Abstract
The inhibition in wave propagation at band gap energies plays a central role in many areas of technology such as electronics (electron gaps), nanophotonics (light gaps) and phononics (acoustic gaps), among others. Here we demonstrate that metal surfaces featuring free-electronlike bands may become semiconducting by periodic nanostructuration. We combine scanning tunneling spectroscopy and angle-resolved photoemisssion to accurately determine the energy-dependent local density of states and band structure of the Ag/Cu(111) noble metal interface patterned with an array of triangular dislocations, demonstrating the existence of a 25 meV band gap that extends over the entire surface Brillouin zone. We prove that this gap is a general consequence of symmetry reduction in close-packed metallic overlayers; in particular, we show that the gap opening is due to the symmetry lowering of the wave vector group at the K point from C3υ to C3. © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.
Cite
CITATION STYLE
Malterre, D., Kierren, B., Fagot-Revurat, Y., Didiot, C., García De Abajo, F. J., Schiller, F., … Ortega, J. E. (2011). Symmetry breaking and gap opening in two-dimensional hexagonal lattices. New Journal of Physics, 13. https://doi.org/10.1088/1367-2630/13/1/013026
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