A standing molecule as a single-electron field emitter.

Esat, Taner; Friedrich, Niklas; Tautz, F Stefan; Temirov, Ruslan · Nature · 2018

basic_science · Level V

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Abstract

Scanning probe microscopy makes it possible to image and spectroscopically characterize nanoscale objects, and to manipulate<sup>1-3</sup> and excite<sup>4-8</sup> them; even time-resolved experiments are now routinely achieved<sup>9,10</sup>. This combination of capabilities has enabled proof-of-principle demonstrations of nanoscale devices, including logic operations based on molecular cascades <sup>11</sup> , a single-atom transistor <sup>12</sup> , a single-atom magnetic memory cell <sup>13</sup> and a kilobyte atomic memory <sup>14</sup> . However, a key challenge is fabricating device structures that can overcome their attraction to the underlying surface and thus protrude from the two-dimensional flatlands of the surface. Here we demonstrate the fabrication of such a structure: we use the tip of a scanning probe microscope to lift a large planar aromatic molecule (3,4,9,10-perylenetetracarboxylic-dianhydride) into an upright, standing geometry on a pedestal of two metal (silver) adatoms. This atypical and surprisingly stable upright orientation of the single molecule, which under all known circumstances adsorbs flat on metals<sup>15,16</sup>, enables the system to function as a coherent single-electron field emitter. We anticipate that other metastable adsorbate configurations might also be accessible, thereby opening up the third dimension for the design of functional nanostructures on surfaces.