Toward Special-Relativity-on-a-Chip: analogue of Einstein velocity addition using optical add-drop filter (OADF)

We present an optical analogue of a central concept (not a specific relativistic effect) in Special Relativity (SR) that underlies many relativistic effects. This concept is the Einstein Velocity Addition (EVA) which plays a fundamental role in the development of SR. The photonic circuit analogue is...

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Main Authors: Dingel, Benjamin, Buenaventura, Aria, Chua, Annelle, Libatique, Nathaniel Joseph C
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Published: Archīum Ateneo 2019
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Online Access:https://archium.ateneo.edu/ecce-faculty-pubs/20
https://www.tandfonline.com/doi/full/10.1080/09500340.2018.1564846?casa_token=ngunCMClwEAAAAAA%3A2Gl1NIDkWX9XRMQ1hxI1ab6flKJCMZJ6EP8px6T4JXX353kBd99qpplixOOuHxi8b7jeuCSbe4p4Gw
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Institution: Ateneo De Manila University
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spelling ph-ateneo-arc.ecce-faculty-pubs-10192020-04-22T06:12:05Z Toward Special-Relativity-on-a-Chip: analogue of Einstein velocity addition using optical add-drop filter (OADF) Dingel, Benjamin Buenaventura, Aria Chua, Annelle Libatique, Nathaniel Joseph C We present an optical analogue of a central concept (not a specific relativistic effect) in Special Relativity (SR) that underlies many relativistic effects. This concept is the Einstein Velocity Addition (EVA) which plays a fundamental role in the development of SR. The photonic circuit analogue is between the EVA, and the complex electric field, through the output signal of the optical add-drop filter (OADF). The OADF is one of the key building blocks for wavelength filtering in photonic integrated circuits (PICs or photonic chip). This analogue strengthens the vision toward a Special-Relativity-on-a-Chip. The analogy is established by equating the two relativistic normalized velocities in EVA with the two transmission coupling coefficients of the two directional couplers in the OADF. Furthermore, the generating angle in the EVA is associated with the single-pass phase shift of the OADF. We analyze its magnitude and directional angle in detail. Lastly, other important consequences are also briefly discussed. 2019-01-01T08:00:00Z text https://archium.ateneo.edu/ecce-faculty-pubs/20 https://www.tandfonline.com/doi/full/10.1080/09500340.2018.1564846?casa_token=ngunCMClwEAAAAAA%3A2Gl1NIDkWX9XRMQ1hxI1ab6flKJCMZJ6EP8px6T4JXX353kBd99qpplixOOuHxi8b7jeuCSbe4p4Gw Electronics, Computer, and Communications Engineering Faculty Publications Archīum Ateneo Photonic integrated circuits Einstein velocity addition Special Relativity microring resonator (MRR) optical add-drop filter (OADF) Electrical and Computer Engineering
institution Ateneo De Manila University
building Ateneo De Manila University Library
continent Asia
country Philippines
Philippines
content_provider Ateneo De Manila University Library
collection archium.Ateneo Institutional Repository
topic Photonic integrated circuits
Einstein velocity addition
Special Relativity
microring resonator (MRR)
optical add-drop filter (OADF)
Electrical and Computer Engineering
spellingShingle Photonic integrated circuits
Einstein velocity addition
Special Relativity
microring resonator (MRR)
optical add-drop filter (OADF)
Electrical and Computer Engineering
Dingel, Benjamin
Buenaventura, Aria
Chua, Annelle
Libatique, Nathaniel Joseph C
Toward Special-Relativity-on-a-Chip: analogue of Einstein velocity addition using optical add-drop filter (OADF)
description We present an optical analogue of a central concept (not a specific relativistic effect) in Special Relativity (SR) that underlies many relativistic effects. This concept is the Einstein Velocity Addition (EVA) which plays a fundamental role in the development of SR. The photonic circuit analogue is between the EVA, and the complex electric field, through the output signal of the optical add-drop filter (OADF). The OADF is one of the key building blocks for wavelength filtering in photonic integrated circuits (PICs or photonic chip). This analogue strengthens the vision toward a Special-Relativity-on-a-Chip. The analogy is established by equating the two relativistic normalized velocities in EVA with the two transmission coupling coefficients of the two directional couplers in the OADF. Furthermore, the generating angle in the EVA is associated with the single-pass phase shift of the OADF. We analyze its magnitude and directional angle in detail. Lastly, other important consequences are also briefly discussed.
format text
author Dingel, Benjamin
Buenaventura, Aria
Chua, Annelle
Libatique, Nathaniel Joseph C
author_facet Dingel, Benjamin
Buenaventura, Aria
Chua, Annelle
Libatique, Nathaniel Joseph C
author_sort Dingel, Benjamin
title Toward Special-Relativity-on-a-Chip: analogue of Einstein velocity addition using optical add-drop filter (OADF)
title_short Toward Special-Relativity-on-a-Chip: analogue of Einstein velocity addition using optical add-drop filter (OADF)
title_full Toward Special-Relativity-on-a-Chip: analogue of Einstein velocity addition using optical add-drop filter (OADF)
title_fullStr Toward Special-Relativity-on-a-Chip: analogue of Einstein velocity addition using optical add-drop filter (OADF)
title_full_unstemmed Toward Special-Relativity-on-a-Chip: analogue of Einstein velocity addition using optical add-drop filter (OADF)
title_sort toward special-relativity-on-a-chip: analogue of einstein velocity addition using optical add-drop filter (oadf)
publisher Archīum Ateneo
publishDate 2019
url https://archium.ateneo.edu/ecce-faculty-pubs/20
https://www.tandfonline.com/doi/full/10.1080/09500340.2018.1564846?casa_token=ngunCMClwEAAAAAA%3A2Gl1NIDkWX9XRMQ1hxI1ab6flKJCMZJ6EP8px6T4JXX353kBd99qpplixOOuHxi8b7jeuCSbe4p4Gw
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