Using ‘waste’ product from recent NASA research, scientists create transformative nanomaterials

One small material, one giant leap for life on Mars: Sussex research takes us a step closer to sustaining human life on the red planet
Two raw rocks used by the researchers (left). Vials show the nanobelts in water, with a close up of the actual nanobelts (right). Credit: University of Sussex

Researchers at the University of Sussex have discovered the transformative potential of Martian nanomaterials, potentially opening the door to sustainable habitation on the red planet.

Using resources and techniques currently applied on the International Space Station and by NASA, Dr. Conor Boland, a Lecturer in Materials Physics at the University of Sussex, led a research group that investigated the potential of nanomaterials—incredibly tiny components thousands of times smaller than a human hair—for clean energy production and building materials on Mars.

Taking what was considered a waste product by NASA and applying only sustainable production methods, including water-based chemistry and low-energy processes, the researchers have successfully identified electrical properties within gypsum nanomaterials—opening the door to potential clean energy and sustainable technology production on Mars.

The research is published in the journal Advanced Functional Materials

Dr. Conor Boland, said, “This study shows that the potential is quite literally out of this world for nanomaterials. Our study builds off recent research performed by NASA and takes what was considered waste, essentially lumps of rock, and turns it into transformative nanomaterials for a range of applications, from creating clean hydrogen fuel to developing an electronic device similar to a transistor to creating an additive to textiles to increase their robustness.

“This opens avenues for sustainable technology—and building—on Mars but also highlights the broader potential for eco-friendly breakthroughs here on Earth.”

To make the breakthrough, the researchers used NASA’s innovative method for extracting water from Martian gypsum, which is dehydrated by the agency to get water for human consumption. This produces a byproduct called anhydrite—considered waste material by NASA but now shown to be hugely valuable.

The Sussex researchers processed anhydrite into nanobelts—essentially tagliatelle-shaped materials—demonstrating their potential to provide clean energy and sustainable electronics. Furthermore, at every step of their process, water could be continuously collected and recycled.

Dr. Boland added, “We are optimistic about the feasibility of this process on Mars, as it requires only naturally occurring materials—everything we used could, in theory, be replicated on the red planet. Arguably, this is the most important goal in making the Martian colony sustainable from the outset.”

While full-scale electronics production may be impractical on Mars due to the lack of clean rooms and sterile conditions, the anhydrite nanobelts hold promise for clean energy production on Earth, and could, later down the line, still have a profound effect on sustainable energy production on Mars.

More information:
Cencen Wei et al, Quasi–1D Anhydrite Nanobelts from the Sustainable Liquid Exfoliation of Terrestrial Gypsum for Future Martian‐Based Electronics, Advanced Functional Materials (2023). DOI: 10.1002/adfm.202310600

Provided by
University of Sussex


Citation:
Using ‘waste’ product from recent NASA research, scientists create transformative nanomaterials (2023, December 20)
retrieved 20 December 2023
from https://phys.org/news/2023-12-product-nasa-scientists-nanomaterials.html

This document is subject to copyright. Apart from any fair dealing for the purpose of private study or research, no
part may be reproduced without the written permission. The content is provided for information purposes only.

FOLLOW US ON GOOGLE NEWS

Read original article here

Denial of responsibility! Swift Telecast is an automatic aggregator of the all world’s media. In each content, the hyperlink to the primary source is specified. All trademarks belong to their rightful owners, all materials to their authors. If you are the owner of the content and do not want us to publish your materials, please contact us by email – swifttelecast.com. The content will be deleted within 24 hours.

Leave a Comment