dor_id: 41173

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100.1.#.a: Arévalo Aguilar, L. M.; Moya Cessa, H.

524.#.#.a: Arévalo Aguilar, L. M., et al. (2002). Quantum bits and superposition of displaced Fock states of the cavity field. Revista Mexicana de Física; Vol 48, No 5: 423-0. Recuperado de https://repositorio.unam.mx/contenidos/41173

245.1.0.a: Quantum bits and superposition of displaced Fock states of the cavity field

502.#.#.c: Universidad Nacional Autónoma de México

561.1.#.a: Facultad de Ciencias, UNAM

264.#.0.c: 2002

264.#.1.c: 2002-01-01

653.#.#.a: Qubits; rotating wave approximation; Jaynes-Cummings model

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041.#.7.h: eng

520.3.#.a: The stability in the capillary flow of spurting materials was analyzed by following the temporal variation of their average birefringence. Two different fluids were analyzed, a high-density polyethylene melt, and an aqueous micellar solution of Cetylpyridinium Chloride and Sodium Salicylate. Birefringence changes were detected through measurements of the transmitted light intensity and video images of the flow channel. Transmitted light intensity measurements were more sensitive and provided better information about the flow stability than pressure ones. An unstable flow region was present in the micellar solution before the onset of spurt. Also, there were periodic changes in the optical properties of both fluids, in the spurt region and at higher shear rates, which indicate that the flow is also unstable in the high shear rate branch, in contrast to the generalized assumption of the stable flow in such regime. Several frequency components of the transmitted light intensity were observed, coincident with different spurts, in the unstable flow regimes for both fluids. Finally, an outstanding decrease in the transmitted light intensity was observed in both fluids under flow conditions where slip was present.

773.1.#.t: Revista Mexicana de Física; Vol 48, No 5 (2002): 423-0

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Artículo

Quantum bits and superposition of displaced Fock states of the cavity field

Arévalo Aguilar, L. M.; Moya Cessa, H.

Facultad de Ciencias, UNAM, publicado en Revista Mexicana de Física, y cosechado de Revistas UNAM

Licencia de uso

Procedencia del contenido

Entidad o dependencia
Facultad de Ciencias, UNAM
Revista
Repositorio
Contacto
Revistas UNAM. Dirección General de Publicaciones y Fomento Editorial, UNAM en revistas@unam.mx

Cita

Arévalo Aguilar, L. M., et al. (2002). Quantum bits and superposition of displaced Fock states of the cavity field. Revista Mexicana de Física; Vol 48, No 5: 423-0. Recuperado de https://repositorio.unam.mx/contenidos/41173

Descripción del recurso

Autor(es)
Arévalo Aguilar, L. M.; Moya Cessa, H.
Tipo
Artículo de Investigación
Área del conocimiento
Físico Matemáticas y Ciencias de la Tierra
Título
Quantum bits and superposition of displaced Fock states of the cavity field
Fecha
2002-01-01
Resumen
The stability in the capillary flow of spurting materials was analyzed by following the temporal variation of their average birefringence. Two different fluids were analyzed, a high-density polyethylene melt, and an aqueous micellar solution of Cetylpyridinium Chloride and Sodium Salicylate. Birefringence changes were detected through measurements of the transmitted light intensity and video images of the flow channel. Transmitted light intensity measurements were more sensitive and provided better information about the flow stability than pressure ones. An unstable flow region was present in the micellar solution before the onset of spurt. Also, there were periodic changes in the optical properties of both fluids, in the spurt region and at higher shear rates, which indicate that the flow is also unstable in the high shear rate branch, in contrast to the generalized assumption of the stable flow in such regime. Several frequency components of the transmitted light intensity were observed, coincident with different spurts, in the unstable flow regimes for both fluids. Finally, an outstanding decrease in the transmitted light intensity was observed in both fluids under flow conditions where slip was present.
Tema
Qubits; rotating wave approximation; Jaynes-Cummings model
Idioma
eng
ISSN
2683-2224 (digital); 0035-001X (impresa)

Enlaces