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Quantum Vacuum Thruster
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A quantum vacuum thruster (QVT or Q-thruster) is a theoretical system hypothesized to use the same principles and equations of motion that a conventional plasma thruster would use, namely magnetohydrodynamics (MHD), to make predictions about the behavior of the propellant. However, rather than using a conventional plasma as a propellant, a QVT would interact with quantum vacuum fluctuations of the zero-point field. The concept is controversial and generally not considered physically possible. However, if QVT systems were possible they could eliminate the need to carry propellant, being limited only by the availability of energy.

plasma thruster quantum vacuum magnetohydrodynamics

References

  1. "The Performance Analysis of Microwave Thrust without Propellant Based on the Quantum Theory". http://en.cnki.com.cn/Article_en/CJFDTOTAL-YHXB200805027.htm. 
  2. "Eagleworks Laboratories: Advanced Propulsion Physics Research". NASA. 2 December 2011. https://ntrs.nasa.gov/archive/nasa/casi.ntrs.nasa.gov/20110023492_2011024705.pdf. Retrieved 10 January 2013. 
  3. Milonni, Peter W. (1994). The Quantum Vacuum: An Introduction to Quantum Electrodynamics. London: Academic Press. p. 35. ISBN 9780124980808. https://books.google.com/?id=uPHJCgAAQBAJ&lpg=PP1. 
  4. Bush, John W. M. (2015). "The new wave of pilot-wave theory". Physics Today 68 (8): 47–53. doi:10.1063/PT.3.2882. Bibcode: 2015PhT....68h..47B. http://newfos.arizona.edu/sites/default/files/uploads/documents/Pilot_Waves_Phys_Today_Aug_2015.pdf. Retrieved 30 November 2016. 
  5. Milonni, Peter W. (1994). The Quantum Vacuum: An Introduction to Quantum Electrodynamics. London: Academic Press. p. 111. ISBN 9780124980808. https://archive.org/details/quantumvacuumint00milo. 
  6. Greiner, Walter; Müller, B.; Rafelski, J. (2012). Quantum Electrodynamics of Strong Fields: With an Introduction into Modern Relativistic Quantum Mechanics. Springer. pp. 16. doi:10.1007/978-3-642-82272-8. ISBN 978-3-642-82274-2. https://books.google.co.uk/books?id=Wh3-CAAAQBAJ. 
  7. Bordag, Michael; Klimchitskaya, Galina Leonidovna; Mohideen, Umar; Mostepanenko, Vladimir Mikhaylovich (2009). Advances in the Casimir Effect. Oxford: `Oxford University Press. p. 4. ISBN 978-0-19-923874-3. https://books.google.com/?id=CqE1f_s5PgYC. 
  8. Lamoreaux, S. K. (1997). "Demonstration of the Casimir Force in the 0.6 to 6μm Range". Phys. Rev. Lett. 78 (1): 5–8. doi:10.1103/PhysRevLett.78.5. Bibcode: 1997PhRvL..78....5L. http://web.mit.edu/~kardar/www/research/seminars/Casimir/PRL-Lamoreaux.pdf. 
  9. Yam, Philip (1997). "Exploiting Zero-Point Energy". Scientific American 277 (6): 82–85. doi:10.1038/scientificamerican1297-82. Bibcode: 1997SciAm.277f..82Y. http://www.toriah.org/articles/yam-1997.pdf. Retrieved 18 December 2016. 
  10. Mohideen, Umar; Roy, Anushree (1998). "Precision Measurement of the Casimir Force from 0.1 to 0.9μm". Phys. Rev. Lett. 81 (21): 4549–4552. doi:10.1103/PhysRevLett.81.4549. Bibcode: 1998PhRvL..81.4549M.  https://dx.doi.org/10.1103%2FPhysRevLett.81.4549
  11. Chan, H. B.; Aksyuk, V. A.; Kleiman, R. N.; Bishop, D. J.; Capasso, Federico (2001). "Quantum Mechanical Actuation of Microelectromechanical Systems by the Casimir Force". Science 291 (5510): 1941–1944. doi:10.1126/science.1057984. PMID 11239149. Bibcode: 2001Sci...291.1941C. https://www.mit.edu/~kardar/research/seminars/Casimir/Science-Capasso.pdf. 
