| 1 | Abbott, L.F., and Deser, S., “Charge definition in non-abelian gauge theories”, Phys. Lett. B, 116, 259–263, (1982). | |
| 2 | Aghababaie, Y., and Burgess, C.P., “Effective actions, boundaries, and precision calculations
of Casimir energies”, Phys. Rev. D, 70, 085003, 1–6, (2004). URL (cited on 7 March 2004):
|
|
| 3 | Aghababaie, Y., Burgess, C.P., Parameswaran, S., and Quevedo, F., “Towards a naturally small
cosmological constant from branes in 6D supergravity”, Nucl. Phys. B, 680, 389–414, (2004).
Related online version (cited on 7 March 2004):
|
|
| 4 | Aguirre, A., Burgess, C.P., Friedland, A., and Nolte, D., “Astrophysical constraints on
modifying gravity at large distances”, Class. Quantum Grav., 18, R223–R232, (2001). Related
online version (cited on 7 March 2004):
|
|
| 5 | Akhundov, A., Bellucci, S., and Shiekh, A., “Gravitational interaction to one loop in effective
quantum gravity”, Phys. Lett. B, 395, 16–23, (1997). Related online version (cited on 7 March
2004):
|
|
| 6 | Arnowitt, R., Deser, S., and Misner, C.W., “Energy and the Criteria for Radiation in General Relativity”, Phys. Rev., 118, 1100–1104, (1960). | |
| 7 | Arnowitt, R., Deser, S., and Misner, C.W., “Coordinate Invariance and Energy Expressions in General Relativity”, Phys. Rev., 122, 997–1006, (1961). | |
| 8 | Arnowitt, R., Deser, S., and Misner, C.W., “Wave Zone in General Relativity”, Phys. Rev., 121, 1556–1566, (1961). | |
| 9 | Arnowitt, R.L., and Deser, S., “Quantum Theory of Gravitation: General Formulation and Linearized Theory”, Phys. Rev., 113, 745–750, (1959). | |
| 10 | Arnowitt, R.L., Deser, S., and Misner, C.W., “Dynamical Structure and Definition of Energy in General Relativity”, Phys. Rev., 116, 1322–1330, (1959). | |
| 11 | Arnowitt, R.L., Deser, S., and Misner, C.W., “Canonical Variables for General Relativity”, Phys. Rev., 117, 1595–1602, (1960). | |
| 12 | Arnowitt, R.L., Deser, S., and Misner, C.W., “Consistency of the Canonical Reduction of General Relativity”, J. Math. Phys., 1, 434–439, (1960). | |
| 13 | Arnowitt, R.L., Deser, S., and Misner, C.W., “Gravitational-Electromagnetic Coupling and the Classical Self-Energy Problem”, Phys. Rev., 120, 313–320, (1960). | |
| 14 | Arnowitt, R.L., Deser, S., and Misner, C.W., “Interior Schwarzschild Solutions and Interpretation of Source Terms”, Phys. Rev., 120, 321–324, (1960). | |
| 15 | Arnowitt, R.L., Deser, S., and Misner, C.W., “Note on Positive-Definiteness of the Energy of the Gravitational Field”, Ann. Phys. (N.Y.), 11, 116, (1960). | |
| 16 | Arnowitt, R.L., Deser, S., and Misner, C.W., Nuovo Cimento, 19, 668, (1961). | |
| 17 | Banks, T., and Mannelli, L., “de Sitter vacua, renormalization and locality”, Phys. Rev. D, 67,
065009, 1–6, (2003). Related online version (cited on 7 March 2004):
|
|
| 18 | Bern, Z., “Perturbative Quantum Gravity and its Relation to Gauge Theory”, Living Rev.
