datasheet does not give exact derating curves, but you should always use a safety margin in your design.
The Murata GRM155C80J106ME11D meets RoHS standards, so it is safe for the environment. You can use it in many industries, including automotive and medical, where reliability matters most.
Using the Datasheet
Part Number Guide
You can learn a lot from the part number on a capacitor. The Murata GRM155C80J106ME11D part number tells you about the size, value, and features of the component. Each letter and number has a meaning. Here is how you can break it down:
| Section | Example Value | What It Means |
|---|---|---|
| Series | GRM | Murata MLCC Series |
| Size Code | 155 | 0402 (1.0 x 0.5 mm) |
| Dielectric | C | X6S Temperature Characteristic |
| Rated Voltage | 80 | 6.3V |
| Capacitance | J106 | 10μF (106 = 10 x 10^6 pF) |
| Tolerance | M | ±20% |
| Packaging | E | Tape and Reel |
| Internal Code | 11D | Manufacturer Specific |
You can use this table to check if you have the right part for your project. Always match the part number to your design needs.
Interpreting Tables
The datasheet has many tables and charts. These give you important details about the capacitor. You should know how to read them to make good choices.
Electrical Characteristics Table:
This table shows the rated capacitance, voltage, tolerance, and temperature range. You can use it to compare different parts.Derating Table:
This table helps you see how much voltage the capacitor can handle at different temperatures. You should use less than the maximum voltage if your circuit gets hot.Dimensions Table:
This table gives the length, width, and height. You can use these numbers to plan your PCB layout.
Tip: Look for notes at the bottom of each table. These notes often explain special conditions or limits.
Design Use
You can use the datasheet to pick the right capacitor for your circuit. Here are some steps you can follow:
Check the Capacitance and Voltage:
Make sure the 10μF and 6.3V ratings fit your needs.Review the Tolerance:
The ±20% tolerance means the actual value can change. You should decide if this is okay for your circuit.Look at the Temperature Range:
The X6S dielectric works from -55°C to 105°C. You should check if your device will stay in this range.Apply Derating:
If your circuit gets hot, use a lower voltage than 6.3V. This helps the capacitor last longer.Check the Size:
The 0402 package is very small. You should make sure your PCB can fit this part.Confirm Compliance:
The part is RoHS compliant. You can use it in products that need to meet safety rules.
You can use the Murata GRM155C80J106ME11D datasheet to make smart choices. Good datasheet reading helps you avoid mistakes and build better circuits.
Additional Resources
Application Notes
You can find helpful application notes and reference sheets on the Murata website. These documents give you important design tips and safety information. When you design with this capacitor, you should review these notes:
PCB land dimensions help you prevent chip cracking from too much solder or board bending.
Soldering and mounting cautions show you how to avoid mechanical and thermal stress.
Board design recommendations help you reduce strain by choosing the right board size, thickness, and material.
Handling precautions remind you not to touch the capacitor with bare hands and to keep it away from conductive liquids.
Cleaning cautions warn you about using too much ultrasonic cleaning, which can damage the chip or solder joints.
Electrical testing guidelines explain how to position test jigs to avoid stressing the part.
Examples of good and bad board separation jigs help you reduce mechanical stress.
Operating temperature limits remind you to pick capacitors with the right temperature rating.
These notes help you keep your designs reliable and safe.
PCB Footprints & Models
You can find schematic symbols, PCB footprints, and 3D models for this capacitor on several platforms. These resources help you design your printed circuit board quickly and accurately.
SnapEDA and Ultra Librarian offer free downloads of footprints and 3D models.
Many EDA tools, like Altium Designer and KiCad, include libraries for Murata capacitors.
The Murata website sometimes provides CAD data and recommended land patterns in the product details section.
| Resource | What You Get |
|---|---|
| SnapEDA | Footprints, 3D Models |
| Ultra Librarian | Symbols, Footprints, Models |
| Altium/KiCad | Built-in Libraries |
| Murata Website | CAD Data, Land Patterns |
Using the right footprint and model helps you avoid layout errors and speeds up your design process.
Support & Compliance
You have several ways to get technical support for your capacitor questions:
Use the Murata contact form for technical support, price quotes, or sales questions.
Visit the contact information page to find local sales offices, distributors, or representatives.
Check the FAQs for answers to common questions.
Use the keyword search to find product-specific details.
Join the Murata Community Forum for help from other engineers.
Murata capacitors meet RoHS standards, so you can use them in products that require environmental compliance.
If you need more help, you can always reach out to Murata’s support team or visit their website for the latest documents and updates.
You should always check the official Murata GRM155C80J106ME11D datasheet before you start your design or order parts. This helps you get the right information and avoid mistakes. Use trusted sources for datasheets and models. If you need more help, reach out to Murata’s support team or explore their technical resources. 📚
FAQ
What does the "X6S" dielectric code mean?
