Sunday Times (Sri Lanka)

Whitest-ever paint could help cool heating Earth, study shows New paint reflects 98% of sunlight as well as radiating infrared heat into space, reducing need for air conditioni­ng

- By Damian Carrington

The whitest-ever paint has been produced by academic researcher­s, with the aim of boosting the cooling of buildings and tackling the climate crisis.

The new paint reflects 98% of sunlight as well as radiating infrared heat through the atmosphere into space. In tests, it cooled surfaces by 4.5C below the ambient temperatur­e, even in strong sunlight. The researcher­s said the paint could be on the market in one or two years.

White-painted roofs have been used to cool buildings for centuries. As global heating pushes temperatur­es up, the technique is also being used on modern city buildings, such as in Ahmedabad in India and New York City in the US.

Currently available reflective white paints are far better than dark roofing materials, but only reflect 80-90% of sunlight and absorb UV light. This means they cannot cool surfaces below ambient temperatur­es. The new paint does this, leading to less need for air conditioni­ng and the carbon emissions they produce, which are rising rapidly.

“Our paint can help fight against global warming by helping to cool the Earth – that’s the cool point,” said Prof Xiulin Ruan at Purdue University in the US. “Producing the whitest white means the paint can reflect the maximum amount of sunlight back to space.” Ruan said painting a roof of 93 sq metres would give a cooling power of 10 kilowatts: “That’s more powerful than the air conditione­rs used by most houses.”

The new paint was revealed in a report in the journal ACS Applied Materials & Interfaces. Three factors are responsibl­e for the paint’s cooling performanc­e. First, barium sulphate was used as the pigment which, unlike convention­al titanium dioxide pigment, does not absorb UV light. Second, a high concentrat­ion of pigment was used – 60%. Third, the pigment particles were of varied size. The amount of light scattered by a particle depends on its size, so using a range scatters more of the light spectrum from the sun. Ruan’s lab had assessed more than 100 different materials and tested about 50 formulatio­ns for each of the most promising. Their previous whitest paint used calcium carbonate – chalk – and reflected 95.5% sunlight.

The barium sulphate paint enables surfaces to be below the ambient air temperatur­e, even in direct sunlight, because it reflects so much of the sun’s light and also radiates infrared heat at a wavelength that is not absorbed by air. “The radiation can go through the atmosphere, being directly lost to deep space, which is extremely cold,” said Ruan.

The researcher­s said the ultra-white paint uses a standard acrylic solvent and could be manufactur­ed like convention­al paint. They claim the paint would be similar in price to current paints, with barium sulphate actually cheaper than titanium dioxide. They have also tested the paint’s resistance to abrasion, but said longer-term weathering tests were needed to assess its long-term durability. Ruan said the paint was not a risk to people’s eyesight: “Our surface reflects the sunlight diffusely, so the power going in any particular direction is not very strong. It just looks bright white, a bit whiter than snow.”

Andrew Parnell, who works on sustainabl­e coatings at the University of Sheffield, UK, said a comparison of the carbon dioxide emitted by the mining of barium sulphate with the emissions saved from lower air conditioni­ng use would be needed to fully assess the new paint. He also said green roofs, on which plants grow, could be more sustainabl­e where practical.

Project Drawdown, a charity that assesses climate solutions, estimates that white roofs and green roofs could avoid between 600m and 1.1bn tonnes of carbon dioxide by 2050, roughly equivalent to two to three years of the UK’s total annual emissions.

 ?? (Pic credit Jared Pike/Purdue University) ?? Prof Xiulin Ruan with a sample.
(Pic credit Jared Pike/Purdue University) Prof Xiulin Ruan with a sample.

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