Two-dimensional (2D) material

Also called two-dimensional crystal

Everyday term

In plain words

A crystal so thin that it is only one or a few atoms thick – a sheet rather than a lump. Graphene, a of carbon atoms, is the best-known example: about 300,000 of its layers stacked up would be as thick as one sheet of paper. At that thickness a material can conduct, glow or respond to magnetism quite differently from the same substance in bulk.

Going deeper

Left: four stacked rows of bonded atoms representing layers of a crystal, labelled covalent bonds within each row and a van der Waals gap between rows; an arrow shows one layer being peeled off or grown, giving a single row labelled a 2D crystal. Right: seven examples with their behaviour – graphene a semimetal, hBN an insulator, MoS₂ a direct-gap semiconductor, NbSe₂ a superconductor, CrI₃ a ferromagnet, 1T′-WTe₂ with topological edge states, and Ti₃C₂Tₓ a metal etched from a bulk solid. strong within layers, weak between covalent bonds van der Waals gap peel off, or grow, one layer a 2D crystal most come from layered crystals such as graphite, MoS₂ or CrI₃ one thickness, many behaviours graphene semimetal, very high mobility hBN insulator, gap ≈ 6 eV MoS₂ direct-gap semiconductor NbSe₂ metal and superconductor CrI₃ ferromagnet at one layer 1T′-WTe₂ topological edge states Ti₃C₂Tₓ metal, etched from a bulk solid
Most 2D materials are single layers of crystals whose layers are held together only weakly. At the same thickness of an atom or a few, they cover nearly every electronic behaviour known in bulk solids – and some, like MXenes, come from crystals that are not layered at all.

What makes a material two-dimensional

A 2D material is a crystal one or a few layers thick, thin enough that its electrons and vibrations are confined in one direction. The usual source is a layered bulk crystal: strong or ionic bonds hold each layer together, and weak hold the layers to each other, so a single layer can be peeled off or grown on its own without on its faces.

For a long time strictly two-dimensional crystals were thought too unstable to exist freely. Graphene, isolated in 2004, proved otherwise, and a year later the same simple gave single layers of hBN, MoS2, NbSe2 and a cuprate – showing that graphene was the first member of a large family rather than a curiosity.

Why thinness changes properties

Several effects appear together when a crystal is thinned to one layer. Confinement reshapes the bands: MoS2 changes from an indirect to a . Screening weakens, because there is little material around each charge, so bind into with energies of hundreds of millielectronvolts. Every atom is at the surface, so gates, adsorbed molecules, and act on the whole material at once. Symmetry changes with the number of layers, switching effects such as on and off.

The same exposure is also the main practical difficulty: the environment is part of the material, and a monolayer’s properties can only be quoted together with what it sits on and what covers it.

Beyond layered crystals

Not every 2D material comes from a van der Waals crystal. such as Ti3C2Tx are made by chemically one element out of a bulk MAX phase, leaving sheets whose surfaces carry oxygen, fluorine or hydroxyl groups. Borophene and silicene exist only as layers grown on metal substrates. Two-dimensional oxides, layered perovskites and covalent organic frameworks extend the idea further. Computational screens of known crystal structures have flagged well over a thousand compounds as potentially exfoliable.

The word is also used loosely. “2D” in the chemistry literature are often tens of layers thick and behave much like the bulk. A thickness or layer count, measured rather than assumed, is what makes the label meaningful.

For specialists

A crystalline material whose thickness is one or a few , so that electrons, and other excitations are confined in one direction. Most are obtained from layered bulk crystals in which strong in-plane bonds coexist with weak van der Waals bonding between layers.

Where this comes from

  1. Two-dimensional atomic crystals Novoselov et al. · PNAS 102, 10451 (2005) cited by 11,702