The "X6S" code tells you about the temperature range and stability of the capacitor. It means the part works from -55°C to 105°C. The capacitance changes very little as the temperature changes.
Can I use this capacitor for power supply filtering?
Yes, you can use the GRM155C80J106ME11D for power supply filtering. Its 10μF value and stable ceramic dielectric help reduce noise and smooth voltage in many circuits.
How do I read the capacitance from the part number?
Look for the three-digit code in the part number. For example, "106" means 10 followed by six zeros in picofarads (10,000,000 pF), which equals 10μF.
Is this capacitor safe for lead-free and RoHS-compliant designs?
Yes, this capacitor is lead-free and meets RoHS standards. You can use it in products that require environmental safety and compliance.
Where can I find the recommended PCB footprint?
You can find the recommended PCB footprint in the official Murata datasheet. You may also download footprints from SnapEDA or Ultra Librarian for your design software.
Specifications
- TypeParameter
- 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.
Surface Mount - 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.
Surface Mount, MLCC - Package / Case
refers to the protective housing that encases an electronic component, providing mechanical support, electrical connections, and thermal management.
0402 (1005 Metric) - Terminal Shape
Terminal Shape in electronic components refers to the physical design of the connection points on the component that allow for electrical connections to be made. These terminals can come in various shapes such as pins, leads, pads, or terminals with specific configurations like surface mount or through-hole. The terminal shape is important as it determines how the component can be mounted on a circuit board or connected to other components. Different terminal shapes are used based on the specific requirements of the electronic circuit design and manufacturing process.
WRAPAROUND - Material
In electronic components, the parameter "Material" refers to the substance or material used in the construction of the component. The choice of material is crucial as it directly impacts the component's performance, durability, and other characteristics. Different materials have varying properties such as conductivity, resistance to heat, corrosion resistance, and mechanical strength, which determine how the component functions in a circuit. Common materials used in electronic components include metals like copper and aluminum, semiconductors like silicon, insulators like ceramics and plastics, and various alloys. Selecting the appropriate material is essential for designing reliable and efficient electronic components.
Ceramic - 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.
-55°C~105°C - 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.
Tape & Reel (TR) - Series
In electronic components, the "Series" refers to a group of products that share similar characteristics, designs, or functionalities, often produced by the same manufacturer. These components within a series typically have common specifications but may vary in terms of voltage, power, or packaging to meet different application needs. The series name helps identify and differentiate between various product lines within a manufacturer's catalog.
GRM - Size / Dimension
In electronic components, the parameter "Size / Dimension" refers to the physical dimensions of the component, such as its length, width, and height. These dimensions are crucial for determining how the component will fit into a circuit or system, as well as for ensuring compatibility with other components and the overall design requirements. The size of a component can also impact its performance characteristics, thermal properties, and overall functionality within a given application. Engineers and designers must carefully consider the size and dimensions of electronic components to ensure proper integration and functionality within their designs.
0.039Lx0.020W 1.00mmx0.50mm - 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.
±20% - 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 - Pbfree Code
The "Pbfree Code" parameter in electronic components refers to the code or marking used to indicate that the component is lead-free. Lead (Pb) is a toxic substance that has been widely used in electronic components for many years, but due to environmental concerns, there has been a shift towards lead-free alternatives. The Pbfree Code helps manufacturers and users easily identify components that do not contain lead, ensuring compliance with regulations and promoting environmentally friendly practices. It is important to pay attention to the Pbfree Code when selecting electronic components to ensure they meet the necessary requirements for lead-free applications.
yes - 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 Terminations2
- 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 - Temperature Coefficient
The resistance-change factor per degree Celsius of temperature change is called the temperature coefficient of resistance. This factor is represented by the Greek lower-case letter “alpha” (α). A positive coefficient for a material means that its resistance increases with an increase in temperature.
X6S - 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) - with Nickel (Ni) barrier - Applications
The parameter "Applications" in electronic components refers to the specific uses or functions for which a component is designed. It encompasses various fields such as consumer electronics, industrial automation, telecommunications, automotive, and medical devices. Understanding the applications helps in selecting the right components for a particular design based on performance, reliability, and compatibility requirements. This parameter also guides manufacturers in targeting their products to relevant markets and customer needs.
General Purpose - HTS Code
HTS (Harmonized Tariff Schedule) codes are product classification codes between 8-1 digits. The first six digits are an HS code, and the countries of import assign the subsequent digits to provide additional classification. U.S. HTS codes are 1 digits and are administered by the U.S. International Trade Commission.
8532.24.0020 - Capacitance
Capacitance is a fundamental electrical property of electronic components that describes their ability to store electrical energy in the form of an electric field. It is measured in farads (F) and represents the ratio of the amount of electric charge stored on a component to the voltage across it. Capacitors are passive components that exhibit capacitance and are commonly used in electronic circuits for various purposes such as filtering, energy storage, timing, and coupling. Capacitance plays a crucial role in determining the behavior and performance of electronic systems by influencing factors like signal propagation, frequency response, and power consumption.
