H. Pan
National Tsing Hua University
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Featured researches published by H. Pan.
International Europhysics Conference on High Energy Physics HEP 93 | 1997
J.-Y. Vinet; F. Bondu; A. Brillet; F. Cleva; H. Heitmann; L. Latrach; N. Man; M. Pham Tu; M. Barsuglia; V. Brisson; F. Cavalier; M. Davier; P. Hello; P. Heusse; F. Lediberder; P. Marin; B. Caron; A. Dominjon; C. Drezen; R. Flaminio; X. Grave; F. Marion; L. Massonet; C. Mehmel; R. Morand; B. Mours; V. Sannibale; M. Yvert; L. Dognin; P. Ganau
The Virgo project is a Italian-French collaboration aiming at the construction of a long baseline interferometric antenna for the detection of gravitational radiation signals of cosmic origin. We describe the principles of the system, and high-light the technical challenges we need to overcome for reaching a sensitiity as low as 10−23Hz−1/2.The gravitational clustering of collisionless particles in an expanding universe is modelled using some simple physical ideas. I show that it is possible to understand the nonlinear clustering in terms of three well defined regimes: (1) linear regime; (2) quasilinear regime which is dominated by scale-invariant radial infall and (3) nonlinear regime dominated by nonradial motions and mergers. Modelling each of these regimes separately I show how the nonlinear two point correlation function can be related to the linear correlation function in hierarchical models. This analysis leads to results which are in good agreement with numerical simulations thereby providing an explanation for numerical results. Using this model and some simple extensions, it is possible to understand the transfer of power from large to small scales and the behaviour of higher order correlation functions. The ideas presented here will also serve as a powerful analytical tool to investigate nonlinear clustering in different models.
Journal of Physics D | 2016
Michael A. Page; C. Zhao; David Blair; L. Ju; Yiqiu Ma; H. Pan; S. Chao; V. P. Mitrofanov; Hamed Sadeghian
Thermal noise generally greatly exceeds quantum noise in optomechanical devices unless the mechanical frequency is very high or the thermodynamic temperature is very low. This paper addresses the design concept for a novel optomechanical device capable of ultrahigh quality factors in the audio frequency band with negligible thermal noise. The proposed system consists of a minimally supported millimeter scale pendulum mounted in a Double End-Mirror Sloshing (DEMS) cavity that is topologically equivalent to a Membrane-in-the-Middle (MIM) cavity. The radiation pressure inside the high-finesse cavity allows for high optical stiffness, cancellation of terms which lead to unwanted negative damping and suppression of quantum radiation pressure noise. We solve for the optical spring dynamics of the system using the Hamiltonian, find the noise spectral density and show that stable optical trapping is possible. We also assess various loss mechanisms, one of the most important being the acceleration loss due to the optical spring. We show that practical devices, starting from a centre-of-mass pendulum frequency of 0.1 Hz, could achieve a maximum quality factor of
Nuclear Physics | 1997
B. Caron; A. Dominjon; C. Drezen; R. Flaminio; X. Grave; F. Marion; L. Massonnet; C. Mehmel; R. Morand; B. Mours; V. Sannibale; M. Yvert; D. Babusci; S. Bellucci; S. Candusso; G. Giordano; G. Matone; J.-M. Mackowski; L. Pinard; F. Barone; E. Calloni; L. Difiore; M. Flagiello; F. Garuti; A. Grado; Maurizio Longo; M. Lops; S. Marano; L. Milano; S. Solimeno
10^{14}
Physics Letters A | 2017
Michael M. Page; James La Fontaine; Xu Chen; C. Zhao; L. Ju; David Blair; H. Pan; Shiuh Chao
with optical spring stiffened frequency 1-10 kHz. Small resonators of mass 1