Quantum Fox Lab Bar-Ilan University · Physics
Pillar 02

Graphene Quantum Simulation

Electrons in graphene travel like light: they refract, focus, and interfere. We build electron-optical circuits that turn a sheet of carbon into a programmable simulator for quantum wave physics.


Contents

The idea

In clean graphene an electron can cross several microns without scattering once. Over that distance it stops behaving like a particle drifting through a wire and starts behaving like a beam: it travels in straight lines, it reflects, it diffracts, and it interferes with itself.

Once electrons behave like light, the tools of optics become available. A gate electrode that changes the carrier density from electrons to holes acts as an interface — and an unusual one, because electrons crossing it refract to the wrong side of the normal. A diverging fan of electrons entering such a junction is brought back to a point on the far side: a lens made of nothing but a voltage.

That is the sketch on our front page. Build enough of these elements — lenses, collimators, cavities, beam splitters — and a sheet of carbon becomes an instrument for studying quantum wave physics directly, under conditions we set. Materials become quantum-wave simulations.

Central questions

  1. Which quantum problems become easy to ask when the wave you are steering is an electron rather than a photon?
  2. How far can electron-optical elements be miniaturised and combined before coherence is lost?
  3. What happens to electron optics when the electrons interact strongly with one another — a regime light never enters?
  4. Can a gate-defined circuit be programmed to simulate a target Hamiltonian on demand?

Where this goes

A quantum simulator that is not built from atoms in a trap or qubits in a fridge, but from the electrons already inside a material — reconfigurable by gate voltage, read out electrically, and cheap enough to iterate on quickly.

The near-term work is to make the optical elements good: sharp interfaces, low disorder, predictable trajectories. The longer game is to combine them into circuits whose output tells us something we could not have calculated.

Capabilities and methods

Ballistic 2D devicesEncapsulated graphene heterostructures in which electrons travel micron distances without scattering.
Gate-defined electron opticsp–n junctions, lenses and cavities patterned electrostatically, so one device can be reshaped between measurements.
Cryogenic transportThe primary readout: what arrives where, and with what phase.
Optical controlWhere useful, the same high-field and time-resolved optics that serve the cavity programme — the two pillars share a toolbox on purpose.
Work here

We are always looking for motivated students and postdocs.

How to apply →