Info_PILLAR 2 - HORIZON EUROPE

Pillar 2: Global Challenges and European Industrial Competitiveness

The Global Challenges and European Industrial Competiveness pillar supports research relating to societal challenges and reinforces technological and industrial capacities through 6 CLUSTERS.

It sets EU-missions with ambitious goals tackling some of our biggest problems. More information on Missions is available here.

It also includes activities pursued by the Joint Research Centre which supports EU and national policymakers with independent scientific evidence and technical support.

Social sciences and humanities are fully integrated across all clusters, including specific and dedicated activities.

Pillar II covers activities from a broad range of Technology Readiness Levels (TRLs),
including lower TRLs.

Pillar II holds the lion’s share of the HE programme funding.
 
Pillar II supports research projects carried out by international and inter-disciplinary consortia. The projects address specific pre-defined topics proposed by the EC which fall into six different clusters, each of them focused on specific global societal and industrial challenges. More information on the specific content of each cluster is available by clicking the links below:

  1. Health
  2. Culture Creativity and Inclusive Society
  3. Civil Security for Society
  4. Digital Industry & Space
  5. Climate, Energy & Mobility
  6. Food, Bioeconomy, Natural Resources, Agriculture & Environment

Horizon Europe: Pillar 2 projects

SALAMANDER - Smart sensors and self-healing functionalities embedded for battery longevity with manufacturability and economical recyclability

Specific programme: HORIZON-CL5-2022-D2-01-06
UPV/EHU Partner Status: Beneficiary
UPV/EHU PI: David Mecerreyes

Project start: 01/05/2023
Project end: 31/10/2026

Brief description: The core concept of the SALAMANDER project is to develop and integrate embedded sensors and self-healing functionality in Liion batteries (LIB) to enhance their quality, reliability, and lifetime. This is achieved by demonstrating “smart” aspects in the battery which analyze indicators of its own degradation and independently respond with external stimuli to trigger on-demand self-healing. To achieve this goal, the project proposes 3 types of sensors with 2 types of self-healing mechanisms to counteract the most threatening and damaging reactions that occur in a typical LIB. On the anode, a resistance sensor array will be printed onto its surface to sense the degree of electrode fracture in the silicon/carbon composite anode. The anode will be embedded with a self-healing polymer network which upon thermal activation helps re-bind the silicon nanoparticles. For the cathode, an electrochemical sensor array is printed onto the separator to sense the dissolution of Mn from the LiNiMnCoO2 (NMC) cathode. To prevent Mn ions from critically degrading the cell, the cathode will be embedded with heat-activated scavenging species which remove these ions. Lastly, an internal temperature sensor helps control the degree of thermal activation. In each degradation scenario, the sensors communicate with the battery management system (BMS), which uses a physics-based model to trigger controlled heating to activate self-healing. Additionally, a life cycle assessment will be conducted to validate the recyclability of the SALAMANDER battery and quantify how the environmental impact of manufacturing is offset by longer-lasting batteries. Thus, although the project’s technology is anticipated to be disruptive at the cell and BMS levels, its design would remain compatible with existing manufacturing and recycling processes. These outcomes thereby help meet the goal of BATTERY 2030+ for a competitive, sustainable European battery value chain and a more circular economy.

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Contact information:

International R&D Office UPV/EHU
Email: proyectoseuropeos@ehu.es