arXiv · 1804.09670
Bottom up synthesis of multifunctional nanoporous graphene
Abstract
Nanosize pores can turn semimetallic graphene into a semiconductor and from being impermeable into the most efficient molecular sieve membrane. However, scaling the pores down to the nanometer, while fulfilling the tight structural constraints imposed by applications, represents an enormous challenge for present top-down strategies. Here we report a bottom-up method to synthesize nanoporous graphene comprising an ordered array of pores separated by ribbons, which can be tuned down to the one nanometer range. The size, density, morphology and chemical composition of the pores are defined with atomic precision by the design of the molecular precursors. Our measurements further reveal a highly anisotropic electronic structure, where orthogonal one-dimensional electronic bands with an energy gap of ~1 eV coexist with confined pore states, making the nanoporous graphene a highly versatile semiconductor for simultaneous sieving and electrical sensing of molecular species.
Explore related subjects
Keep this discovery
César Moreno, Manuel Vilas-Varela, Bernhard Kretz, Aran Garcia-Lekue, Marius V. Costache, Marcos Paradinas, Mirco Panighel, Gustavo Ceballos, Sergio O. Valenzuela, Diego Peña, Aitor Mugarza. 2018-04-25. Bottom up synthesis of multifunctional nanoporous graphene. https://doi.org/10.1126/science.aar2009
Cite the original work for its findings. Save a collection to share your selection of sources.