  12. Bressi, G.; Carugno, G.; Onofrio, R.; Ruoso, G. (2002). "Measurement of the Casimir Force between Parallel Metallic Surfaces". Phys. Rev. Lett. 88 (4): 041804. doi:10.1103/PhysRevLett.88.041804. PMID 11801108. Bibcode: 2002PhRvL..88d1804B.  https://dx.doi.org/10.1103%2FPhysRevLett.88.041804
  13. Decca, R. S.; López, D.; Fischbach, E.; Krause, D. E. (2003). "Measurement of the Casimir Force between Dissimilar Metals". Phys. Rev. Lett. 91 (5): 050402. doi:10.1103/PhysRevLett.91.050402. PMID 12906584. Bibcode: 2003PhRvL..91e0402D.  https://dx.doi.org/10.1103%2FPhysRevLett.91.050402
  14. White, H.; March, P. (2012). "Advanced Propulsion Physics: Harnessing the Quantum Vacuum". Nuclear and Emerging Technologies for Space. http://www.lpi.usra.edu/meetings/nets2012/pdf/3082.pdf. 
  15. MacLay, G. Jordan; Forward, Robert L. (2004-03-01). "A Gedanken Spacecraft that Operates Using the Quantum Vacuum (Dynamic Casimir Effect)". Foundations of Physics 34 (3): 477–500. doi:10.1023/B:FOOP.0000019624.51662.50. Bibcode: 2004FoPh...34..477M.  https://dx.doi.org/10.1023%2FB%3AFOOP.0000019624.51662.50
  16. Wilson, C. M.; Johansson, G.; Pourkabirian, A.; Johansson, J. R.; Duty, T.; Nori, F.; Delsing, P. (2011). "Observation of the dynamical Casimir effect in a superconducting circuit". Nature 479 (7373): 376–379. doi:10.1038/nature10561. PMID 22094697. Bibcode: 2011Natur.479..376W.  https://dx.doi.org/10.1038%2Fnature10561
  17. "First Observation of the Dynamical Casimir Effect". Emerging Technology from the arXiv. 2011. https://www.technologyreview.com/s/424111/first-observation-of-the-dynamical-casimir-effect/. Retrieved 25 November 2016. 
  18. White, H.; March, P. (2012). "Advanced Propulsion Physics: Harnessing the Quantum Vacuum". Nuclear and Emerging Technologies for Space. http://www.lpi.usra.edu/meetings/nets2012/pdf/3082.pdf. 
  19. Feigel, A. (2004). "Quantum Vacuum Contribution to the Momentum of Dielectric Media". Phys. Rev. Lett. 92 (2): 020404. doi:10.1103/PhysRevLett.92.020404. PMID 14753923. Bibcode: 2004PhRvL..92b0404F.  https://dx.doi.org/10.1103%2FPhysRevLett.92.020404
  20. Schützhold, Ralf; Plunien, Günter (2004). "Comment on "Quantum Vacuum Contribution to the Momentum of Dielectric Media"". Phys. Rev. Lett. 93 (26): 268901. doi:10.1103/PhysRevLett.93.268901. PMID 15698036. Bibcode: 2004PhRvL..93z8901S.  https://dx.doi.org/10.1103%2FPhysRevLett.93.268901
  21. Feigel, A. (2004). "Feigel Replies". Phys. Rev. Lett. 93 (26): 268902. doi:10.1103/PhysRevLett.93.268902. Bibcode: 2004PhRvL..93z8902F.  https://dx.doi.org/10.1103%2FPhysRevLett.93.268902
  22. van Tiggelen, B. A.; Rikken, G. L. J. A. (2004). "Comment on "Quantum Vacuum Contribution to the Momentum of Dielectric Media"". Phys. Rev. Lett. 93 (26): 268901. doi:10.1103/PhysRevLett.93.268901. PMID 15698036. Bibcode: 2004PhRvL..93z8901S.  https://dx.doi.org/10.1103%2FPhysRevLett.93.268901
  23. Feigel, A. (2004). "Feigel Replies". Phys. Rev. Lett. 93 (26): 268904. doi:10.1103/PhysRevLett.93.268904. Bibcode: 2004PhRvL..93z8904F.  https://dx.doi.org/10.1103%2FPhysRevLett.93.268904
  24. van Tiggelen, B. A.; Rikken, G. L. J. A.; Krstić, V. (2006). "Momentum Transfer from Quantum Vacuum to Magnetoelectric Matter". Phys. Rev. Lett. 96 (13): 130402. doi:10.1103/PhysRevLett.96.130402. PMID 16711970. Bibcode: 2006PhRvL..96m0402V. http://www.tara.tcd.ie/bitstream/handle/2262/38886/Momentum.pdf?sequence=1&isAllowed=y. 
