How Spreading Crushed Stone on Farms Can Capture 1 Billion Tons of CO2

Crushed basalt in carbon dioxide removal trial

Innovative Carbon Removal Technique

Credit: Paul Nelson

Applying crushed silicate rocks, like basalt, in agricultural fields could potentially eliminate up to 1.1 billion metric tons of carbon dioxide from the atmosphere each year while simultaneously enhancing crop yields, according to global assessments of this innovative method. Nevertheless, some scientists express skepticism about the feasibility of these claims.

This approach, termed enhanced rock weathering, accelerates the natural process of rock breakdown by rain. For millions of years, this mechanism has facilitated the transfer of carbon dioxide from the atmosphere to oceans, helping to regulate Earth’s climate during historical greenhouse periods. Farmers, for generations, have employed crushed limestone to enrich soil nutrient uptake in crops.

“The primary benefit of this method is its ability to mitigate atmospheric CO2 through a chemical reaction,” states Chuan Liao, a researcher at Cornell University, New York. “It also offers additional advantages such as the potential introduction of magnesium and calcium, aiding in soil nutrient enhancement.”

As global emissions persist in escalating, the United Nations climate agency emphasizes the necessity for effective carbon removal solutions to limit warming to 1.5 degrees Celsius over pre-industrial temperatures. Countries like Brazil are advocating for enhanced rock weathering as a strategy to mitigate emissions and reduce fertilizer expenses. Mati Carbon, an Indian startup, achieved the top award of $50 million in Elon Musk’s XPRIZE competition last year, showcasing the large-scale potential for carbon removal through this technique.

Carbon dioxide in the atmosphere undergoes dissolution in rain, forming carbonic acid, which reacts with silicate rocks to trap CO2 in bicarbonate ions. These ions can flow into rivers and oceans, either remaining dissolved for extensive periods or being absorbed into the calcium carbonate structures of marine life such as clams, corals, and sea urchins. Fragmenting the rock enlarges its surface area, enhancing carbon dioxide absorption.

According to the study, considering the volume of rock that farms can accommodate, accelerated rock weathering could contribute significantly, potentially saving up to 5 billion tons of CO2 annually this century. Liao and his colleagues conducted a “reality check” on these estimates by evaluating the rate at which farmers have adopted other innovations like irrigation, and how effectively weathering can occur in various regions.

The models explored limited versus extensive implementation of enhanced weathering and identified a potential removal range of 350 million to 750 million tons of CO2 annually by 2050, escalating to 700 million to 1.1 billion tons by 2100. For context, global fossil fuel CO2 emissions are projected to reach approximately 38 billion tons by 2025.

Initially, Europe and North America will lead this removal effort, but as supply chains for silicate rock are established and costs decline, regions in Asia, Latin America, and sub-Saharan Africa may emerge as frontrunners. Increasing temperatures and precipitation patterns could further accelerate weathering processes in these areas, providing farmers with the opportunity to monetize carbon removal credits for each ton of rock applied.

“For future farmers in the Global South, there will be fewer obstacles to sustainable practices,” notes Liao.

However, Marcus Siedung and colleagues from the Thünen Institute for Climate and Smart Agriculture in Germany raise essential concerns in their recent paper. They highlight significant uncertainties surrounding the accelerated rock weathering estimates; for instance, drought conditions can amplify carbon release, undermining the intended benefits. Siedung suggests that the estimation of 1.1 billion tons being removed is likely overstated.

In calcium-rich soils, rainfall may weather the carbonate instead of the crushed rock, resulting in a reversal of carbon absorption back into the ocean, leading to CO2 release instead of removal. Furthermore, low pH soils can react with crushed rock, resulting in negligible carbon uptake. As acidity diminishes, CO2 emissions from soil microbes may intensify.

Moreover, the carbon released during the mining and transportation of rocks to farms may surpass the amount removed, according to Siedung.

