Passive Components Blog
No Result
View All Result
  • Home
  • NewsFilter
    • All
    • Aerospace & Defence
    • Antenna
    • Applications
    • Automotive
    • Capacitors
    • Circuit Protection Devices
    • electro-mechanical news
    • Filters
    • Fuses
    • Inductors
    • Industrial
    • Integrated Passives
    • inter-connect news
    • Market & Supply Chain
    • Market Insights
    • Medical
    • Modelling and Simulation
    • New Materials & Supply
    • New Technologies
    • Non-linear Passives
    • Oscillators
    • Passive Sensors News
    • Resistors
    • RF & Microwave
    • Telecommunication
    • Weekly Digest

    Bourns Completes Rakon Acquisition, Enters Timing Market

    Knowles Releases 3825 X1/Y2 Safety MLCCs for High‑Voltage Applications

    Knowles Expands High Q Ceramic Core Inductors

    TAIYO YUDEN Releases 220uF 1210 Automotive MLCC

    HEICO’s Exxelia Expands High-Voltage Ceramic Capacitor Portfolio with CalRamic Acquisition

    Vishay Extends Automotive Ferrite Beads for High‑Current EMC Noise Filtering

    CapXon Earns EcoVadis Bronze Medal for Sustainability Performance

    All‑Water Supercapacitor Based on 1‑nm Clay Channels and Nanoconfined Water Electrolyte

    Littelfuse Unveils High‑Current 48V SMD Fuse for AI Data Center Protection

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
    • Feedthrough
    • Derating
    • Dielectric Constant
    • New Products
    • Market Reports
  • VideoFilter
    • All
    • Antenna videos
    • Capacitor videos
    • Circuit Protection Video
    • Filter videos
    • Fuse videos
    • Inductor videos
    • Inter-Connect Video
    • Non-linear passives videos
    • Oscillator videos
    • Passive sensors videos
    • Resistor videos

    Why Isolated DC/DC Power Supplies Fail Late, Würth Elektronik Podcast

    Designing 800 V DC EMC Filters: Calculation, Simulation and Measurement

    Current Sense Transformer Datasheet and Design‑in Guide

    Designing a USB Type‑C Flyback Planar Transformer with Frenetic’s Planar Tool

    Magnetics Design in High‑Frequency GaN Converters

    Qi2 Wireless Charging: Inductors, Capacitors and EMC Filters

    Two‑capacitor paradox explained for engineers

    Capacitances of Nonlinear MLCCs: What Datasheets Don’t Tell You

    Tapped Inductor Buck Converter Fundamentals

    Trending Tags

    • Capacitors explained
    • Inductors explained
    • Resistors explained
    • Filters explained
    • Application Video Guidelines
    • EMC
    • New Products
    • Ripple Current
    • Simulation
    • Tantalum vs Ceramic
  • Knowledge Blog
  • DossiersNew
  • Suppliers
    • Who is Who
  • PCNS
    • PCNS 2025
    • PCNS 2023
    • PCNS 2021
    • PCNS 2019
    • PCNS 2017
  • Events
  • Home
  • NewsFilter
    • All
    • Aerospace & Defence
    • Antenna
    • Applications
    • Automotive
    • Capacitors
    • Circuit Protection Devices
    • electro-mechanical news
    • Filters
    • Fuses
    • Inductors
    • Industrial
    • Integrated Passives
    • inter-connect news
    • Market & Supply Chain
    • Market Insights
    • Medical
    • Modelling and Simulation
    • New Materials & Supply
    • New Technologies
    • Non-linear Passives
    • Oscillators
    • Passive Sensors News
    • Resistors
    • RF & Microwave
    • Telecommunication
    • Weekly Digest

    Bourns Completes Rakon Acquisition, Enters Timing Market

    Knowles Releases 3825 X1/Y2 Safety MLCCs for High‑Voltage Applications

    Knowles Expands High Q Ceramic Core Inductors

    TAIYO YUDEN Releases 220uF 1210 Automotive MLCC

    HEICO’s Exxelia Expands High-Voltage Ceramic Capacitor Portfolio with CalRamic Acquisition