Relativity, 5, lrr-2002-5, (2002). URL (cited on 7 March 2004):
http://www.livingreviews.org/lrr-2002-5. |
|
| 19 | Birrell, N.D., and Davies, P.C.W., Quantum fields in curved space, Cambridge Monographs on Mathematical Physics, (Cambridge University Press, Cambridge, U.K.; New York, U.S.A., 1982). | |
| 20 | Bjerrum-Bohr, N.E.J., Donoghue, F.J., and Holstein, B.R., “Quantum gravitational corrections to the nonrelativistic scattering potential of two masses”, Phys. Rev. D, 67, 084033, 1–12, (2003). | |
| 21 | Bjerrum-Borh, N.E.J., Donoghue, J.F., and Holstein, B.R., “Quantum Corrections to the Schwarzschild and Kerr Metrics”, Phys. Rev. D, 68, 084005, 1–16, (2003). | |
| 22 | Brandenberger, R.H., “Lectures on the theory of cosmological perturbations”, in Bretón, N.,
Cervantes-Cota, J., and Salgado, M., eds., The Early Universe and Observational Cosmology,
Proceedings of the 5th Mexican School on Gravitation and Mathematical Physics (DGFM
2002), Playa del Carmen, Quintana Roo, Mexico, 24 – 29 November 2002, Lecture Notes in
Physics, vol. 646, pp. 127–167, (Springer, Berlin, Germany; New York, U.S.A., 2004). Related
online version (cited on 7 March 2004):
|
|
| 23 | Brandenberger, R.H., and Martin, J., “The robustness of inflation to changes in
super-Planck-scale physics”, Mod. Phys. Lett. A, 16, 999–1006, (2001). Related online version
(cited on 7 March 2004):
|
|
| 24 | Brout, R., Massar, S., Parentani, R., and Spindel, P., “Hawking radiation without
trans-Planckian frequencies”, Phys. Rev. D, 52, 4559–4568, (1995). Related online version (cited
on 7 March 2004):
|
|
| 25 | Brown, M.R., and Duff, M.J., “Exact results for effective Lagrangians”, Phys. Rev. D, 11, 2124–2135, (1975). | |
| 26 | Bunch, T.S., and Davies, P.C.W., “Quantum Field Theory In De Sitter Space: Renormalization By Point Splitting”, Proc. R. Soc. London, Ser. A, 360, 117–134, (1978). | |
| 27 | Burgess, C.P., “An Ode to Effective Lagrangians”, in Solà, J., ed., Radiative corrections:
Application of quantum field theory to phenomenology, Proceedings of the 4th International
Symposium on Radiative Corrections (RADCOR 98), held in Barcelona, September 8 – 12,
1998, pp. 471–488, (World Scientific, Singapore, 1999). Related online version (cited on 7 March
2004):
|
|
| 28 | Burgess, C.P., “Goldstone and Pseudo-Goldstone Bosons in Nuclear, Particle and
Condensed-Matter Physics”, Phys. Rep., 330, 193–261, (2000). Related online version (cited
on 7 March 2004):
|
|
| 29 | Burgess, C.P., “Supersymmetric large extra dimensions and the cosmological constant: an
update”, Ann. Phys. (N.Y.), 313, 283–401, (2004). URL (cited on 7 March 2004):
|
|
| 30 | Burgess, C.P., Cline, J.M., and Holman, R., “Effective field theories and inflation”, J. Cosmol.
Astropart. Phys., 2003(10), 004, (2003). Related online version (cited on 7 March 2004):
|
|
| 31 | Burgess, C.P., Cline, J.M., Lemieux, F., and Holman, R., “Are inflationary predictions sensitive
to very high energy physics?”, J. High Energy Phys., 2003(02), 048, (2003). Related online
version (cited on 7 March 2004):
|
|
| 32 | Callan Jr, C.G., Coleman, S., Wess, J., and Zumino, B., “Structure of Phenomenological Lagrangians. II”, Phys. Rev., 177, 2247–2250, (1969). | |
| 33 | Capper, D.M., Duff, M.J., and Halpern, L., “Photon corrections to the graviton propagator”, Phys. Rev. D, 10, 461–467, (1974). | |
| 34 | Caswell, W.E., and Lepage, G.P., “Effective lagrangians for bound state problems in QED, QCD, and other field theories”, Phys. Lett. B, 167, 437–442, (1986). | |
| 35 | Chen, T., Fröhlich, J., and Seifert, M., “Renormalization Group Methods: Landau–Fermi
Liquid and BCS Superconductor”, in David, F., Ginsparg, P., and Zinn-Justin, J., eds.,
Fluctuating Geometries in Statistical Mechanics and Field Theory, Proceedings of the Les
Houches Summer School, Session LXII, 2 August – 9 September 1994, vol. 62, pp. 913–970,
(North-Holland, Amsterdam, Netherlands, 1996). Related online version (cited on 7 March
2004):
|
|
| 36 | Christensen, S.M., “Regularization, renormalization, and covariant geodesic point separation”, Phys. Rev. D, 17, 946–963, (1978). | |
