| Literature DB >> 23811605 |
Qing Li1, Jonathan R Owens, Chengbo Han, Bobby G Sumpter, Wenchang Lu, Jerzy Bernholc, V Meunier, Peter Maksymovych, Miguel Fuentes-Cabrera, Minghu Pan.
Abstract
We demonstrate a controllable surface-Entities:
Year: 2013 PMID: 23811605 PMCID: PMC3696919 DOI: 10.1038/srep02102
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Highly ordered self-assembled linear polymer on Cu(100).
(a) Large scale scan shows a self-organized linear structure forming a “circuit-board” pattern all over the surface. (b) STM close-up image of the linear structure on Cu(100). Inset: A short section of the linear structure is displaced.
Figure 2Highly resolved STM image of the linear structure at very low bias.
(a) Topographic image (Vbias = + 16 meV, Iset = 50 pA) of linear structure showing the internal structure of polymer. (b) Height profiles for linear structures along horizontal and perpendicular directions. Both exhibit an identical structure with the periodicities of 3.65 Å along the chain and 9.1 Å/12.8 Å between the chains. (c) Chemical structure of cis-poly(phenylacetylene)s. The unbonded cis-poly(phenylacetylene)s in gas phase has a planar structure with the width of 9.0 Å, and a periodicity about 4.2 Å along the chain direction. With epitaxial bonding on the Cu substrate, cis-poly(phenylacetylene)s form a corrugated structure.
Figure 3The relaxed structure and the simulated STM image of the linear polymer from DFT calculations.
(a) Top, (b) Side views of the calculated relaxed conformation for periodical cis-poly(phenylacetylene)s adsorbed on four layers of Cu(100), where cyan corresponds to carbon atoms, orange corresponds to the copper atoms of the substrate and light gray corresponds to hydrogen atoms. Buckling of the C-C backbone and surface reconstruction are clearly observed from side views. The middle copper atoms placed 0.03 Å below their equilibrium positions, the in-plane displacement between the copper atom and the unperturbed, unreconstructed equilibrium position is around 0.22 Å, whereas the C-C chain is buckled 0.16 Å out-of-plane in order to adopt the periodicity of 3.7 Å. (c) The high resolution STM topographic (lower panel) and the isosurface plot for a section of the polymerized structure (upper panel).
Figure 4Thermal-induced “soft depolymerization” and controllable depolymerization by STM tip.
(a) and (b) Two STM images during the continuous scanning at 85 K. Stripes along [001] and [010] directions are marked with red and grey colors respectively. Tunneling current is 100 pA and the sample bias is set as +500 mV. (c) A target region in which “circuit board” pattern is formed. Marks are four positions that each voltage pulse is applied. (d) STM image of the region after the voltage pulse. (e) STM image of the region after scanning with +4.5 V sample bias. (f) A zoom-in image into reacted zone shows a four-fold close-packed molecule assembly.
Figure 5Electronic structure and a distinct vibrational mode of the polymerized structure.
(a) The computed band structure Band for the PA polymer on Cu(100). Two bands, shown in green and red, cross the Fermi level: these are contributed by C(s,p) and Cu(s,p) orbitals, respectively; (b) d2I/dV2 recorded directly over the bare Cu(100) surface (red), on a monolayer of adsorbed phenylacetylene molecule (blue) and over the cis-poly(phenylacetylene)s (black). The last spectrum shows a pair of asymmetric peaks at ± 16 mV. The area of the IETS peak gives the conductance change, Δs (Δs/s ~ 20%), as well as the drop of the differential conductance (Inset figure). dI/dV from the lock-in amplifier recorded simultaneously with d2I/dV2 measurement over the cis-poly(phenylacetylene)s. The dI/dV spectrum (Inset) shows a sharp drop and increase at a sample bias of ± 16 mV (arrow). A sample bias modulation of 3 mV was used.