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ALPS II is a light shining through a wall style experiment that will use the principle of resonant enhancement to boost the conversion and reconversion probabilities of photons to relativistic WISPs.
Laser Beams and Resonators
H. Kogelnik and T. Li · 1966
Earlier work this paper cites.
Laser phase and frequency stabilization using an optical resonator
R. W. P. Drever, J. L. Hall, F. V. Kowalski, J. Hough, G. M. Ford, A. J. Munley, and H. Ward · 1983
Earlier work this paper cites.
Production and detection of light bosons using optical resonators
F Hoogeveen and T Ziegenhagen · 1991
Earlier work this paper cites.
Automatic alignment of optical interferometers
Euan Morrison, Brian J. Meers, David I. Robertson, and Henry Ward · 1994
Earlier work this paper cites.
Production and detection of axions by using optical resonators
Yukio Fukuda, Toshiro Kohmoto, Shin ichi Nakajima, and Masakuzu Kunitomo · 1996
Earlier work this paper cites.
Dynamic response of a Fabry–Perot interferometer
M. J. Lawrence, B. Willke, M. E. Husman, E. K. Gustafson, and R. L. Byer · 1999
Earlier work this paper cites.
An introduction to Pound–Drever–Hall laser frequency stabilization
Eric D. Black · 2001
Earlier work this paper cites.
Resonantly enhanced axion-photon regeneration
P. Sikivie, D. B. Tanner, and Karl van Bibber · 2007
Cited alongside, same era.
Fundamental mode, single-frequency laser amplifier for gravitational wave detectors
Maik Frede, Bastian Schulz, Ralf Wilhelm, Patrick Kwee, Frank Seifert, Benno Willke, and Dietmar Kracht · 2007
Cited alongside, same era.
Automatic laser beam characterization of monolithic Nd:YAG nonplanar ring lasers
Patrick Kwee and Benno Willke · 2008
Cited alongside, same era.
New ALPS results on hidden-sector lightweights
Klaus Ehret, Maik Frede, Samvel Ghazaryan, Matthias Hildebrandt, Ernst-Axel Knabbe, Dietmar Kracht, Axel Lindner, Jenny List, Tobias Meier, Niels Meyer, Dieter Notz, Javier Redondo, Andreas Ringwald, Günter Wiedemann, and Benno Willke · 2010
Cited alongside, same era.
Any light particle search II — Technical Design Report
R Bähre, B Döbrich, J Dreyling-Eschweiler, S Ghazaryan, R Hodajerdi, D Horns, F Januschek, E A Knabbe, A Lindner, D Notz, A Ringwald, J E von Seggern, R Stromhagen, D Trines, and B Willke · 2013
Cited alongside, same era.
Review of particle physics
K.A. Olive and Particle Data Group · 2014
Later among the works it cites.
Advanced LIGO
The LIGO Scientific Collaboration · 2015
Later among the works it cites.
Experimental searches for the axion and axion-like particles
Peter W. Graham, Igor G. Irastorza, Steven K. Lamoreaux, Axel Lindner, and Karl A. van Bibber · 2015
Later among the works it cites.
New exclusion limits on scalar and pseudoscalar axionlike particles from light shining through a wall
R. Ballou, G. Deferne, M. Finger, M. Finger, L. Flekova, J. Hosek, S. Kunc, K. Macuchova, K. A. Meissner, P. Pugnat, M. Schott, A. Siemko, M. Slunecka, M. Sulc, C. Weinsheimer, and J. Zicha · 2015
Later among the works it cites.
The PVLAS experiment: measuring vacuum magnetic birefringence and dichroism with a birefringent Fabry–Perot cavity
Federico Della Valle, Aldo Ejlli, Ugo Gastaldi, Giuseppe Messineo, Edoardo Milotti, Ruggero Pengo, Giuseppe Ruoso, and Guido Zavattini · 2016
Closest in time.
The advanced LIGO input optics
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First results of the CERN Resonant Weakly Interacting sub-eV Particle Search (CROWS)
M. Betz, F. Caspers, M. Gasior, M. Thumm, and S. W. Rieger · 2013
Cited alongside, same era.
Loss in long-storage-time optical cavities
T. Isogai, J. Miller, P. Kwee, L. Barsotti, and M. Evans · 2013
Cited alongside, same era.
Chris L. Mueller, Muzammil A. Arain, Giacomo Ciani, Ryan. T. DeRosa, Anamaria Effler, David Feldbaum, Valery V. Frolov, Paul Fulda, Joseph Gleason, Matthew Heintze, Keita Kawabe, Eleanor J. King, Keiko Kokeyama, William Z. Korth, Rodica M. Martin, Adam Mullavey, Jan Peold, Volker Quetschke, David H. Reitze, David B. Tanner, Cheryl Vorvick, Luke F. Williams, and Guido Mueller · 2016
Closest in time.