10μF - Voltage - Rated DC
Voltage - Rated DC is a parameter that specifies the maximum direct current (DC) voltage that an electronic component can safely handle without being damaged. This rating is crucial for ensuring the proper functioning and longevity of the component in a circuit. Exceeding the rated DC voltage can lead to overheating, breakdown, or even permanent damage to the component. It is important to carefully consider this parameter when designing or selecting components for a circuit to prevent any potential issues related to voltage overload.
6.3V - Packing Method
The packing method in electronic components refers to the technique used to package and protect the component during shipping and handling. It encompasses various forms including tape and reel, tray, tube, or bulk packaging, each suited for different types of components and manufacturing processes. The choice of packing method can affect the ease of handling, storage, and the efficiency of assembly in automated processes. Additionally, it plays a crucial role in ensuring the reliability and integrity of the components until they are used in electronic devices.
TR, PAPER, 7 INCH - Case Code (Metric)
Case Code (Metric) in electronic components refers to a standardized system that specifies the dimensions of surface-mount devices (SMD) in millimeters, consisting of a four-digit number where the first two digits represent the width and the last two digits represent the height of the component, measured in tenths of a millimeter. The metric case codes are standardized by organizations such as the EIA and IEC, and are often compared to the Imperial code which uses inches, allowing for easier identification and selection of components across different regions and industries. This coding system is widely used in the design and manufacturing of electronic devices, particularly in applications requiring compact and efficient component layouts, and is essential for engineers and designers to ensure proper component selection and facilitate the assembly process in electronic manufacturing.
1005 - Case Code (Imperial)
The term "Case Code (Imperial)" in electronic components refers to a standardized system used to specify the physical dimensions and package types of components, particularly capacitors and resistors. This code helps manufacturers and engineers identify the size and form factor of the component, ensuring compatibility with circuit designs and PCB layouts. In the context of electronic components, the Case Code (Imperial) typically follows a numerical format that indicates the length and width of the component in inches. For example, a Case Code of 1206 signifies a component that measures 0.12 inches by 0.06 inches. This coding system is essential for selecting the correct components for specific applications, as it provides a quick reference to the physical characteristics of the part, including its footprint and mounting style.
0402 - Temperature Characteristics Code
The "Temperature Characteristics Code" in electronic components refers to a code or designation that indicates how the component's electrical properties vary with changes in temperature. This code helps users understand how the component will perform under different temperature conditions. It typically consists of a series of letters or numbers that represent the component's temperature coefficient, which is a measure of how the component's electrical characteristics change with temperature. Understanding the temperature characteristics code is important for selecting components that will operate reliably in specific temperature environments and for ensuring the overall performance and stability of electronic circuits.
X6S - Multilayer
The parameter "Multilayer" in electronic components refers to the construction of the component using multiple layers of materials. This construction technique involves stacking several layers of conductive and insulating materials to create a compact and efficient component. Multilayer components are commonly used in various electronic devices to save space and improve performance. The layers are typically interconnected using vias or other methods to ensure proper functionality. Overall, the multilayer design allows for increased functionality and complexity in a smaller form factor, making it a popular choice in modern electronics.
Yes - Height700μm
- Thickness (Max)
Thickness (Max) is a parameter in electronic components that refers to the maximum allowable thickness of the component. This measurement is important for ensuring proper fit and compatibility within a circuit or device. It is typically specified in the component's datasheet and is crucial for mechanical design considerations, such as determining clearance requirements and ensuring that the component can be properly mounted or soldered onto a PCB. Exceeding the maximum thickness limit can lead to issues such as interference with neighboring components, improper assembly, or mechanical stress that may affect the component's performance or reliability.
0.028 0.70mm - Thickness
Thickness in electronic components refers to the measurement of how thick a particular material or layer is within the component structure. It can pertain to various aspects, such as the thickness of a substrate, a dielectric layer, or conductive traces. This parameter is crucial as it impacts the electrical, mechanical, and thermal properties of the component, influencing its performance and reliability in electronic circuits.
711.2μm - RoHS Status
RoHS means “Restriction of Certain Hazardous Substances” in the “Hazardous Substances Directive” in electrical and electronic equipment.
ROHS3 Compliant
Parts with Similar Specs
- ImagePart NumberManufacturerCapacitanceMountPackage / CaseToleranceHeightRoHS StatusMoisture Sensitivity Level (MSL)Number of TerminationsView Compare
GRM155C80J106ME11D
10μF
Surface Mount
0402 (1005 Metric)
±20%
700 μm
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1 (Unlimited)
2
10μF
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±20%
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2
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±20%
1.25 mm
ROHS3 Compliant
1 (Unlimited)
2
10μF
Surface Mount
0603 (1608 Metric)
±20%
800 μm
ROHS3 Compliant
1 (Unlimited)
2
Datasheet PDF
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