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Common mineral could be key to tackling climate change

15 February 2021

A team of international researchers led by a 茄子视频app官网 (UC) Engineering academic, believe they have discovered a potentially revolutionary key to reducing climate change impacts.

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Lead researcher UC Civil Engineering听Associate Professor Allan Scott, and his team in the United States, United Kingdom and New Zealand, have found a new low-carbon method to produce the common mineral, magnesium hydroxide or Mg(OH)2.

Associate Professor Scott explains magnesium hydroxide has been widely recognised as one of the most promising materials for 鈥榗arbon mineralization鈥 (where carbon dioxide or CO鈧 is prevented from entering the atmosphere), but until now there hasn鈥檛 been an energy-efficient way of producing it.

鈥淢ost processes to get magnesium hydroxide typically involve CO鈧 emissions. We are proposing a new method to produce magnesium hydroxide from olivine; an abundant mineral here in New 茄子视频app官网and around the world. Our method uses existing technology, produces useful by-products and most importantly there鈥檚 low to zero CO鈧 emitted during the process.鈥

滨苍听听published in听Communications Earth & Environment, the researchers outline that olivine can be ground into powder, combined with hydrochloric acid and a process of electrolysis can be used to produce magnesium hydroxide. Lab trials showed that 100 tonnes of olivine could potentially produce 35 tonnes of magnesium hydroxide, as well as 35 tonnes of amorphous silicate 鈥 a material used in products such as semiconductor circuits and cement. 听听

鈥淭he discovery of this method has the potential to have a dramatic impact on our ability to reduce global CO鈧 emissions,鈥 Associate Professor Scott says. 听

Around 40 billion tonnes of human-made CO鈧 is released into the atmosphere each year which contributes to global warming. Of that, 鈥榩oint source鈥 emissions such as power generation [coal plants, natural gas] and industrial production account for roughly 50 percent of the total CO鈧.

鈥淭his new method makes it possible to produce magnesium hydroxide on a large scale, which can then be transported to industrial and manufacturing sites to mineralize the CO鈧 produced,鈥 he says.

鈥淚n theory it鈥檚 possible to remove and sequester at least half of the 40 billion tonnes of CO鈧 and continue to do so for thousands of years. The challenge now is how we take this method from the lab to an industrial-scale process which can be widely distributed at a reasonable cost.鈥

The research team led by Associate Professor Allan Scott,听includes Occidental College and former UC academic Christopher Oze, UC Postdoctoral Researcher Vineet Shah, UC PhD student Nan Yang,听UC Associate Professor Aaron Marshall听and听UC Associate Professor Matthew Watson, Imperial College London Professor Chris Cheeseman and Barney Shanks.

What is听Mg(OH)2?

Magnesium hydroxide Mg(OH)2听is a highly reactive material that when combined with carbon dioxide (CO鈧) 鈥 one of Earth鈥檚 most significant greenhouse gases 鈥 produces magnesium carbonates, an inorganic salt that is used in a variety of commercial products such as flooring, fireproofing and bricks.


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