Phase-only Pontryagin optimization and deterministic Bragg-regime sequential coupling enable programmable free electron momentum-sideband populations and coherent superposition states with tunable relative phases.
Free electron topological bound state induced by light beam with a twisted wavefront
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abstract
Recent advances in ultrafast electron emission, microscopy, and diffraction have demonstrated a remarkable ability to manipulate free electrons with quantum coherence using light beams. Here, we present a framework for exploring free electron quantum number in ultrafast electron-light interactions. We derive an explicit Jackiw-Rebbi solution for a low-energy free electron wavefunction subjected to a spatiotemporally twisted laser field, resulting in a flying topologically protected bound state with a quantum number of e/2 - termed a "half-electron". This flying bound state is dispersion-free due to its topological nature. We demonstrate the topological confinement and pair generation mechanism of half-electrons in free space, expanding their domain beyond the topological states typically found in solids and photonics. This advancement enhances our understanding of emulating exotic quantum and topological effects with low-energy free electrons.
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quant-ph 1years
2026 1verdicts
CONDITIONAL 1representative citing papers
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Phase-Programmable Free Electron Quantum States in Synthetic Momentum Space
Phase-only Pontryagin optimization and deterministic Bragg-regime sequential coupling enable programmable free electron momentum-sideband populations and coherent superposition states with tunable relative phases.