306
References
Moskowitz, C. (2019). What happened to all the universe’s antimatter? May 23, 2019, scientificamerican.com.
Narayan, R. (1997). Lectures on gravitational lensing. arxiv.org/abs/1907.05922.
NASA. (2019). Website on the LCDM model, containing many original references.
lambda.gsfc.nasa.govNorton.
Newcomb S. (1895). The elements of the four inner planets and the fundamental constants of
astronomy. Supplementary American Ephemeris and Nautical Almanac for 1897, Washington,
D.C., Gov. Printing Office, pp. 1–202.
Ohanian, H.C. & Ruffini, R. (1994). Gravitation and Spacetime. Norton.
Oppenheimer, J. R., & Snyder, H. (1939). On continued gravitational contraction. Physical Review,
56, 455.
Oppenheimer, J. R., & Volkoff, G. M. (1939). On massive neutron cores. Physical Review, 55(4),
374–381.
Pauli, W. (1958). Theory of relativity. Pergamon Press, London. This is a translation from an early
1921 encyclopedia article by Pauli, a famous and clear expositions of the theory.
Peebles, P. J. E. (1965). The black-body radiation content of the universe and the formation of
galaxies. Astrophysics Journal, 142, 1317.
Peebles, P. J. E. (1968). Recombination of the primeval plasma. Astrophysics Journal, 153, 1.
Peebles, P. J. E. (1993). Principles of physical cosmology. Princeton Press.
Perlis, S. (1952). Theory of matrices. Addison-Wesley. This classic is a clear and self-contained
exposition of matrix theory.
Peskin, M. (2019). Concepts of elementary particle physics. Oxford Master Series.
Petrov, A. Z. (1969). Einstein spaces. Pergamon Press.
Planck, M. (1899). Naturlische Masseinheiten. Der Koniglich Preussishen Akademie Der
Wissenschaften, 479.
Planck Collaboration. (2018). Planck 2018 results. VI. Cosmological parameters.
arXiv:1807.06209.
Pound, R. V. (2000). Weighing Photons. Classical and Quantum Gravity, 17(12), 2303–2311.
Quigg, C. (2006). Particles and the standard model. In G. Fraser (Ed.), The new physics for the
twentieth-first century. Cambridge University Press.
Randall, L. (2018). What is dark matter? Nature, 557, S6–S7.
Reiss, A. G., Casertaeno, S., Yuan, W., Macri, L. M. & Scolnic, D. (2019). Large magellanic cloud
cepheid standards provide a 1% foundation for the determination of the hubble constant and
stronger evidence for physics beyond LCDM. arXiv:1903.07603v2 [astro-ph.CO] Mar 2019.
Rindler, W. (1969). Essential relativity. Van Nostrand and Reinhold.
Rovelli, C. (2008). Quantum gravity. Scholarpedia, 3(5), 7117.
Rubin, V. (1995). A century of galaxy spectroscopy. The Astrophysical Journal 451: 419ff.
Rubin, V. (1997). Bright galaxies, dark matters. Masters of Modern Physics. Woodbury, New York
City: Springer Verlag/AIP Press.
Ruffini, R. & Wheeler, J. A. (1971). Proceedings of the Conference on Space Physics. ESRO Paris.
Sandage, A. R. (1961). The ability of the 200 inch telescope to discriminate between selected world
models. ApJ, 133(2), 355–392.
Sard, R. D. (1970). Relativistic mechanics. W. A. Benjamin Co., New York, 1970. This presents a
simple and careful discussion of the Lorentz transformation in chapters 1 and 2.
Scardigli, F. (1999). Generalized uncertainty principle in quantum gravity from microscopic black
hole gedanken experiment. Physics Letter B, 452, 39.
Schiffer, M. M., Adler, R. J., Mark, J. & Scheffield, C. (1973). Kerr geometry as complexified
Schwarzschild geometry. J. Math. Phys. (N.Y.), 14(1), 52–56.
Schneider, P., Ehlers, J. & Falco, E.E. (1992). Gravitational lenses. Springer-Verlag.
Schutz, B. F. (1986). Nature, 323(310).
Schutz, B. F. (2009). A first course in general relativity (2nd ed.). Cambridge University Press.
Schwartz, H. (1968). Introduction to special relativity. McGraw Hill.
