Zobrazeno 1 - 10
of 121
pro vyhledávání: '"Quantum lithography"'
Publikováno v:
Applied Sciences, Vol 8, Iss 8, p 1292 (2018)
The photonic de Broglie wavelength of a non-degenerate entangled photon pair is measured by using a Young’s double slit interferometer, which proves that the non-degenerate entangled photon pairs have the potential to be used in quantum lithography
Externí odkaz:
https://doaj.org/article/d413be225d6f4b57bfce4bc84bdbce35
Publikováno v:
Applied Sciences, Vol 8, Iss 8, p 1292 (2018)
Applied Sciences
Volume 8
Issue 8
Applied Sciences
Volume 8
Issue 8
The photonic de Broglie wavelength of a non-degenerate entangled photon pair is measured by using a Young&rsquo
s double slit interferometer, which proves that the non-degenerate entangled photon pairs have the potential to be used in quantum li
s double slit interferometer, which proves that the non-degenerate entangled photon pairs have the potential to be used in quantum li
Autor:
Alejandro González-Tudela, Carlos Sánchez Muñoz, Carlos Tejedor, Fabrice P. Laussy, Elena del Valle
Publikováno v:
Optica
Engineering multiphoton states is an outstanding challenge with applications in multiple fields such as quantum metrology, quantum lithography, or even biological sensing. State-of-the-art methods to obtain them rely on post-selection, multi-level sy
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::3f2110108c87f96478ab0f5fd087f3d4
https://hdl.handle.net/21.11116/0000-0000-B776-D21.11116/0000-0000-B778-B
https://hdl.handle.net/21.11116/0000-0000-B776-D21.11116/0000-0000-B778-B
Publikováno v:
Scientific Reports
Scientific Reports, Vol 7, Iss 1, Pp 1-7 (2017)
Scientific Reports, Vol 7, Iss 1, Pp 1-7 (2017)
In classical optics, Young’s double-slit experiment with colored coherent light gives rise to individual interference fringes for each light frequency, referring to single-photon interference. However, two-photon double-slit interference has been w
Autor:
Marcel Bergmann, Peter van Loock
Publikováno v:
Physical Review A. 94
The so-called NOON states are quantum optical resources known to be useful especially for quantum lithography and metrology. At the same time, they are known to be very sensitive to photon losses and rather hard to produce experimentally. Concerning
Autor:
Sang-Kon Kim
Publikováno v:
Current Applied Physics. 12:1566-1574
Since the diffraction limit of Rayleigh criterion hardly creates finer features, the development for the quantum lithography of entangled photons, one of technologies beyond the diffraction limit, is a key merit without the shorter wavelength source
Autor:
Jonathan P. Dowling, Robert W. Boyd
Publikováno v:
Quantum Information Processing. 11:891-901
This contribution provides an analysis of progress in the field of quantum lithography. We review the conceptual foundations of this idea and the status of research aimed at implementing this idea in the laboratory. The selection of a highly sensitiv
Autor:
Constantin Dory, Kai Müller, Konstantinos G. Lagoudakis, Armand Rundquist, Kevin A. Fischer, Yousif A. Kelaita, Jelena Vuckovic, Tomas Sarmiento, Alexander Y. Piggott
Publikováno v:
NATURE PHOTONICS
Intrinsic Fano interference in a strongly coupled quantum dot/photonic crystal cavity system is controlled to remove most of the coherently scattered light. This result leads to the first experimental observation of the dynamic Mollow triplet. The st
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::f71d3cbc8f02dfc934af6e63d71b8d5f
http://arxiv.org/abs/1512.04102
http://arxiv.org/abs/1512.04102
Autor:
K.I. Osman, Amitabh Joshi
Publikováno v:
The European Physical Journal D. 69
A method to carry out the sub-wavelength lithography using a double electromagnetically induced transparency system is proposed here. In order to realize the sub-wavelength pattern, spatial modulation of the coupling and driving fields, which control
Publikováno v:
Informatik - Forschung und Entwicklung. 21:73-82
Quantum information theory holds the promise of revolutionizing technologies other than computing and communications. In this article we show how quantum entanglement can be harnessed to beat the Rayleigh diffraction limit of conventional optical lit