| 37 | Christensen, S.M., and Duff, M.J., “New gravitational index theorems and super theorems”, Nucl. Phys. B, 154, 301–342, (1979). | |
| 38 | Christensen, S.M., and Duff, M.J., “Quantizing gravity with a cosmological constant”, Nucl. Phys. B, 170, 480–506, (1980). | |
| 39 | Collins, H., Holman, R., and Martin, M.R., “The fate of the α-vacuum”, Phys. Rev. D, 68,
1240121–1–15, (2003). Related online version (cited on 7 March 2004):
|
|
| 40 | Collins, H., and Martin, M.R., “The enhancement of inflaton loops in an α-vacuum”, Phys. Rev. D, 70, 084021, 1–9, (2004). | |
| 41 | Collins, J.C., Renormalization: An introduction to renormalization, the renormalization group, and the operator-product expansion, (Cambridge University Press, Cambridge, U.K.; New York, U.S.A., 1984). | |
| 42 | Corley, S., and Jacobson, T.A., “Hawking Spectrum and High Frequency Dispersion”, Phys.
Rev. D, 54, 1568–1586, (1996). Related online version (cited on 7 March 2004):
|
|
| 43 | Dalvit, D.A.R., and Mazzitelli, F.D., “Running coupling constants, Newtonian potential, and
nonlocalities in the effective action”, Phys. Rev. D, 50, 1001–1009, (1994). Related online
version (cited on 7 March 2004):
|
|
| 44 | Damour, T., and Ruffini, R., “Black-hole evaporation in the Klein–Sauter–Heisenberg–Euler formalism”, Phys. Rev. D, 14, 332–334, (1976). | |
| 45 | Danielsson, U.H., “Inflation, holography, and the choice of vacuum in de Sitter space”, J. High
Energy Phys., 2002(07), 040, (2002). Related online version (cited on 7 March 2004):
|
|
| 46 | Danielsson, U.H., “On the consistency of de Sitter vacua”, J. High Energy Phys., 2002(12),
025, (2002). Related online version (cited on 7 March 2004):
|
|
| 47 | Deruelle, N., and Ruffini, R., “Klein paradox in a kerr geometry”, Phys. Lett. B, 57, 248–252, (1975). | |
| 48 | Deser, S., and Jackiw, R., “Three-Dimensional Cosmological Gravity: Dynamics Of Constant Curvature”, Ann. Phys. (N.Y.), 153, 405–416, (1984). | |
| 49 | Deser, S., Jackiw, R., and ’t Hooft, G., “Three-dimensional Einstein gravity: Dynamics of flat space”, Ann. Phys. (N.Y.), 152, 220–235, (1984). | |
| 50 | DeWitt, B.S., “Quantum Theory of Gravity. II. The Manifestly Covariant Theory”, Phys. Rev., 162, 1195–1239, (1967). | |
| 51 | DeWitt, B.S., “Quantum Theory of Gravity. III. Applications of the Covariant Theory”, Phys. Rev., 162, 1239–1256, (1967). | |
| 52 | DeWitt, B.S., “Errata: Quantum Theory of Gravity”, Phys. Rev., 171, 1834, (1968). | |
| 53 | DeWitt, B.S., “The spacetime approach to quantum field theory”, in DeWitt, B.S., and Stora, R., eds., Relativity, Groups and Topology II, Proceedings of the 40th Summer School of Theoretical Physics, NATO Advanced Study Institute, Les Houches, France, June 27 – August 4, 1983, pp. 381–738, (North-Holland, Amsterdam, Netherlands, 1984). | |
| 54 | Dirac, P.A.M., “Fixation of Coordinates in the Hamiltonian Theory of Gravitation”, Phys. Rev., 114, 924–930, (1959). | |
| 55 | Donoghue, J.F., “General relativity as an effective field theory: The leading quantum
corrections”, Phys. Rev. D, 50, 3874–3888, (1994). Related online version (cited on 7 March
2004):
|
|
| 56 | Donoghue, J.F., “Leading quantum correction to the Newtonian potential”, Phys. Rev. Lett.,
72, 2996–2999, (1994). Related online version (cited on 7 March 2004):
|
|
| 57 | Donoghue, J.F., “Introduction to the Effective Field Theory Description of Gravity”, in
Cornet, F., and Herrero, M.J., eds., Advanced School on Effective Theories, Proceedings of the
conference held in Almuñecar, Granada, Spain, 26 June – 1 July 1995, pp. 217–240, (World
Scientific, Singapore, 1997). Related online version (cited on 7 March 2004):
|
|
| 58 | Donoghue, J.F., Golowich, E., and Holstein, B.R., Dynamics of the Standard Model, (Cambridge University Press, Cambridge, U.K.; New York, U.S.A., 1992). | |
| 59 | Donoghue, J.F., Holstein, B.R., Garbrecht, B., and Konstandin, T., “Quantum corrections to
the Reissner-Nordström and Kerr-Newman metrics”, Phys. Lett. B, 529, 132–142, (2002).
