Harnessing Energy from the Sun
Both the Powerhouse projects and HouseZero use solar panels as the primary source of energy generation. That in itself is nothing new. Indeed, the earliest observation of the Photovoltaic effect dates back to 1839, although it wasn't until April 1954 when the first practical solar cell was developed by researchers at Bell Laboratories. That’s the best part of a century ago and solar power has never really taken off. A little over 1% of NZ houses and businesses have solar panels installed and uptake remains slow. That might change if Tesla can successfully push their solar house tiles to more people, assuming the price is not prohibitive.
For commercial buildings, there is limited roof space for solar panels (or Tesla style tiles) and they can look less than aesthetically desirable if plastered down the sides. But what about a paint that can create electricity?
A school gym in Almere, Netherlands, is coated in a special green paint. This paint helps the panels absorb sunlight, converting the energy into electricity used to power a heat pump for heating or cooling. It's one example of what's known as 'Solar Paint'.
There are several different variations of solar paint. Scientists from the Royal Melbourne Institute of Technology (RMIT) have developed a solar paint containing titanium oxide with a new compound synthetic molybdenum-sulphide. This paint is unique in that it not only uses sunlight but can also absorb moisture vapour from the air, splitting the atoms into hydrogen and oxygen. The harvested hydrogen can then be used as fuel. The researchers believe the paint will have multiple applications, including use on walls, fences and sheds, effectively turning each into an energy harvesting structure.
Meanwhile, the University of Toronto has been busy developing Quantum Dot Solar Cells. Nanoscale semiconductors are embedded a photon absorbing film, which, in theory, can be sprayed on pretty much anything. That includes an aeroplane wing or a car roof. Indeed, they believe spraying the roof of your car would be good enough to generate enough electricity to power 24 compact fluorescent lights.
That sounds pretty good. As does Perovskite Solar Paint, developed by the University of Sheffield. They've managed to develop a liquid form of Perovskite crystal structures (named after Leo Perovski's discovery in the Ural Mountains in 1939) which can be spray painted onto a surface.
All of the above have common advantages. Namely, the ability to turn almost any surface into an energy harvesting device. However, they all suffer from the same disadvantage. Solar Paint is not very efficient and only captures up to 8% of solar energy.
There's also the issue of commercialisation. As with the building examples in Norway and the USA, the theory might be find but practical implementation for everyday projects is not likely anytime soon.