References
Moskowitz, C. (2019). What happened to all the universe’s antimatter? May 23, 2019, scientificamerican.com.
Narayan, R. (1997). Lectures on gravitational lensing. arxiv.org/abs/1907.05922.
NASA. (2019). Website on the LCDM model, containing many original references.
lambda.gsfc.nasa.govNorton.
Newcomb S. (1895). The elements of the four inner planets and the fundamental constants of
astronomy. Supplementary American Ephemeris and Nautical Almanac for 1897, Washington,
D.C., Gov. Printing Office, pp. 1–202.
Ohanian, H.C. & Ruffini, R. (1994). Gravitation and Spacetime. Norton.
Oppenheimer, J. R., & Snyder, H. (1939). On continued gravitational contraction. Physical Review,
56, 455.
Oppenheimer, J. R., & Volkoff, G. M. (1939). On massive neutron cores. Physical Review, 55(4),
374–381.
Pauli, W. (1958). Theory of relativity. Pergamon Press, London. This is a translation from an early
1921 encyclopedia article by Pauli, a famous and clear expositions of the theory.
Peebles, P. J. E. (1965). The black-body radiation content of the universe and the formation of
galaxies. Astrophysics Journal, 142, 1317.
Peebles, P. J. E. (1968). Recombination of the primeval plasma. Astrophysics Journal, 153, 1.
Peebles, P. J. E. (1993). Principles of physical cosmology. Princeton Press.
Perlis, S. (1952). Theory of matrices. Addison-Wesley. This classic is a clear and self-contained
exposition of matrix theory.
Peskin, M. (2019). Concepts of elementary particle physics. Oxford Master Series.
Petrov, A. Z. (1969). Einstein spaces. Pergamon Press.
Planck, M. (1899). Naturlische Masseinheiten. Der Koniglich Preussishen Akademie Der
Wissenschaften, 479.
Planck Collaboration. (2018). Planck 2018 results. VI. Cosmological parameters.
arXiv:1807.06209.
Pound, R. V. (2000). Weighing Photons. Classical and Quantum Gravity, 17(12), 2303–2311.
Quigg, C. (2006). Particles and the standard model. In G. Fraser (Ed.), The new physics for the
twentieth-first century. Cambridge University Press.
Randall, L. (2018). What is dark matter? Nature, 557, S6–S7.
Reiss, A. G., Casertaeno, S., Yuan, W., Macri, L. M. & Scolnic, D. (2019). Large magellanic cloud
cepheid standards provide a 1% foundation for the determination of the hubble constant and
stronger evidence for physics beyond LCDM. arXiv:1903.07603v2 [astro-ph.CO] Mar 2019.
Rindler, W. (1969). Essential relativity. Van Nostrand and Reinhold.
Rovelli, C. (2008). Quantum gravity. Scholarpedia, 3(5), 7117.
Rubin, V. (1995). A century of galaxy spectroscopy. The Astrophysical Journal 451: 419ff.
Rubin, V. (1997). Bright galaxies, dark matters. Masters of Modern Physics. Woodbury, New York
City: Springer Verlag/AIP Press.
Ruffini, R. & Wheeler, J. A. (1971). Proceedings of the Conference on Space Physics. ESRO Paris.
Sandage, A. R. (1961). The ability of the 200 inch telescope to discriminate between selected world
models. ApJ, 133(2), 355–392.
Sard, R. D. (1970). Relativistic mechanics. W. A. Benjamin Co., New York, 1970. This presents a
simple and careful discussion of the Lorentz transformation in chapters 1 and 2.
Scardigli, F. (1999). Generalized uncertainty principle in quantum gravity from microscopic black
hole gedanken experiment. Physics Letter B, 452, 39.
Schiffer, M. M., Adler, R. J., Mark, J. & Scheffield, C. (1973). Kerr geometry as complexified
Schwarzschild geometry. J. Math. Phys. (N.Y.), 14(1), 52–56.
Schneider, P., Ehlers, J. & Falco, E.E. (1992). Gravitational lenses. Springer-Verlag.
Schutz, B. F. (1986). Nature, 323(310).
Schutz, B. F. (2009). A first course in general relativity (2nd ed.). Cambridge University Press.
Schwartz, H. (1968). Introduction to special relativity. McGraw Hill.