Related online version (cited on 7 March 2004):
|
|
| 60 | Donoghue, J.F., and Torma, T., “Power counting of loop diagrams in general relativity”, Phys.
Rev. D, 54, 4963–4972, (1996). Related online version (cited on 7 March 2004):
|
|
| 61 | Donoghue, J.F., and Torma, T., “Infrared behavior of graviton-graviton scattering”, Phys. Rev.
D, 60, 024003, (1999). Related online version (cited on 7 March 2004):
|
|
| 62 | Duff, M.J., “Quantum corrections to the Schwarzschild solution”, Phys. Rev. D, 9, 1837–1839, (1974). | |
| 63 | Dunbar, D.C., and Norridge, P.S., “Calculation of graviton scattering amplitudes using string-based methods”, Nucl. Phys. B, 433, 181–206, (1995). | |
| 64 | Einhorn, M., and Larsen, F., “Interacting quantum field theory in de Sitter vacua”, Phys. Rev.
D, 67, 024001, 1–13, (2003). Related online version (cited on 7 March 2004):
|
|
| 65 | Einhorn, M., and Larsen, F., “Squeezed states in the de Sitter vacuum”, Phys. Rev. D, 68,
064002, 1–7, (2003). Related online version (cited on 7 March 2004):
|
|
| 66 | Einstein, A., and Infeld, L., “The Gravitational Equations and the Problem of Motion. II”, Ann. Math., 41, 455–464, (1940). | |
| 67 | Einstein, A., and Infeld, L., Can. J. Math., 1, 209, (1949). | |
| 68 | Einstein, A., Infeld, L., and Hoffmann, B., “The Gravitational Equations and the Problem of Motion”, Ann. Math., 39, 65–100, (1938). | |
| 69 | Faddeev, L.D., and Popov, V.N., “Feynman diagrams for the Yang–Mills field”, Phys. Lett. B, 25, 29–30, (1967). | |
| 70 | Feynman, R.P., “Quantum theory of gravitation”, Acta Phys. Pol., 24, 697–722, (1963). | |
| 71 | Fredenhagen, K., and Haag, R., “On the Derivation of Hawking Radiation Associated with the Formation of a Black Hole”, Commun. Math. Phys., 127, 273–284, (1990). | |
| 72 | Gasser, J., and Leutwyler, H., “Chiral Perturbation Theory to One Loop”, Ann. Phys. (N.Y.), 158, 142–210, (1984). | |
| 73 | Georgi, H., Weak Interactions and Modern Particle Theory, (Benjamin/Cummings, Menlo Park, U.S.A., 1984). | |
| 74 | Georgi, H., “Effective Field Theory”, Annu. Rev. Nucl. Part. Sci., 43, 209–252, (1995). | |
| 75 | Gilkey, P.B., “The spectral geometry of a Riemannian manifold”, J. Differ. Geom., 10, 601–618, (1975). | |
| 76 | Goldstein, K., and Lowe, D.A., “A note on α-vacua and interacting field theory in de Sitter
space”, Nucl. Phys. B, 669, 325–340, (2003). Related online version (cited on 7 March 2004):
|
|
| 77 | Goldstein, K., and Lowe, D.A., “Real-time perturbation theory in de Sitter space”, Phys. Rev.
