Engineering van der Waals heterostructures for dispersion-selective meV-scale quantum sensing

Quantum sensing of meV-scale scattering and absorption of impinging particles with electrons in solid state detectors is a challenging technological advancement with the potential to enable breakthroughs in quantum information applications and studies of fundamental physics. However, a key obstacle for current sensing schemes is the difficulty in distinguishing the signals from particles of interest and from intrinsic excitations, like phonons or magnons. Here we propose a technique to selectively detect impinging particles based not only on their imparted energy, but specifically by their dispersion relations. By harnessing interfacial orbital hybridization in van der Waals heterostructures of Dirac materials, interlayer charge transfer may be promoted only for pre-selected impinging particles of interest. Using first-principles density functional theory (DFT) calculations of heterostructures of the layered Dirac materials ZrTe5 and HfTe5, we examine the effects of strain and layer number for successfully tuning orbital hybridization in their electronic structure. We demonstrate a proof-or-principle feasibility study for using Dirac materials to construct dispersion filters to be leveraged for next-generation meV-scale quantum sensors.

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Publication Details

Journal
Physical Review Materials
Published
2026-09-04
DOI
https://doi.org/10.1103/ygsh-t9r2
Primary Topic
Topological Materials and Phenomena
Type
article
Field-Weighted Citation Impact
0.00

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article

Engineering van der Waals heterostructures for dispersion-selective meV-scale quantum sensing

Elizabeth A. Peterson
Physical Review Materials
Topological Materials and Phenomena
article

Engineering van der Waals heterostructures for dispersion-selective meV-scale quantum sensing

Elizabeth A. Peterson
article en

Abstract

Quantum sensing of meV-scale scattering and absorption of impinging particles with electrons in solid state detectors is a challenging technological advancement with the potential to enable breakthroughs in quantum information applications and studies of fundamental physics. However, a key obstacle for current sensing schemes is the difficulty in distinguishing the signals from particles of interest and from intrinsic excitations, like phonons or magnons. Here we propose a technique to selectively detect impinging particles based not only on their imparted energy, but specifically by their dispersion relations. By harnessing interfacial orbital hybridization in van der Waals heterostructures of Dirac materials, interlayer charge transfer may be promoted only for pre-selected impinging particles of interest. Using first-principles density functional theory (DFT) calculations of heterostructures of the layered Dirac materials ZrTe5 and HfTe5, we examine the effects of strain and layer number for successfully tuning orbital hybridization in their electronic structure. We demonstrate a proof-or-principle feasibility study for using Dirac materials to construct dispersion filters to be leveraged for next-generation meV-scale quantum sensors.

Physical Review MaterialsVol. 10(9)
Los Alamos National Laboratory (US)
U.S. Department of Energy, Center for Integrated Nanotechnologies, National Energy Research Scientific Computing Center, Laboratory Directed Research and Development, Los Alamos National Laboratory, Institute for Materials Science, Los Alamos National Laboratory
Openalex Percentile: Top 75%
Topological Materials and Phenomena
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