“I approach this with skepticism,” he asserts. “It’s crucial to ensure that CO2 is genuinely captured; otherwise, we risk miscalculating the benefits of carbon removal.” He emphasizes the complexities of the geochemical processes involved.

Others warn that weathering rocks could introduce toxins into the food chain. The olivine used in Liao’s projections entails heavy metals such as nickel and chromium.

Most residual rock from current mines is also likely polluted with metals, states David Manning from Newcastle University, UK. Countries may need to open numerous basalt quarries, which could be a lengthy and costly endeavor.

“To eliminate one gigaton of CO2 annually, approximately five gigatons of rock would be needed each year, and it remains unclear where this rock will be sourced from—this poses a significant challenge to scalability,” Manning concludes.

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Source: www.newscientist.com

Using a combination of crushed rock and fertilizer can decrease nitrous oxide emissions on farms

Spreading rock dust on fields can sequester carbon and reduce nitrous oxide emissions.

SO-Photography/Alamy Stock Photo

Spreading crushed basalt on farmland and using special fertilisers to prevent nitrogen loss could cut global agricultural emissions of gases that are a powerful driver of global warming by 25%.

Nitrous oxide is a greenhouse gas with a warming potential 270 times greater than carbon dioxide. It has increased by 40% in the past 40 yearsAgriculture is a major factor, due to increased use of nitrogen-based fertilisers and rising livestock numbers.

Microorganisms in the soil convert ammonium in manure and animal waste into nitrates, releasing nitrous oxide in the process. Compounds that interfere with this process are called nitrification inhibitors, and can be added to fertilizer to reduce nitrous oxide emissions. Applying basalt dust to the soil, a technique called enhanced rock weathering (ERW), can also help by making the soil more alkaline.

However, nitrous oxide emissions are not only a global warming pollutant, they also have a complex relationship with the ozone layer, and in some circumstances even help it recover, so figuring out the best way to mitigate nitrous oxide emissions without damaging the ozone layer is difficult.

To address this, Maria Val Martin Researchers from the University of Sheffield in the UK modelled the impacts of widespread use of both ERW and nitrification inhibitors on nitrous oxide emissions and the ozone layer under two different climate scenarios.

The researchers found that a “moderate” approach, in which ERWs were introduced in key regions around the world and most farmers except the poorest used nitrification inhibitors, could reduce nitrous oxide emissions from agriculture by 25 percent, while nitrous oxide emissions overall would be reduced by 5 percent. These gases also come from combustion engines and industry.

What's more, up to two gigatons of additional carbon could be sequestered in the soil thanks to ERW, and neither scenario would harm the ozone layer, Val Martin says.

“we [carbon] “Enhanced rock weathering would sequestrate carbon dioxide, reduce nitrous oxide emissions, which is 300 times more potent than carbon dioxide, resulting in climate benefits, and protection of the ozone layer,” she says.

Deploying nitrous oxide abatement efforts on this scale would cost billions of dollars. Sequestering carbon using ERW costs between $80 and $180 per tonne of CO2. According to previous researchAccording to Val Martin, reducing nitrous oxide emissions is a “free” side benefit of carbon sequestration. Applying nitrification inhibitors costs about $28-45 per hectare, which would cost $17-27 billion per year to cover the 600 million hectares modelled in the study – roughly one-eighth of all agricultural land.

Still, Val Martin says the scenario is deliberately cautiously ambitious, and one that could play out in the real world. “What we wanted to do in this study is to come up with a realistic scenario, so if governments want to curb nitrous oxide emissions, [these] It’s a strategy we’re implementing.”

Parbhu Suntaralingam Researchers from the University of East Anglia in the UK say new strategies to curb nitrous oxide emissions are urgently needed, and that this research is particularly valuable because it focuses on curbing emissions without damaging the ozone layer.

topic:

  • Agriculture/
  • Greenhouse gas emissions

Source: www.newscientist.com