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    Modelithics Library for MATLAB: Measurement-Based Models for Microwave and RF Passive Components

    Bourns Extends Multilayer Chip Inductors Offer for RF and Wireless Designs

    Researchers developed a polymer capacitor by combining two cheap, commercially available plastics. The new polymer capacitor makes use of the transparent material — pictured here, with vintage Penn State athletic marks visible through it — to store four times the energy and withstand significantly more heat.  Credit: Penn State

    Penn State Demonstrated Polymer Alloy Capacitor Film with 4× Energy Density up to 250C

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    Modelithics Library for MATLAB: Measurement-Based Models for Microwave and RF Passive Components

    Bourns Extends Multilayer Chip Inductors Offer for RF and Wireless Designs

    Researchers developed a polymer capacitor by combining two cheap, commercially available plastics. The new polymer capacitor makes use of the transparent material — pictured here, with vintage Penn State athletic marks visible through it — to store four times the energy and withstand significantly more heat.  Credit: Penn State

    Penn State Demonstrated Polymer Alloy Capacitor Film with 4× Energy Density up to 250C

    ECIA January 2026 Reports Strong Sales Confidence

    Vishay Unveils Ultra-Compact 0201 Thick Film Chip Resistors

    Würth Elektronik Component Data Live in Accuris

    Coilcraft Releases Automotive Common Mode Chokes

    MLCC Manufacturers Consider Price Increase as AI Demand Outpaces Supply

    YAGEO Extends Antenna Portfolio with Wi‑Fi 6E/7 and Tri‑band GNSS Solutions

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
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    Calculating Resistance Value of a Flyback RC Snubber 

    One‑Pulse Characterization of Nonlinear Power Inductors

    Thermistor Linearization Challenges

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TDK Releases CeraCharge™ – first rechargeable solid-state SMD battery based on similarity with MLCC technology

23.11.2017
Reading Time: 2 mins read
A A

source: TDK news

TDK Corporation presents CeraCharge™ – the first solid-state rechargeable battery in SMD technology.

RelatedPosts

Modelithics Library for MATLAB: Measurement-Based Models for Microwave and RF Passive Components

Bourns Extends Multilayer Chip Inductors Offer for RF and Wireless Designs

Penn State Demonstrated Polymer Alloy Capacitor Film with 4× Energy Density up to 250C

Depending on requirements, the number of charge/discharge cycles this battery is able to perform ranges from several dozens to up to 1000. With its compact EIA 1812 package (4.5 x 3.2 x 1.1 mm) it offers a capacity of 100 µAh at a rated voltage of 1.4 V. This battery is also capable of delivering currents in the order of several mA for short periods. Thanks to the SMD technology, placement of the battery is easy and it can be processed using reflow soldering techniques, which in turn reduces the production cost of the end product.

In contrast to most common technologies, CeraCharge is a solid-state rechargeable battery with no liquid electrolyte. The battery is based on a multilayer technology, similar to MLCCs. This means that a relatively high energy density and smallest volume are combined with the safety and high volume manufacturing benefits of ceramic multilayer components. In addition, the use of a solid ceramic element as an electrolyte rules out the risk of fire, explosion, or leakage of liquid electrolyte.

To increase the capacity and the voltage, any number of individual CeraCharge components can be connected in series and parallel. This opens up a wide range of possible applications – particularly in devices intended for the Internet of Things. These include, for example, real-time clocks, Bluetooth beacons, wearables or systems for energy harvesting.

Main applications

  • IoT devices
  • real-time clocks
  • Bluetooth beacons
  • systems for energy harvesting.

Main features and benefits

  • Compact SMD design in EIA 1812 case size
  • Easy placement and processing using reflow soldering techniques
  • Solid ceramic electrolyte rules out the risks of fire, explosion, or leakage of liquid electrolyte.

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