Quantum surface-response of metals revealed by acoustic graphene plasmons

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作者
P. A. D. Gonçalves
Thomas Christensen
Nuno M. R. Peres
Antti-Pekka Jauho
Itai Epstein
Frank H. L. Koppens
Marin Soljačić
N. Asger Mortensen
机构
[1] Massachusetts Institute of Technology,Department of Physics
[2] University of Southern Denmark,Center for Nano Optics
[3] University of Minho,Department of Physics and Center of Physics
[4] International Nanotechnology Laboratory,Center for Nanostructured Graphene
[5] Technical University of Denmark,Department of Physics
[6] Technical University of Denmark,ICFO—Institut de Ciències Fotòniques
[7] The Barcelona Institute of Science and Technology,Department of Physical Electronics, School of Electrical Engineering
[8] Tel Aviv University,Danish Institute for Advanced Study
[9] ICREA – Institució Catalana de Recera i Estudis Avançats,undefined
[10] University of Southern Denmark,undefined
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摘要
A quantitative understanding of the electromagnetic response of materials is essential for the precise engineering of maximal, versatile, and controllable light–matter interactions. Material surfaces, in particular, are prominent platforms for enhancing electromagnetic interactions and for tailoring chemical processes. However, at the deep nanoscale, the electromagnetic response of electron systems is significantly impacted by quantum surface-response at material interfaces, which is challenging to probe using standard optical techniques. Here, we show how ultraconfined acoustic graphene plasmons in graphene–dielectric–metal structures can be used to probe the quantum surface-response functions of nearby metals, here encoded through the so-called Feibelman d-parameters. Based on our theoretical formalism, we introduce a concrete proposal for experimentally inferring the low-frequency quantum response of metals from quantum shifts of the acoustic graphene plasmons dispersion, and demonstrate that the high field confinement of acoustic graphene plasmons can resolve intrinsically quantum mechanical electronic length-scales with subnanometer resolution. Our findings reveal a promising scheme to probe the quantum response of metals, and further suggest the utilization of acoustic graphene plasmons as plasmon rulers with ångström-scale accuracy.
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