ERC Projects

Ultrasupertape

ULTRASUPERTAPE aims to demonstrate an unprecedented approach for fabrication of low cost / high throughput / high performance High Temperature Superconducting (HTS) tapes, or Coated Conductors, to push the emerging HTS industry to market.

The breakthrough idea is the use of Transient Liquid Assisted Growth from low cost Chemical Solution Deposition of Y, Ba, Cu metallorganic precursors to reach ultrafast growth rates. The key concept relies on the discovery of a tool to control the ignition effect of the transient liquid formation through the decomposition of barium carbonate even for thick films. The capability to modulate the transient liquid state with composition variations and low cost capital investment equipment enriches its potentiality.

Innovative Additive Manufacturing and Digital Printing methodologies are identified to devise an integrated system able to address the full manufacturing process from solution deposition by ink jet printing to ultrafast epitaxial crystallization of the superconducting phase. A combinatorial chemistry strategy ensures fast screening operation. Furthermore, ULTRASUPERTAPE will boost Coated Conductor performances up to outstanding limits at high and ultrahigh fields, by smartly designing and engineering the local strain and electronic state properties of nanocomposite superconducting films.

The digital-printing additive-manufacturing approach developed will be cleverly adapted to create unique superconducting nanocomposites from nanoparticle colloids with unlimited concentrations. This new instrument is foreseen to be transferable to many other functional applications of advanced nanocoatings, where long length or large area production of functional epitaxial films or multilayer structures are required. Consequently, wise ideas and technology emerged from this proposal are foreseen to penetrate the new energy paradigm beyond the clean, efficient and smart limits that Superconductivity offers.

Financial Suport: EU, ERC Advanced Grant 2014
Project Leader: Prof. Teresa Puig
Title: Ultrafast growth of ultrahigh performance superconducting tapes, ULTRASUPERTAPE, ERC-2014-ADG-669504
Dates: 01/12/2015 – 31/05/2022
Budget: 2.496.652€


Impact

The development of second generation high-temperature superconductors (2G-HTS), known as coated conductors (CCs), has opened new possibilities in R&D to secure industrial scalability.

However, high costs in production of YBCO films, a basic element of HTS, impedes significant cost reductions in CCs as required by the market and limits their market adoption. Due to high overall costs CCs are not used in a wide range of industrial applications such as turbines and compact industrial scale generators.

The EU-funded IMPACT project is a Proof of Concept (PoC) proposal that aims to demonstrate the commercial value of the CCs and design a business strategy for a new approach of low cost, high throughput and high performance HTS films manufacturing

Financial Suport: EU, ERC Proof of Concept 2019
Project Leader: Prof. Teresa Puig
Title: Industrial Manufacturing Process for A high temperature superconducting Coated conductors Technology, IMPACT, ERC-2019-PoC-874964
Dates: 01/01/2020 – 31/12/2021
Budget: 150.000€

SMS-INKS

The development of second generation high-temperature superconductors (2G-HTS), known as coated conductors (CCs), has opened new possibilities in R&D to secure industrial scalability.

However, high costs in production of YBCO films, a basic element of HTS, impedes significant cost reductions in CCs as required by the market and limits their market adoption. Due to high overall costs CCs are not used in a wide range of industrial applications such as turbines and compact industrial scale generators.

The EU-funded IMPACT project is a Proof of Concept (PoC) proposal that aims to demonstrate the commercial value of the CCs and design a business strategy for a new approach of low cost, high throughput and high performance HTS films manufacturing

Financial Suport: EU, ERC Proof of Concept 2022
Project Leader: Prof. Teresa Puig
Title: Scalable Method for Synthesis of multifunctional colloidal INKs for Superconductors, SMS-INKS, GA n.101081998
Dates: 01/12/2022 – 31/05/2024
Budget: 150.000€

Institut de Ciència de Materials de Barcelona ICMAB CSIC

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