    Vishay Extends Automotive Ferrite Beads for High‑Current EMC Noise Filtering

    CapXon Earns EcoVadis Bronze Medal for Sustainability Performance

    All‑Water Supercapacitor Based on 1‑nm Clay Channels and Nanoconfined Water Electrolyte

    Littelfuse Unveils High‑Current 48V SMD Fuse for AI Data Center Protection

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
    • Feedthrough
    • Derating
    • Dielectric Constant
    • New Products
    • Market Reports
  • VideoFilter
    • All
    • Antenna videos
    • Capacitor videos
    • Circuit Protection Video
    • Filter videos
    • Fuse videos
    • Inductor videos
    • Inter-Connect Video
    • Non-linear passives videos
    • Oscillator videos
    • Passive sensors videos
    • Resistor videos

    Why Isolated DC/DC Power Supplies Fail Late, Würth Elektronik Podcast

    Designing 800 V DC EMC Filters: Calculation, Simulation and Measurement

    Current Sense Transformer Datasheet and Design‑in Guide

    Designing a USB Type‑C Flyback Planar Transformer with Frenetic’s Planar Tool

    Magnetics Design in High‑Frequency GaN Converters

    Qi2 Wireless Charging: Inductors, Capacitors and EMC Filters

    Two‑capacitor paradox explained for engineers

    Capacitances of Nonlinear MLCCs: What Datasheets Don’t Tell You

    Tapped Inductor Buck Converter Fundamentals

    Trending Tags

    • Capacitors explained
    • Inductors explained
    • Resistors explained
    • Filters explained
    • Application Video Guidelines
    • EMC
    • New Products
    • Ripple Current
    • Simulation
    • Tantalum vs Ceramic
  • Knowledge Blog
  • DossiersNew
  • Suppliers
    • Who is Who
  • PCNS
    • PCNS 2025
    • PCNS 2023
    • PCNS 2021
    • PCNS 2019
    • PCNS 2017
  • Events
No Result
View All Result
Passive Components Blog
No Result
View All Result

Researches Combine Principles of Battery and Capacitors in Novel Solid State Battery

7.4.2020
Reading Time: 3 mins read
A A
The nature of solid state battery self-cycling. Fermi levels during self-cycling associated with an Al/Li-glass/Cu cell. a) before dipole alignment with no interface phases changing the Fermi levels of the Al and Cu; b) while self-cycling: the chemical potential of the negative electrode oscillates between that of the Al and of the Li. Source: Braga et col.

The nature of solid state battery self-cycling. Fermi levels during self-cycling associated with an Al/Li-glass/Cu cell. a) before dipole alignment with no interface phases changing the Fermi levels of the Al and Cu; b) while self-cycling: the chemical potential of the negative electrode oscillates between that of the Al and of the Li. Source: Braga et col.

University of Porto researchers have created a simple self-charging battery which offers power solutions for various devices. To create the battery, the researchers used ferroelectric glass electrolyte inside of an electrochemical cell.

Collaborative team of researchers based in Porto, Portugal and Texas, United States hope to make this user-unfriendly requirement a thing of the past with the development of a new type of battery that can recharge itself without losing energy. 

RelatedPosts

Bourns Completes Rakon Acquisition, Enters Timing Market

Knowles Releases 3825 X1/Y2 Safety MLCCs for High‑Voltage Applications

Knowles Expands High Q Ceramic Core Inductors

The team’s research, which was published by AIP Publishing in Applied Physics Reviews, propose a new type of battery that combines negative capacitance and negative resistance within the same cell, allowing the cell to self-charge without losing energy, which has important implications for long-term storage and improved output power for batteries.

These batteries can be used in extremely low-frequency communications and in devices such as blinking lights, electronic beepers, voltage-controlled oscillators, inverters, switching power supplies, digital converters and function generators, and eventually for technologies related to modern computers.

In Applied Physics Reviews, from AIP Publishing, Helena Braga and colleagues at the University of Porto in Portugal and the University of Texas at Austin, report making their very simple battery with two different metals, as electrodes and a lithium or sodium glass electrolyte between them.

“The glass electrolyte we developed was lithium-rich, and so I thought that we could make a battery in which the electrolyte would feed both electrodes with lithium ions, on charge and discharge with no need for lithium metal,” said Braga.

