Literatura académica sobre el tema "Finite coherence length"

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Artículos de revistas sobre el tema "Finite coherence length"

1

Shinohara, Yuya, and Yoshiyuki Amemiya. "Effect of finite spatial coherence length on small-angle scattering." Journal of Applied Crystallography 48, no. 6 (2015): 1660–64. http://dx.doi.org/10.1107/s160057671501715x.

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This study shows that forward scattering at the origin of reciprocal space contributes to the scattering intensity profiles of ultra-small-angle scattering. The forward scattering corresponds to a Fourier transform of the X-ray coherent volume on a sample. This contribution is usually ignored in the study of small-angle scattering, while it is fully considered in the fields of X-ray imaging, such as coherent X-ray diffraction imaging and X-ray ptychography. This effect is explicitly illustrated in the context of small-angle scattering, and the effect of a finite spatial coherence length on small-angle scattering is discussed.
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2

Jacoboni, Carlo, and Paolo Bordone. "Wigner transport equation with finite coherence length." Journal of Computational Electronics 13, no. 1 (2013): 257–63. http://dx.doi.org/10.1007/s10825-013-0510-7.

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3

Baesens, C., and R. S. MacKay. "Finite coherence length for equilibrium states of generalized adiabatic Holstein models." Journal of Mathematical Physics 38, no. 4 (1997): 2104–14. http://dx.doi.org/10.1063/1.532197.

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4

Tomita, Makoto, and Hiroshi Ikari. "Influence of finite coherence length of incoming light on enhanced backscattering." Physical Review B 43, no. 4 (1991): 3716–19. http://dx.doi.org/10.1103/physrevb.43.3716.

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5

Hayashi, Masahito, Kun Fang, and Kun Wang. "Finite Block Length Analysis on Quantum Coherence Distillation and Incoherent Randomness Extraction." IEEE Transactions on Information Theory 67, no. 6 (2021): 3926–44. http://dx.doi.org/10.1109/tit.2021.3064009.

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6

Gong, Zhiben, Yingjian Wang, and Yi Wu. "Finite temporal measurements of the statistical characteristics of the atmospheric coherence length." Applied Optics 37, no. 21 (1998): 4541. http://dx.doi.org/10.1364/ao.37.004541.

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7

CRISAN, M., and I. GROSU. "BOSE–EINSTEIN QUASICONDENSATION IN 2D SYSTEMS." Modern Physics Letters B 19, no. 17 (2005): 821–27. http://dx.doi.org/10.1142/s0217984905008852.

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We calculate the finite temperature correlation function, the coherence length and the critical temperature for a two-dimensional (2D) bosonic system, which presents the quasicondensation (a finite number of occupied states with p0≠0 momentum) effect at very low temperatures. This state, discovered experimentally, appear below a critical temperature for a finite number of particles.
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8

Rajput, B. S., and Sandeep Kumar. "Superconductivity due to Condensation of Monopoles around RCD Strings in SU(2) Gauge Theory." Advances in High Energy Physics 2010 (2010): 1–22. http://dx.doi.org/10.1155/2010/768054.

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The study of the condensation of monopoles and the resulting chromomagnetic superconductivity have been undertaken in restricted chromodynamics of SU(2) gauge theory. Constructing the RCD Lagrangian and the partition function for monopoles in terms of string action and the action of the current around the strings, the monopole current in RCD chromo magnetic superconductor has been derived and it has shown that in London' limit the penetration length governs the monopole density around RCD string in chromo magnetic superconductors while with finite (nonzero) coherence length the leading behavior of the monopole density at large distances from the string is controlled by the coherence length and not by the penetration length.
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9

BEATO, V., and H. ENGEL. "COHERENCE RESONANCE PHENOMENA IN AN EXCITABLE SYSTEM DRIVEN BY COLORED NOISE." Fluctuation and Noise Letters 06, no. 01 (2006): L85—L94. http://dx.doi.org/10.1142/s0219477506003173.

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We study the coherence of noise-induced excitations in a modified stochastic Oregonator model for the light-sensitive Belousov-Zhabotinsky (BZ) reaction assuming that the intensity of the applied illumination is a spatio-temporal stochastic field with finite correlation time and correlation length. For a single excitable element, we find coherence resonance (CR) with respect to the correlation time. In the spatially extended medium of diffusively coupled excitable elements, we observe CR for suitable combinations of the correlation time and length of the noise.
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10

Westfahl, Harry, Sérgio A. Lordano Luiz, Bernd C. Meyer, and Florian Meneau. "The coherent radiation fraction of low-emittance synchrotrons." Journal of Synchrotron Radiation 24, no. 3 (2017): 566–75. http://dx.doi.org/10.1107/s1600577517003058.

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In this work the coherence properties of the synchrotron radiation beam from an X-ray undulator in a fourth-generation storage ring are analyzed. A slightly focused X-ray beam is simulated using a wavefront propagation through a non-redundant array of slits and the mutual coherence function is directly obtained and compared with the Gaussian–Schell approximation. The numerical wave propagation and the approximate analytical approaches are shown to agree qualitatively, and it is also shown that, when the coherent fraction is selected by a finite aperture before the focusing element, even achromatic focusing systems like total reflection mirrors become slightly chromatic. This effect is also well accounted for in the Gaussian–Schell model. The wavefront propagation simulation through the non-redundant array was repeated with an imperfect mirror demonstrating that, although the wavefront is distorted, its coherent length is practically unchanged.
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