STM Atom Manipulation 2D: Assembling a Quantum Corral
A top-down 2D scanning-tunneling-microscope simulator: drag the tip across a copper surface, lower it into the manipulation gap to pull or push individual adsorbate atoms, and lock all ten into a target ring — the real lateral-manipulation technique IBM used in 1990 to spell 'IBM' with 35 xenon atoms, with a live log-scale plot of the exponential tunneling current.
Real scanning tunneling microscopes do more than image surfaces — lowering the tip into a "manipulation gap" a few ångströms above an adsorbed atom lets the tip-sample force drag that single atom sideways across the lattice, one hop at a time. This top-down 2D simulator renders a copper surface scattered with ten free adatoms and a ring of ten empty lattice sites. Drag the tip near an atom in pull mode, lower the gap below the manipulation threshold to grab it, and drag it onto an empty ring marker to lock it in place — the same lateral-manipulation technique Don Eigler and Erhard Schweizer used at IBM in 1990 to spell "IBM" with 35 xenon atoms. Live readouts track the exponential tunneling current I(V,d), the current imaging-vs-manipulation regime, how many atoms you've locked into the corral, and a log-scale curve of the tunneling law itself.
A top-down 2D scanning-tunneling-microscope simulator: drag the tip across a copper surface, lower it into the manipulation gap to pull or push individual adsorbate atoms, and lock all ten into a target ring — the real lateral-manipulation technique IBM used in 1990 to spell 'IBM' with 35 xenon atoms, with a live log-scale plot of the exponential tunneling current.
2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install