Inexpensive flexible 3D printed sensor can detect even the tiniest amount of water
The sensor changes colour from purple to blue when exposed to water, returning to purple when heated.


Variations of the 3D printable water sensor devices. When dried, in a water-free solvent, the sensor material turns purple. Image courtesy: UAM[/caption]The functional part of the new sensor material is a copper-based coordination polymer, a compound with a water molecule bound to a central copper atom."On heating the compound to 60 degrees Celsius, it changes colour from blue to purple," said Amo-Ochoa. "This change can be reversed by leaving it in air, putting it in water, or putting it in a solvent with trace amounts of water in it," Amo-Ochoa said.Using high-energy X-rays, the scientists observed that in the sample heated to 60 degrees Celsius, the water molecule bound to the copper atoms had been removed. This leads to a reversible structural reorganisation of the material, which is the cause of the colour change."Having understood this, we were able to model the physics of this change," said Jose Ignacio Martinez from the Institute for Materials Science in Madrid (ICMM-CSIC).The scientists were then able to mix the copper compound into a 3D printing ink and printed sensors in several different shapes which they tested in air and with solvents containing different amounts of water.These tests showed that the printed objects are even more sensitive to the presence of water than the compound by itself, thanks to their porous nature.In solvents, the printed sensors could already detect 0.3 to 4 per cent of water in less than two minutes. In air, they could detect a relative humidity of seven percent. If it is dried, either in a water free solvent or by heating, the material turns back to purple.A detailed investigation showed that the material is stable even over many heating cycles, and the copper compounds are evenly distributed throughout the printed sensors, researchers said. The material is stable in air over at least one year and also at biological relevant pH ranges from 5 to 7, they added."Furthermore, the highly versatile nature of modern 3D printing means that these devices could be used in a huge range of different places," said Shlomo Magdassi from The Hebrew University of Jerusalem in Israel.He said the concept could be used to develop other functional materials as well.

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