Skip to main content

Living cement: Scientists turn bacteria-infused cement into energy-storing supercapacitors

 

Actually helps to store electricity at different terrains to setup the whole city grids been connected and infact help for solar panels houses as well as in the mountain regions where it generally can't able to generate the electricity grid as not every mountains means they have dam too to fulfill the energy requirement of that house easily.

Imagine a house that doesn't just shelter you but also stores electricity. It may sound like science fiction, but it's now closer to reality than ever before. A research team at Aarhus University has demonstrated how the world's most widely used building material can be transformed into a living energy device. By embedding energy-producing bacteria in cement, they have created a biohybrid supercapacitor with surprisingly high performance and a remarkable ability to regenerate itself over time.

"We've combined structure with function," says lead researcher Qi Luo. "The result is a new kind of material that can both bear loads and store energy—and which is capable of regaining its performance when supplied with nutrients."

Where biology meets building materials

Concrete has long been seen as inert and lifeless. But this new study, just published by the team in the journal Cell Reports Physical Science, takes a radically different approach: They add Shewanella oneidensis, a bacterium known for its ability to transfer electrons to external surfaces via so-called extracellular electron transfer.

Once embedded in the  matrix, these bacteria create a network of charge carriers capable of both storing and releasing electrical energy. Even at this early stage, the material already shows performance well beyond what traditional cement-based energy storage systems have achieved, suggesting promising potential for future development.

But what's perhaps most striking is that the material continues to function even after the microbes have died—and that it can be brought back to life.

A recoverable power network

Because  gradually fades due to nutrient depletion or , the researchers designed an integrated microfluidic network within the cement that can deliver a nutrient solution containing proteins, vitamins, salts and  to keep the bacteria alive or "reawaken" the system.

With this method, up to 80% of the original energy capacity can be recovered.

In practical terms, this opens the door to recoverable energy materials that maintain their function over time, without the need to replace batteries or perform costly repairs.

The researchers also stress-tested the material under challenging conditions. Even at freezing temperatures and at elevated heat, the cement retained its ability to store and discharge electricity. And when six cement blocks were connected in series, they produced enough energy to power an LED light.

"This isn't just a lab experiment," says Qi Luo. "We envision this technology being integrated into real buildings, in walls, foundations, or bridges, where it can support renewable energy sources like  by providing local energy storage. Imagine a regular room built with bacteria-infused cement: even at a modest energy density of 5 Wh/kg, the walls alone could store about 10 kWh—enough to keep a standard enterprise server running for a whole day."

Infrastructure that stores its own power

As the world shifts to , there is a growing need for scalable, affordable, and sustainable energy storage. Conventional batteries rely on rare and expensive materials like lithium and cobalt—and they degrade over time.

The new cement-based material, on the other hand, is made from abundant and inexpensive components and can be produced at scale. The bacteria used are naturally occurring and environmentally friendly.

Though still at the proof-of-concept stage, the findings open up an entirely new chapter in building technology: house façades that double as batteries. Bridges that power their own sensors. Infrastructure that lives—and delivers energy.


Comments

Popular posts from this blog

Computers that power self-driving cars could be a huge driver of global carbon emissions

In the future, the energy needed to run the powerful computers on board a global fleet of autonomous vehicles could generate as many greenhouse gas emissions as all the data centers in the world today.  Join our   whatsapp group for latest articles updates. That is one key finding of a new study from MIT researchers that explored the potential energy consumption and related carbon emissions if autonomous vehicles are widely adopted. The data centers that house the physical computing infrastructure used for running applications are widely known for their large carbon footprint: They currently account for about 0.3 percent of global greenhouse gas emissions, or about as much carbon as the country of Argentina produces annually, according to the International Energy Agency. Realizing that less attention has been paid to the potential footprint of ...

Novel design helps develop powerful microbatteries

Translating electrochemical performance of large format batteries to microscale power sources has been a long-standing technological challenge, limiting the ability of batteries to power microdevices, microrobots and implantable medical devices. University of Illinois Urbana-Champaign researchers have created a high-voltage microbattery (> 9 V), with high-energy and -power density, unparalleled by any existing battery design.  Join our   whatsapp group for latest articles updates. Material Science and Engineering Professor Paul Braun (Grainger Distinguished Chair in Engineering, Materials Research Laboratory Director), Dr. Sungbong Kim (Postdoc, MatSE, current assistant professor at Korea Military Academy, co-first author), and Arghya Patra (Graduate Student, MatSE, MRL, co-first author) recently published their paper "Serially integrated ...

ChatGPT writes convincing fake scientific abstracts that fool reviewers in study

Could the new and wildly popular chatbot ChatGPT convincingly produce fake abstracts that fool scientists into thinking those studies are the real thing?  Join our   whatsapp group for latest articles updates. That was the question worrying Northwestern Medicine physician-scientist Dr. Catherine Gao when she designed a study—collaborating with University of Chicago scientists—to test that theory. Yes, scientists can be fooled, their new study reports. Blinded human reviewers—when given a mix real and falsely generated abstracts—could only spot ChatGPT generated abstracts 68% of the time. The reviewers also incorrectly identified 14% of real abstracts as being AI generated. "Our reviewers knew that some of the abstracts they were being given were fake, so they were very suspicious," said corresponding author Gao, an instructor in pulmonary an...