Observation of long-range dipole-dipole interactions in hyperbolic metamaterials

Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
American Association for the Advancement of Science (AAAS)
Published 2018
Publication Date:
2018-10-06
Publisher:
American Association for the Advancement of Science (AAAS)
Electronic ISSN:
2375-2548
Topics:
Natural Sciences in General
Published by:
_version_ 1836399063251025920
autor Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
beschreibung Dipole-dipole interactions ( V dd ) between closely spaced atoms and molecules are related to real photon and virtual photon exchange between them and decrease in the near field connected with the characteristic Coulombic dipole field law. The control and modification of this marked scaling with distance have become a long-standing theme in quantum engineering since dipole-dipole interactions govern Van der Waals forces, collective Lamb shifts, atom blockade effects, and Förster resonance energy transfer. We show that metamaterials can fundamentally modify these interactions despite large physical separation between interacting quantum emitters. We demonstrate a two orders of magnitude increase in the near-field resonant dipole-dipole interactions at intermediate field distances (10 times the near field) and observe the distance scaling law consistent with a super-Coulombic interaction theory curtailed only by absorption and finite size effects of the metamaterial constituents. We develop a first-principles numerical approach of many-body dipole-dipole interactions in metamaterials to confirm our theoretical predictions and experimental observations. In marked distinction to existing approaches of engineering radiative interactions, our work paves the way for controlling long-range dipole-dipole interactions using hyperbolic metamaterials and natural hyperbolic two-dimensional materials.
citation_standardnr 6341873
datenlieferant ipn_articles
feed_id 228416
feed_publisher American Association for the Advancement of Science (AAAS)
feed_publisher_url http://www.aaas.org/
insertion_date 2018-10-06
journaleissn 2375-2548
publikationsjahr_anzeige 2018
publikationsjahr_facette 2018
publikationsjahr_intervall 7984:2015-2019
publikationsjahr_sort 2018
publisher American Association for the Advancement of Science (AAAS)
quelle Science Advances
relation http://advances.sciencemag.org/cgi/content/short/4/10/eaar5278?rss=1
search_space articles
shingle_author_1 Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
shingle_author_2 Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
shingle_author_3 Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
shingle_author_4 Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
shingle_catch_all_1 Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
Dipole-dipole interactions ( V dd ) between closely spaced atoms and molecules are related to real photon and virtual photon exchange between them and decrease in the near field connected with the characteristic Coulombic dipole field law. The control and modification of this marked scaling with distance have become a long-standing theme in quantum engineering since dipole-dipole interactions govern Van der Waals forces, collective Lamb shifts, atom blockade effects, and Förster resonance energy transfer. We show that metamaterials can fundamentally modify these interactions despite large physical separation between interacting quantum emitters. We demonstrate a two orders of magnitude increase in the near-field resonant dipole-dipole interactions at intermediate field distances (10 times the near field) and observe the distance scaling law consistent with a super-Coulombic interaction theory curtailed only by absorption and finite size effects of the metamaterial constituents. We develop a first-principles numerical approach of many-body dipole-dipole interactions in metamaterials to confirm our theoretical predictions and experimental observations. In marked distinction to existing approaches of engineering radiative interactions, our work paves the way for controlling long-range dipole-dipole interactions using hyperbolic metamaterials and natural hyperbolic two-dimensional materials.
Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
American Association for the Advancement of Science (AAAS)
2375-2548
23752548
shingle_catch_all_2 Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
Dipole-dipole interactions ( V dd ) between closely spaced atoms and molecules are related to real photon and virtual photon exchange between them and decrease in the near field connected with the characteristic Coulombic dipole field law. The control and modification of this marked scaling with distance have become a long-standing theme in quantum engineering since dipole-dipole interactions govern Van der Waals forces, collective Lamb shifts, atom blockade effects, and Förster resonance energy transfer. We show that metamaterials can fundamentally modify these interactions despite large physical separation between interacting quantum emitters. We demonstrate a two orders of magnitude increase in the near-field resonant dipole-dipole interactions at intermediate field distances (10 times the near field) and observe the distance scaling law consistent with a super-Coulombic interaction theory curtailed only by absorption and finite size effects of the metamaterial constituents. We develop a first-principles numerical approach of many-body dipole-dipole interactions in metamaterials to confirm our theoretical predictions and experimental observations. In marked distinction to existing approaches of engineering radiative interactions, our work paves the way for controlling long-range dipole-dipole interactions using hyperbolic metamaterials and natural hyperbolic two-dimensional materials.
Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
American Association for the Advancement of Science (AAAS)
2375-2548
23752548
shingle_catch_all_3 Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
Dipole-dipole interactions ( V dd ) between closely spaced atoms and molecules are related to real photon and virtual photon exchange between them and decrease in the near field connected with the characteristic Coulombic dipole field law. The control and modification of this marked scaling with distance have become a long-standing theme in quantum engineering since dipole-dipole interactions govern Van der Waals forces, collective Lamb shifts, atom blockade effects, and Förster resonance energy transfer. We show that metamaterials can fundamentally modify these interactions despite large physical separation between interacting quantum emitters. We demonstrate a two orders of magnitude increase in the near-field resonant dipole-dipole interactions at intermediate field distances (10 times the near field) and observe the distance scaling law consistent with a super-Coulombic interaction theory curtailed only by absorption and finite size effects of the metamaterial constituents. We develop a first-principles numerical approach of many-body dipole-dipole interactions in metamaterials to confirm our theoretical predictions and experimental observations. In marked distinction to existing approaches of engineering radiative interactions, our work paves the way for controlling long-range dipole-dipole interactions using hyperbolic metamaterials and natural hyperbolic two-dimensional materials.
Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
American Association for the Advancement of Science (AAAS)
2375-2548
23752548
shingle_catch_all_4 Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
Dipole-dipole interactions ( V dd ) between closely spaced atoms and molecules are related to real photon and virtual photon exchange between them and decrease in the near field connected with the characteristic Coulombic dipole field law. The control and modification of this marked scaling with distance have become a long-standing theme in quantum engineering since dipole-dipole interactions govern Van der Waals forces, collective Lamb shifts, atom blockade effects, and Förster resonance energy transfer. We show that metamaterials can fundamentally modify these interactions despite large physical separation between interacting quantum emitters. We demonstrate a two orders of magnitude increase in the near-field resonant dipole-dipole interactions at intermediate field distances (10 times the near field) and observe the distance scaling law consistent with a super-Coulombic interaction theory curtailed only by absorption and finite size effects of the metamaterial constituents. We develop a first-principles numerical approach of many-body dipole-dipole interactions in metamaterials to confirm our theoretical predictions and experimental observations. In marked distinction to existing approaches of engineering radiative interactions, our work paves the way for controlling long-range dipole-dipole interactions using hyperbolic metamaterials and natural hyperbolic two-dimensional materials.
Newman, W. D., Cortes, C. L., Afshar, A., Cadien, K., Meldrum, A., Fedosejevs, R., Jacob, Z.
American Association for the Advancement of Science (AAAS)
2375-2548
23752548
shingle_title_1 Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
shingle_title_2 Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
shingle_title_3 Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
shingle_title_4 Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
timestamp 2025-06-30T23:37:00.961Z
titel Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
titel_suche Observation of long-range dipole-dipole interactions in hyperbolic metamaterials
topic TA-TD
uid ipn_articles_6341873