Indian scientists develop 'Black gold' that can absorb light and carbon dioxide
The material could be used in applications ranging from solar energy harvesting to desalinating seawater.


Representational image. Reuters[/caption]One of the most fascinating properties of the new material is its ability to absorb the entire visible and near-infrared region of solar light. It does so because of inter-particle plasmonic coupling as well as heterogeneity in nanoparticle size. Black gold could also act as a catalyst and could convert carbon dioxide into methane at atmospheric pressure and temperature using solar energy.“If we develop an artificial tree with leaves made out of back gold, it can perform artificial photosynthesis, capturing carbon dioxide and converting it into fuel and other useful chemicals,” added Prof Polshettiwar. The efficiency of conversion of carbon dioxide into fuel, at present, is low but researchers believe it could be improved in future.In order to study solar energy harvesting ability of the new material, researchers dispersed it into water and exposed the solution to light for one hour and the temperature of the solution was measured. The temperature of the solution with pure silica spheres rose to 38 degrees while the ones with different concentrations of black gold rose to 67 to 88 degrees. The maximum increase in temperature has attributed to the creation of thermal hotspots due to the heterogeneity of the particle sizes as well as optimum interparticle coupling.Researchers said the material can be used as a nano-heater to convert seawater into potable water with good efficiency. “Our results indicate the potential application of black gold in the purification of seawater to potable water via steam generation using solar energy under atmospheric reaction conditions,” according to the researchers.The research team included Mahak Dhiman, Ayan Maity, Anirban Das, Rajesh Belgamwar, Bhagyashree Chalke and Vivek Polshettiwar (TIFT); Yeonhee Lee, Kyunjong Sim and Jwa-Min Nam (Seoul National University). The study was funded by the Department of Science and Technology (DST) and the Department of Atomic Energy (DAE).

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