Physicists just turned a non superconductive material into a superconductor
Superconductors that could operate at room temperature would transform the healthcare, energy, technology and transportation industries.
Key takeaways
- For the first time, researchers have achieved superconductivity – the phenomenon of electrical conductivity with zero resistance – in a material that’s not a superconductor.
- Even the best superconductors still being tested in the lab can’t achieve superconductivity above -70 degrees Celsius.
- The calcium iron arsenide achieved superconductivity at around 25 Kelvin, which is roughly -248.15 degrees Celsius, so it’s still not going to be of much use for industry.
Cite or link to this article
Griffin, M. (2016) 'Physicists just turned a non superconductive material into a superconductor', 311 Institute, 6 November. Available at: https://www.311institute.com/physicists-just-turned-a-non-superconductive-material-into-a-superconductor/ (Accessed: 1 October 2026).
For the first time, researchers have achieved superconductivity – the phenomenon of electrical conductivity with zero resistance – in a material that’s not a superconductor.
The new technique demonstrates a concept that was first proposed back in the 1970s, but that until now had never been proven, or even demonstrated, and the breakthrough could lead to ways to new ways to make superconductors - like the ones used in MRI machines, maglev trains and even Hyperloops - cheaper and more efficient at higher temperatures.
“Superconductivity is used in many things, of which MRI is perhaps the best known,” said lead researcher Paul Chu from the University of Houston.
That aside though superconductive materials could revolutionise a whole range of other industries if they were more commercially viable. Not only can superconductors be used to build superfast, frictionless transport systems they could also make our electricity grids a whole lot more energy efficient.
Right now, the materials we use to transmit electricity from power plants to our homes lose as much as 10 percent of the energy along the journey. But superconductors wouldn’t lose any electricity at all, so utility companies could provide us with more power without needing to generate any more electricity.
What’s holding back all of these applications is that commercial superconductors materials need to be cooled down to around -270 degrees Celsius in order achieve zero electrical resistance, which, as you can imagine, is incredibly expensive and energy intensive, not to mention often impractical.
Even the best superconductors still being tested in the lab can’t achieve superconductivity above -70 degrees Celsius. And researchers are struggling to get that temperature, known as critical temperature (or Tcs), closer to room temperature.
For decades, scientists have thought a better way to boost superconductivity temperatures would be to find a way to induce superconductivity in non-superconductive materials.
The idea is that if researchers can figure out a way to make regular materials superconductive, it would open up new ways to make superconductive materials work at even higher temperatures. And now the University of Houston team has taken the first step, by inducing superconductivity at the point where two phases of a material meet – known as the interface.
They achieved this in calcium iron arsenide (CaFe2As2), a material that’s non-superconductive.
“One way that has long been proposed to achieve enhanced Tcs is to take advantage of artificially or naturally assembled interfaces,” wrote the researchers.
“The present work clearly demonstrates that high Tcs in the well-known non-superconducting compound CaFe2As2 can be induced by antiferromagnetic-metallic layer stacking and provides the most direct evidence to date for the interface-enhanced Tcs in this compound.”
So how does it work? The idea that superconductivity could be induced – or even enhanced – at the interface where two different materials come together was first proposed in the 1970s.
But although many research teams have attempted to show that it works, past experiments that achieved superconductivity could not exclude that the effects of stress or chemical doping weren’t messing with the results, so the effect was never validated until now.
To verify what was happening, the Houston researchers worked in ambient pressure and used undoped calcium iron arsenide.
They then took the material and heated it to 350 degrees Celsius to achieve a process known annealing, where the material cools slowly after being heated. This process caused two distinct phases in the calcium iron arsenide to occur as it cools unevenly.
While neither of those two phases were superconducting, the team was able to detect superconductivity at the point where the two phases coexist – proving that the interface hypothesis is real.
The calcium iron arsenide achieved superconductivity at around 25 Kelvin, which is roughly -248.15 degrees Celsius, so it’s still not going to be of much use for industry. But the next step will be to use this same process to find ways to make existing high-temperature superconductors more efficient at these interface points.
FAQ
Why does this matter?
Superconductors that could operate at room temperature would transform the healthcare, energy, technology and transportation industries.

About the author
Matthew Griffin Founder, 311 Institute
Matthew Griffin is a multi-award winning Futurist and expert in Disruption and Innovation, Geopolitics, Leadership, and Technology, who NASA have described as a "walking encyclopaedia of the future" and a "futurist Polymath."
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Matthew Griffin is a multi-award winning Futurist and expert in Disruption and Innovation, Geopolitics, Leadership, and Technology, who NASA have described as a "walking encyclopaedia of the future" and a "futurist Polymath." 15-time best selling author of the "Codex of the Future" series, Matthew is the Founder and Futurist in Chief of the 311 Institute, a global Futures and Deep Futures advisory firm working with royal households, world leaders, G7, G20, and G77 governments, NGOs, and multi-national mid and mega cap firms to help them explore, shape, and lead the next 50 years of business and society.
An award-winning YouTube creator with over a million followers, with an unrivalled global reach and impact, Matthew is a highly sought-after international keynote speaker, lecturer, and mentor who collaborates with global leaders through the United Nations Alliance of Civilizations (UNAOC) and United Nations General Assembly (UNGA) to shape pivotal initiatives such as the UN’s AI for Humanity program, the United Nations Conference of the Parties (UN COP), and the World Economic Forum in Davos.
As the former Global Head of Cloud, National Security, and Enterprise Sales for companies including Atos, Dell-EMC, and IBM, Matthew has a proven track record of building multi-billion dollar business units and turning failing divisions into market leaders. His ability to identify, analyse, and communicate the implications of hundreds of emerging technologies and trends is unparalleled, and his insights are trusted by many of the world’s most respected organisations, including ABB, Accenture, Adidas, AON, ARM, BCG, Centrica, Citi, Coca-Cola, Dentons, Deloitte, Dow Jones, EY, Google, KPMG, Lego, Legal & General, LinkedIn, Microsoft, PepsiCo, Qualcomm, RWE, Samsung, Siemens AG and Siemens Energy, T-Mobile, UBS, VISA, Walmart, Workday, Worldpay and many others.
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Sources and further reading
- Superconductivity en.wikipedia.org
- University of Houston uh.edu
- 10312016Paul Chu New Discovery Superconductivity uh.edu
- High temperature superconductivity en.wikipedia.org
Source: first published by the 311 Institute on 6 November 2016. Cite as: Griffin, M. (2016). Physicists just turned a non superconductive material into a superconductor. 311 Institute. https://www.311institute.com/physicists-just-turned-a-non-superconductive-material-into-a-superconductor/
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