D, 69, 023507, 1–8, (2004). Related online version (cited on 7 March 2004):
|
|
| 78 | Gomis, J., and Weinberg, S., “Are nonrenormalizable gauge theories renormalizable?”, Nucl.
Phys. B, 469, 473–487, (1996). Related online version (cited on 7 March 2004):
|
|
| 79 | Grisaru, M.T., and Zak, J., “One-loop scalar field contributions to graviton-graviton scattering and helicity non-conservation in quantum gravity”, Phys. Lett. B, 90, 237–240, (1980). | |
| 80 | Gupta, S.N., “Quantization of Einstein’s Gravitational Field: General Treatment”, Proc. Phys. Soc. London, Sect. A, 65, 608–619, (1952). | |
| 81 | Gupta, S.N., “Quantization of Einstein’s Gravitational Field: General Treatment”, Proc. Phys. Soc. London, Sect. B, 65, 608–619, (1952). | |
| 82 | Gupta, S.N., and Radford, S.F., “Quantum field-theoretical electromagnetic and gravitational two-particle potentials”, Phys. Rev. D, 21, 2213–2225, (1980). | |
| 83 | Guralnik, G.S., Hagen, C.R., and Kibble, T.W.B., in Cool, R.L., and Marshak, R.E., eds., Advances in Particle Physics, Vol. 2, (Wiley, New York, U.S.A., 1968). | |
| 84 | Hahn, Y., and Zimmermann, W., “An elementary proof of Dyson’s power counting theorem”, Commun. Math. Phys., 10, 330–342, (1968). | |
| 85 | Hamber, H.W., and Liu, S., “On the quantum corrections to the newtonian potential”, Phys.
Lett. B, 357, 51–56, (1995). Related online version (cited on 7 March 2004):
|
|
| 86 | Hambli, N., and Burgess, C.P., “Hawking radiation and ultraviolet regulators”, Phys. Rev. D,
53, 5717–5722, (1996). Related online version (cited on 7 March 2004):
|
|
| 87 | Hawking, S.W., “Black hole explosions?”, Nature, 248, 30–31, (1974). | |
| 88 | Hawking, S.W., “Particle creation by black holes”, Commun. Math. Phys., 43, 199–220, (1975). | |
| 89 | Hiida, K., and Okamura, H., “Gauge Transformation and Gravitational Potentials”, Prog. Theor. Phys., 47, 1743, (1972). | |
| 90 | Isgur, N., and Wise, M.B., “Weak decays of heavy mesons in the static quark approximation”, Phys. Lett. B, 232, 113–117, (1989). | |
| 91 | Isgur, N., and Wise, M.B., “Weak transition form factors between heavy mesons”, Phys. Lett. B, 237, 527–530, (1990). | |
| 92 | Iwasaki, Y., “Quantum Theory of Gravitation vs. Classical Theory: Fourth-Order Potential”, Prog. Theor. Phys., 46, 1587, (1971). | |
| 93 | Jacobson, T., “Introduction to quantum fields in curved space-time and the Hawking effect”,
Prog. Theor. Phys. Suppl., 136, 1–17, (1999). Related online version (cited on 7 March 2004):
|
|
| 94 | Jacobson, T.A., “Black hole evaporation and ultrashort distances”, Phys. Rev. D, 44, 1731–1739, (1991). | |
| 95 | Jacobson, T.A., “Black hole radiation in the presence of a short distance cutoff”, Phys. Rev.
