The strongest material known to mankind was first discovered with sticky tape. Today, this two-dimensional (2D) version of carbon known as graphene is the subject of intense research around the world. Many hope its unique properties could lead to breakthroughs in fields from electronics to medicine.
By 2D we mean it is made from a single layer of atoms. In graphene’s case, these are arranged in a hexagonal pattern that help make it incredibly strong. It also conducts electricity and heat at unprecedented levels, is impermeable to gases and can be both brittle and ductile.
Yet while graphene has received incredible attention and won its discoverers a Nobel Prize, it’s no longer alone in the world of 2D materials. Many other similar materials have since been predicted and isolated, each with similar structural properties to graphene but also a variety of unique individual characteristics.
In fact, there are so many 2D materials with such a wide variety of properties that we can effectively use them to design and build new 3D materials with the exact characteristics we want. This idea of an atomic-scale “Lego set” creates potentially infinite possibilities for new substances.
Theoretically, almost any 3D material can have a 2D counterpart. The list so far includes: silicene (a single layer of silicon), phosphorene (a single layer of black phosphorus), and various monolayers of chemical compounds known as transition-metal dichalcogenides (TMDCs), such as molybdenum disulfide (MoS₂) and molybdenum ditelluride (MoTe₂). Research is ongoing into probably dozens of methods to isolate these materials.
The two main methods used are mechanical exfoliation – which was the method first used to make graphene by isolating individual layers with adhesive tape – and by effectively growing a 2D layer of crystals directly onto a flat base.
In practice, however, there are many limitations to what is currently possible. Only highly thermally and chemically stable materials can be separated into monolayers, which immediately discounts many elements. And, once isolated, many metallic monolayers in particular tend to corrode or oxidise in a way that destroys their desired properties.
We could also see graphene and other 2D materials used to help generate and store energy. For example, graphene-based heterostructures can be used to help create highly efficient and flexible solar and fuel cells. These heterostructures are also being used to develop next-generation batteries and supercapacitors, which promise faster charging and extended energy output. Scientists have even managed to create 2D versions of materials that had previously been though impossible, such as a 2D version of the mineral perovskite, which could be used to improve LEDs.
With the growth of electric cars and companies such as Tesla leading us towards a future of greener energy conversion and storage solutions, there is sure to be a huge focus on this sort of technology for the foreseeable future.
Header image: Isolated MoS₂ monolayer. Andrew Beckinsale, Author provided
This article was originally published on The Conversation. Read the original article.