This work is significant, because it unifies the theory behind all solid-state devices — such as batteries, capacitors, photovoltaics and transistors – where the different materials in electrical contact exhibit the properties of the combined material instead of those of the individual materials.

Bistable energy landscape for a lithium-glass ferroelectric-electrolyte in contact with an aluminum-negative electrode and self-cycling process in an electrochemical aluminum/lithium glass/copper cell. a) Variation of the potential energy with plated lithium leading to negative capacitance/self-charge and negative resistance/self-cycling. b) Self-charge and self-cycling processes upon alignment of the dipoles in the ferroelectric-electrolyte due to the electrical necessity of aligning the Fermi levels. CREDIT: Braga et al.

“When one of the materials is an insulator or dielectric, such as an electrolyte, it will locally change its composition to form capacitors that can store energy and align the Fermi levels within the device,” said Braga.

In a battery, the open circuit potential difference between electrodes is due to an electrical need to align the Fermi levels, a measure of the energy of the least tightly held electrons within a solid, which is also responsible for the polarity of the electrodes. The chemical reactions come later and are fed by this electrical potential energy stored in the capacitors.

“Our electrochemical cells, which in principle are simpler than batteries, are all about self-organization, which is the substance of life,” Braga said.

To contribute to a more sustainable world, self-cycling can be stopped or mitigated by not allowing a leap in the Fermi levels or by configuring a negative resistance to happen.

“This can be obtained by having the negative electrode of the same material as the positive ions of the electrolyte,” said Braga. “It gives rise to a device that self-charges without self-cycling — increasing the energy stored in it — as opposed to the natural degradation of the electrochemical process that makes the energy stored decrease by dissipation of heat. The latter has applications in all energy storage devices, such as batteries and capacitors, and can substantially improve their autonomy.”

Related

Source: AIP Publishing

Recent Posts

Knowles Releases 3825 X1/Y2 Safety MLCCs for High‑Voltage Applications

11.6.2026
25

TAIYO YUDEN Releases 220uF 1210 Automotive MLCC

11.6.2026
37

HEICO’s Exxelia Expands High-Voltage Ceramic Capacitor Portfolio with CalRamic Acquisition

10.6.2026
36

CapXon Earns EcoVadis Bronze Medal for Sustainability Performance

10.6.2026
24

All‑Water Supercapacitor Based on 1‑nm Clay Channels and Nanoconfined Water Electrolyte

10.6.2026
35

Modelithics Releases COMPLETE Library v26.2 for Keysight Genesys

8.6.2026
21

Power Converter Dossier: Passive Components Design and Selection Guide 2026

5.6.2026
62

Evans Group Unifies Four High-Rel Capacitor Leaders

5.6.2026
34

Skeleton Releases Graphene‑Based UPS for AI Data Centers

5.6.2026
43

Upcoming Events

Jun 16
16:00 - 17:00 CEST

EMC with EMC – EMC‑compliant design with electromechanical connectors

Jul 14
16:00 - 17:00 CEST

EMC Design Essentials: Mastering Varistors and Common Mode Chokes

Jul 21
16:00 - 17:00 CEST

Safety by design: X and Y Interference suppression capacitors for power line filters

View Calendar

Popular Posts

  • Buck Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • Boost Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • LLC Resonant Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • MLCC and Ceramic Capacitors

    0 shares
    Share 0 Tweet 0
  • Flyback Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • SEPIC Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • Earthing Systems and IEC Classification Explained

    0 shares
    Share 0 Tweet 0
  • Dual Active Bridge (DAB) Topology

    0 shares
    Share 0 Tweet 0
  • What Electronics Engineer Needs to Know About Passive Low Pass Filters

    0 shares
    Share 0 Tweet 0
  • MLCC Case Sizes Standards Explained

    0 shares
    Share 0 Tweet 0

Newsletter Subscription

 

Passive Components Blog

© EPCI - Leading Passive Components Educational and Information Site

  • Home
  • Privacy Policy
  • EPCI Membership & Advertisement
  • About

No Result
View All Result
  • Home
  • Knowledge Blog
  • Dossiers
  • PCNS

© EPCI - Leading Passive Components Educational and Information Site

This website uses cookies. By continuing to use this website you are giving consent to cookies being used. Visit our Privacy and Cookie Policy.
Go to mobile version