D, 48, 728–741, (1993). Related online version (cited on 7 March 2004):
|
|
| 96 | Jones, A.W., and Lasenby, A.N., “The Cosmic Microwave Background”, Living Rev. Relativity,
1, lrr-1998-11, (1998). URL (cited on 7 March 2004):
http://www.livingreviews.org/lrr-1998-11. |
|
| 97 | Kaloper, N., Kleban, M., Lawrence, A., Shenker, S.H., and Susskind, L., “Initial Conditions
for Inflation”, J. High Energy Phys., 2002(11), 037, (2002). Related online version (cited on 7
March 2004):
|
|
| 98 | Kaloper, N., Kleban, M., Lawrence, A.E., and Shenker, S.H., “Signatures of short distance
physics in the cosmic microwave background”, Phys. Rev. D, 66, 123510, 1–21, (2002). Related
online version (cited on 7 March 2004):
|
|
| 99 | Kaplan, D.B., “Effective Field Theories”, (June 1995). URL (cited on 7 March 2004):
|
|
| 100 | Kaplan, D.B., Savage, M.J., and Wise, M.B., “Nucleon-nucleon scattering from effective field
theory”, Nucl. Phys. B, 478, 629–659, (1996). Related online version (cited on 7 March 2004):
|
|
| 101 | Kazakov, K.A., “Notion of potential in quantum gravity”, Phys. Rev. D, 63, 044004, 1–10,
(2001). Related online version (cited on 7 March 2004):
|
|
| 102 | Kirilin, G.G., and Khriplovich, I.B., “Quantum Power Correction to the Newton Law”, J. Exp. Theor. Phys., 95, 981–986, (2002). | |
| 103 | Labelle, P., “Effective field theories for QED bound states: Extending nonrelativistic QED to
study retardation effects”, Phys. Rev. D, 58, 093013, 1–15, (1998). Related online version (cited
on 7 March 2004):
|
|
| 104 | Labelle, P., Zebarjad, S.M., and Burgess, C.P., “Nonrelativistic QED and next-to-leading
hyperfine splitting in positronium”, Phys. Rev. D, 56, 8053–8061, (1997). Related online version
(cited on 7 March 2004):
|
|
| 105 | Langacker, P., “Electroweak Physics”, (August 2003). URL (cited on 7 March 2004):
|
|
| 106 | Leutwyler, H., “Goldstone Bosons”, (September 1994). URL (cited on 7 March 2004):
|
|
| 107 | Leutwyler, H., “Principles of Chiral Perturbation Theory”, in Herscovitz, V.E., Vasconcellos,
C.A., and Ferreira, E., eds., Hadron Physics 94: Topics on the Structure and Interaction of
Hadronic Systems, Workshop held in Gramado, Rio Grande Do Sul, Brazil, 10 – 14 April 1994,
pp. 1–46, (World Scientific, Singapore; River Edge, U.S.A., 1995). Related online version (cited
on 7 March 2004):
|
|
| 108 | Luke, M.E., “Effects of subleading operators in the heavy quark effective theory”, Phys. Lett. B, 252, 447–455, (1990). | |
| 109 | Luke, M.E., and Manohar, A.V., “Bound states and power counting in effective field theories”,
Phys. Rev. D, 55, 4129–4140, (1997). Related online version (cited on 7 March 2004):
|
|
| 110 | Luke, M.E., Manohar, A.V., and Rothstein, I.Z., “Renormalization group scaling in
nonrelativistic QCD”, Phys. Rev. D, 61, 074025, 1–14, (2000). Related online version (cited on
7 March 2004):
|
|
| 111 | Luke, M.E., and Savage, M.J., “Power counting in dimensionally regularized nonrelativistic
QCD”, Phys. Rev. D, 57, 413–423, (1998). Related online version (cited on 7 March 2004):
|
|
| 112 | Mandelstam, S., “Feynman Rules for the Gravitational Field from the Coordinate-Independent Field-Theoretic Formalism”, Phys. Rev., 175, 1604–1623, (1968). | |
| 113 | Manohar, A.V., “Effective Field Theories”, in Latal, H., and Schweiger, W., eds., Perturbative
and nonperturbative aspects of quantum field theory, Proceedings of the 35. Internationale
Universitätswochen für Kern- und Teilchenphysik, Schladming, Austria, March 2 – 9, 1996,
Lecture Notes in Physics, vol. 479, pp. 311–362, (Springer, Berlin, Germany; New York, U.S.A.,
