惯性聚合 高效追踪和阅读你感兴趣的博客、新闻、科技资讯
阅读原文 在惯性聚合中打开

推荐订阅源

博客园_首页
H
Help Net Security
腾讯CDC
宝玉的分享
宝玉的分享
H
Hackread – Cybersecurity News, Data Breaches, AI and More
L
LangChain Blog
爱范儿
爱范儿
T
The Blog of Author Tim Ferriss
J
Java Code Geeks
让小产品的独立变现更简单 - ezindie.com
让小产品的独立变现更简单 - ezindie.com
MyScale Blog
MyScale Blog
Engineering at Meta
Engineering at Meta
N
Netflix TechBlog - Medium
D
Docker
V
V2EX
Last Week in AI
Last Week in AI
G
Google Developers Blog
IT之家
IT之家
C
Check Point Blog
钛媒体:引领未来商业与生活新知
钛媒体:引领未来商业与生活新知
人人都是产品经理
人人都是产品经理
博客园 - 叶小钗
奇客Solidot–传递最新科技情报
奇客Solidot–传递最新科技情报
博客园 - 聂微东

Interesting Engineering

US firm to scale laser-based nuclear fusion ‘breakthrough’ with new partnership Military Archives - Interesting Engineering World’s first non-nuclear lead-cooled reactor to generate electricity begins installation US scientists devise new process to turn sewage sludge into 99% pure natural gas US firm unveils submarine-hunting drone with 9,200-mile-range, 35 mph top speed Military Archives - Interesting Engineering Supercomputer finds lithium-titanium tweak to boost sodium-ion batteries for grids Lockheed Martin demonstrates vertical launch missile system for mobile drone defense China’s 1116 MWe Taipingling Unit 1 reactor goes online, set to generate 9bn kWh yearly ChatGPT Images 2.0 update combines reasoning, research, and design with 2K output US Navy tests plug-and-play laser system on USS Bush carrier, downs drones at sea China’s CATL reveals 621-mile EV battery, under-7-minute charging to challenge BYD US uses world’s first exascale supercomputer to model supernovae, fusion reactors AI and Robotics Archives - Interesting Engineering First-in-human study confirms safety of graphene-based brain interface Tesla’s Optimus humanoid robot greets runners, poses for photos at Boston Marathon Interlocking materials offer high strength and flexibility for robotics, infrastructure US redeploys 100,000-ton nuclear-powered aircraft carrier in Red Sea after repairs US scientists unveil concept for ‘world’s first neutrino laser’ to unlock breakthroughs New military tech can maintain communication in contested electronic warfare environments Got a dark personality? Psychologists can help you choose your career wisely Humidity boosts performance of 3D-printed nanogenerator instead of degrading it China demonstrates microwave beam that recharges drones in flight, continues power delivery Scientists run compact free-electron laser for eight hours, cracks FEL stability problem China’s PLA considers to use minelaying underwater drones to enforce Taiwan blockade: Report 1-ton sharks may struggle for survival in waters exceeding 62.6°F, study suggests US firm’s thorium nuclear fuel bundles move to manufacturing for commercial reactors Tesla hits 0% charge in remote Chilean desert as YouTuber uses hood-mounted solar Humanoid robot surpasses human world record in Beijing half-marathon, clocking 50:26 mins New method extracts maximum work from unknown quantum states using symmetry tricks
Space laundry solved: Cold plasma tech kills bacteria on ...
Chris Young · 2026-06-02 · via Interesting Engineering

While SpaceX and Blue Origin engineers work against the clock to prepare their respective spacecraft for the first moon landing since 1972, scores of scientists are addressing the myriad technological challenges future space explorers will face on long-duration missions to the moon and beyond.

One team of scientists has just demonstrated a water-free approach to cleaning laundry in space. The researchers demonstrated a cold-plasma technology that could sanitize astronaut clothing and habitats on future lunar and Martian bases without water.

Keeping clean in space

On the International Space Station (ISS), crews use dry vacuuming devices and chemical surface wipes to clean their clothes. Neither is particularly effective.

This means the ISS crew also have to resort to another method: They wear garments for extended periods, finally discarding them when they are too dirty. This practice is unsustainable for long-duration missions to the Moon or Mars, where resupply missions will be limited.

Water is also a precious resource in space, making traditional washing impractical. The team behind the new water-free solution was led by Gabe Xu of the University of Alabama in Huntsville, in collaboration with NASA microbiologist Chelsi Cassilly. They developed a compact device that generates a pencil-thin jet of cold plasma to kill bacteria on fabrics.

They presented their proof-of-concept device at the Astrobiology Science Conference last month. The device uses high-voltage electricity to ionize a mixture of helium, air, and water vapor. When aimed at fabrics, the plasma generates reactive oxygen species such as ozone. These penetrate fabric fibers and destroy microbes through oxidative stress.

Unlike hot plasma or arc welding, this cold plasma operates at room temperature and poses no risk to fabrics or human skin.

In laboratory tests, the team trained their plasma jet on samples of Staphylococcus caprae, a skin bacterium previously detected on the ISS. They found that their device reduced bacterial spore colonies on cotton samples from approximately 250,000 per milliliter to about 60,000 per milliliter.

Ultimately, the technique killed the bacteria more effectively than existing methods used on the ISS. According to the researchers, their method might not remove noticeable stains, but it will kill the bacteria that could make astronauts sick.

In an interview with LiveScience, Xu explained that “there are microbes that are UV resistant, but as far as we can tell from our experiments, there is nothing that is oxidative-stress resistant – if you eat poison, it kills you.”

Enabling healthy habitats for future space explorers

The current prototype cleans only a small area at a time, roughly the width of a pencil.

The researchers aim to develop scaled-up versions, including a plasma chamber resembling a washing machine and a combined plasma jet-vacuum system for surfaces. These tools could also be used to sterilize spacesuits, tools, and soft furnishings in habitats.

As NASA looks to extend humanity’s footprint into space, microbial control will be critical for crew health and survivability. Small populations living in compact habitats will be especially vulnerable to bacteria and illness. While vacuuming removes dust, it fails to eliminate biological contaminants effectively, making the new system particularly valuable.

Though it shows great promise, further testing is needed to confirm efficacy against a broader range of microbes, as well as its long-term impact on fabric durability.

If successful, plasma-based sanitation could help support a permanent human presence beyond Earth. It would help to minimize resource consumption and contamination risks while enabling astronauts to explore the unknown.

Recommended Articles

The Blueprint

Get the latest in engineering, tech, space & science - delivered daily to your inbox.

Chris Young is a journalist, copywriter, blogger and tech geek at heart who’s reported on the likes of the Mobile World Congress, written for Lifehack, The Culture Trip, Flydoscope and some of the world’s biggest tech companies, including NEC and Thales, about robots, satellites and other world-changing innovations.