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  1. A. M. Cieplak and A. Slosar, Characterizing the Lyα forest flux probability distribution function using Legendre polynomials, JCAP 10, 013 (2017)
  2. C.-T. Chiang, A. M. Cieplak, F. Schmidt, and A. Slosar, Response approach to the squeezed-limit bispectrum: application to the correlation of quasar and Ly-alpha forest power spectrum, JCAP 06 022 (2017)
  3. A. M. Cieplak and A. Slosar, Towards physics responsible for large-scale structure Lyman-alpha forest bias parameters, JCAP 03 016 (2016)
  4. K. Griest, A. M. Cieplak and M. J. Lehner, Experimental Limits on Primordial Black Hole Dark Matter from the First Two Years of Kepler Data, ApJ. 786 (2), 158 (2014) http://arxiv.org/abs/1307.5798
  5. K. Griest, A. M. Cieplak, and M. J. Lehner, New Limits on Primordial Black Hole Dark Matter from an Analysis of Kepler Source Microlensing Data, Phys. Rev. Lett. 111 181302 (2013). Editor’s Highlight http://link.aps.org/doi/10.1103/PhysRevLett.111.181302
  6. A. M. Cieplak and K. Griest, Improved Theoretical Predictions of Microlensing Rates for the Detection of Primordial Black Hole Dark Matter, ApJ. 767 (2), 145 (2013). http://arxiv.org/abs/1210.7729
  7. K. Griest, M. J. Lehner, A. M. Cieplak, and Bhuvnesh Jain, Microlensing of Kepler Stars as a Method of Detecting Primordial Black Hole Dark Matter, Phys. Rev. Lett. 107, 231101 (2011). Editor’s Highlight http://arxiv.org/abs/1109.4975
  8. Woźniak, S. B., D. Stramski, M. Stramska, R. A. Reynolds, V. M. Wright, E. Y. Miksic, M. Cichocka, and A. M. Cieplak (2010), Optical variability of seawater in relation to particle concentration, composition, and size distribution in the nearshore marine environment at Imperial Beach, California, J. Geophys. Res., 115, C08027, doi:10.1029/2009JC005554.
  9. Stramska, M., D. Stramski, M. Cichocka, A. Cieplak, and S. B. Woz´niak (2008), Effects of atmospheric particles from Southern California on the optical properties of seawater, J. Geophys. Res., 113, C08037, doi:10.1029/2007JC004407.