Transmission Electron Microscopy at the Quantum Limit
arXiv:2201.09183 · doi:10.1063/5.0086148
Abstract
A number of visions for a new generation of dose-efficient electron microscopes have been advanced. These proposals, while inspired by quantum principles, make little contact with the broader field of quantum metrology. We discuss a framework calculating the amount of information carried by each electron. This makes it possible to evaluate the potential effectiveness of any particular microscope architecture relative to the quantum limit for information per dose. In the case of phase imaging, we argue this limit is at least an order of magnitude beyond what is possible with aberration-free Zernike phase contrast.
The following article has been submitted to Applied Physics Letters
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- Quantum Limits of Position and Polarizability Estimation in the Optical Near Field
- Ghost Imaging with Free Electron-Photon Pairs
- Cavity cooling using ultrafast electrons
- Two-electron quantum walks can probe entanglement and decoherence in an electron microscope
- Dose-efficient Quantum Phase Estimation in Lossy Optical Interferometry