1997). Related online version (cited on 7 March 2004):
|
|
| 114 | Martin, J., and Brandenberger, R.H., “Trans-Planckian problem of inflationary cosmology”,
Phys. Rev. D, 63, 123501, 1–16, (2001). Related online version (cited on 7 March 2004):
|
|
| 115 | McAvity, D.M., and Osborn, H., “A DeWitt expansion of the heat kernel for manifolds with a boundary”, Class. Quantum Grav., 8, 603–638, (1991). | |
| 116 | Meissner, U.G., “Recent Developments in Chiral Perturbation Theory”, Rep. Prog. Phys., 56,
903–996, (1993). Related online version (cited on 7 March 2004):
|
|
| 117 | Melnikov, K., and Weinstein, M., “A Canonical Hamiltonian Derivation of Hawking Radiation”,
(September 2001). URL (cited on 7 March 2004):
|
|
| 118 | Melnikov, K., and Weinstein, M., “On the Evolution of a Massless Scalar Field in a
Schwarzschild Background: A New Look at Hawking Radiation and the Information Paradox”,
Int. J. Mod. Phys. D, 13, 1595–1635, (May 2004). Related online version (cited on 7 March
2004):
|
|
| 119 | Milgrom, M., “A modification of the Newtonian dynamics as a possible alternative to the hidden mass hypothesis”, Astrophys. J., 270, 365–370, (1983). | |
| 120 | Milgrom, M., and Sanders, R.H., “MOND and the ‘Dearth of Dark Matter in Ordinary Elliptical
Galaxies”’, Astrophys. J., 599, L25–L28, (2003). Related online version (cited on 7 March
2004):
|
|
| 121 | Misner, C.W., Thorne, K.S., and Wheeler, J.A., Gravitation, (W.H. Freeman, San Francisco, U.S.A., 1973). | |
| 122 | Modanese, G., “Potential energy in quantum gravity”, Nucl. Phys. B, 434, 697–708, (1995).
Related online version (cited on 7 March 2004):
|
|
| 123 | Ovrut, B.A., and Schnitzer, H.J., “The decoupling theorem and minimal subtraction”, Phys. Lett. B, 100, 403–406, (1981). | |
| 124 | Ovrut, B.A., and Schnitzer, H.J., “Gauge theories with minimal subtraction and the decoupling theorem”, Nucl. Phys. B, 179, 381–416, (1981). | |
| 125 | Parikh, M.K., and Wilczek, F., “Hawking Radiation As Tunneling”, Phys. Rev. Lett., 85,
5042–5045, (2000). Related online version (cited on 7 March 2004):
|
|
| 126 | Pich, A., “Effective Field Theory”, in Gupta, R., De Rafael, E., David, F., and Morel, A., eds.,
Probing the Standard Model of Particle Interactions, Proceedings of the Les Houches Summer
School, Session LXVIII, 28 July – 5 September 1997, vol. 68, pp. 949–1049, (North-Holland,
Amsterdam, Netherlands, 1999). Related online version (cited on 7 March 2004):
|
|
| 127 | Pineda, A., and Soto, J., “Potential NRQED: The positronium case”, Phys. Rev. D, 59, 016005,
1–10, (1999). Related online version (cited on 7 March 2004):
|
|
| 128 | Polchinski, J., “Renormalization and effective lagrangians”, Nucl. Phys. B, 231, 269–295, (1984). | |
| 129 | Polchinski, J., “Effective Field Theory of the Fermi Surface”, in Harvey, J.and Polchinski, J.,
ed., Recent Directions in Particle Theory: From Superstrings and Black Holes to the Standard
Model, Proceedings of the Theoretical Advanced Study Institute in Elementary Particle Physics,
Boulder, Colorado, 1 – 26 June 1992 (TASI-92), p. quantum field theory, (World Scientific,
Singapore, 1993). Related online version (cited on 7 March 2004):
|
|
| 130 | Polchinski, J., “String Theory and Black Hole Complementarity”, in Bars, I., Bouwknegt, P.,
Minahan, J., Nemeschensky, D., and Pilch, K., eds., Future Perspectives in String Theory:
Strings ’95, University of Southern California, Los Angeles, 13 – 18 March 1995, pp. 417–426,
(World Scientific, Singapore; River Edge, U.S.A., 1996). Related online version (cited on 7
March 2004):
|
|
| 131 | Redin, S.I. et al., “Recent results and current status of the muon g − 2 experiment at BNL”, Can. J. Phys., 80, 1355–1364, (2002). | |
| 132 | Rho, M., “Effective Field Theory for Nuclei and Dense Matter”, Acta Phys. Pol. B, 29,
2297–2308, (1998). Related online version (cited on 7 March 2004):
|
|
| 133 | Schwinger, J.S., “On Gauge Invariance and Vacuum Polarization”, Phys. Rev., 82, 664–679, (1951). | |
| 134 | Shankar, R., “Renormalization-group approach to interacting fermions”, Rev. Mod. Phys., 66,
129–192, (1994). Related online version (cited on 7 March 2004):
|
|
| 135 | Shankar, R., “Effective Field Theory in Condensed Matter Physics”, (March 1997). URL (cited
on 7 March 2004):
|
|
| 136 | Simon, J.Z., “Stability of flat space, semiclassical gravity, and higher derivatives”, Phys. Rev. D, 43, 3308–3316, (1991). | |
| 137 | ’t Hooft, G., and Veltman, M.J.G., “One loop divergencies in the theory of gravitation”, Ann. Inst. Henri Poincare A, 20, 69–94, (1974). | |
| 138 | Tinkham, M., Introduction to Superconductivity, (McGraw Hill, New York, U.S.A., 1996), 2nd edition. | |
| 139 | Unruh, W.G., “Origin of the particles in black-hole evaporation”, Phys. Rev. D, 15, 365–369, (1977). | |
| 140 | Unruh, W.G., “Experimental Black-Hole Evaporation?”, Phys. Rev. Lett., 46, 1351–1353, (1981). | |
| 141 | Wald, R.M., “The Thermodynamics of Black Holes”, Living Rev. Relativity, 4, lrr-2001-6,
(2001). URL (cited on 7 March 2004):
http://www.livingreviews.org/lrr-2001-6. |
|
| 142 | Weinberg, S., “High-Energy Behavior in Quantum Field Theory”, Phys. Rev., 118, 838–849, (1960). | |
| 143 | Weinberg, S., “Infrared Photons and Gravitons”, Phys. Rev., 140(2), B516–B524, (1965). | |
| 144 | Weinberg, S., “Dynamical Approach to Current Algebra”, Phys. Rev. Lett., 18, 188–191, (1967). | |
| 145 | Weinberg, S., “Nonlinear Realizations of Chiral Symmetry”, Phys. Rev., 166, 1568–1577, (1968). | |
| 146 | Weinberg, S., Gravitation and Cosmology: Principles and Applications of the General Theory of Relativity, (Wiley, New York, U.S.A., 1972). | |
| 147 | Weinberg, S., “Phenomenological Lagrangians”, Physica A, 96, 327–340, (1979). | |
| 148 | Weinberg, S., “Effective gauge theories”, Phys. Lett. B, 91, 51–55, (1980). | |
| 149 | Weinberg, S., “Why the Renormalization Group is a Good Thing”, in Guth, A.H., Huang, K., and Jaffe, R.L., eds., Asymptotic Realms of Physics: Essays in Honor of Francis E. Low, pp. 1–19, (MIT Press, Cambridge, U.S.A., 1981). | |
| 150 | Weinberg, S., “Superconductivity for Particular Theorists”, Prog. Theor. Phys. Suppl., 86, 43–53, (1986). | |
| 151 | Weinberg, S., “The cosmological constant problem”, Rev. Mod. Phys., 61, 1–23, (1989). | |
| 152 | Weinberg, S., “Nuclear forces from chiral lagrangians”, Phys. Lett. B, 251, 288–292, (1990). | |
| 153 | Weinberg, S., “Effective chiral lagrangians for nucleon-pion interactions and nuclear forces”, Nucl. Phys. B, 363, 3–18, (1991). | |
| 154 | Wessling, M.E., and Wise, M.B., “The long range gravitational potential energy between
strings”, Phys. Lett. B, 523, 331–337, (2001). Related online version (cited on 7 March 2004):
|
|
| 155 | Will, C.M., “The Confrontation between General Relativity and Experiment”, Living Rev.
Relativity, 4, lrr-2001-4, (2001). URL (cited on 7 March 2004):
http://www.livingreviews.org/lrr-2001-4. |
|
| 156 | Wilson, K.G., “Non-Lagrangian Models of Current Algebra”, Phys. Rev., 179, 1499–1512, (1969). |
| http://www.livingreviews.org/lrr-2004-5 |
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