  25. Birkeland, Ole Jakob; Brevik, Iver (2007). "On the Feigel Effect: Extraction of Momentum from Vacuum?". Phys. Rev. E 76 (6): 066605. doi:10.1103/PhysRevE.76.066605. PMID 18233935. Bibcode: 2007PhRvE..76f6605B.  https://dx.doi.org/10.1103%2FPhysRevE.76.066605
  26. Obukhova, Yuri N.; Hehla, Friedrich W. (2008). "Forces and momenta caused by electromagnetic waves in magnetoelectric media". Physics Letters A 372 (22): 3946–3952. doi:10.1016/j.physleta.2008.03.021. Bibcode: 2008PhLA..372.3946O.  https://dx.doi.org/10.1016%2Fj.physleta.2008.03.021
  27. van Tiggelen, B.A. (2008). "Zero-point momentum in complex media". The European Physical Journal D 47 (2): 261–269. doi:10.1140/epjd/e2008-00027-1. Bibcode: 2008EPJD...47..261V.  https://dx.doi.org/10.1140%2Fepjd%2Fe2008-00027-1
  28. Cho, Adrian (2004). "Focus: Momentum From Nothing". Phys. Rev. Focus 13: 3. doi:10.1103/physrevfocus.13.3.  https://dx.doi.org/10.1103%2Fphysrevfocus.13.3
  29. T., Roth; G. L. J. A., Rikken (2002). "Observation of Magnetoelectric Linear Birefringence". Phys. Rev. Lett. 88 (6): 063001. doi:10.1103/PhysRevLett.88.063001. PMID 11863802. Bibcode: 2002PhRvL..88f3001R.  https://dx.doi.org/10.1103%2FPhysRevLett.88.063001
  30. Croze, Ottavio A. (2012). "Alternative derivation of the Feigel effect and call for its experimental verification". Proceedings of the Royal Society A 468 (2138): 429–447. doi:10.1098/rspa.2011.0481. Bibcode: 2012RSPSA.468..429C.  https://dx.doi.org/10.1098%2Frspa.2011.0481
  31. Dereli, T.; Gratus, J.; Tucker, R. W. (2007). "The Covariant Description of Electromagnetically Polarizable Media". Physics Letters A 361 (3): 190–193. doi:10.1016/j.physleta.2006.10.060. Bibcode: 2007PhLA..361..190D. "Early suggestions by Minkowski and Abraham for the structure of its electromagnetic component in simple media initiated a long debate involving both theoretical and experimental contributions that continues to the current time (see e.g. ...[Feigel (2004)]...)... Although it is widely recognised that this controversy is an argument about definitions [Mikura (1976)]".  https://dx.doi.org/10.1016%2Fj.physleta.2006.10.060
  32. Mikura, Ziro (1976). "Variational formulation of the electrodynamics of fluids and its application to the radiation pressure problem". Phys. Rev. A 13 (6): 2265–2275. doi:10.1103/PhysRevA.13.2265. Bibcode: 1976PhRvA..13.2265M. "The energy-momentum conservation law can be derived separately for the material and the field subsystems. The energy-momentum tensor of the total system cannot be split in a unique way into the material and the field parts.".  https://dx.doi.org/10.1103%2FPhysRevA.13.2265
  33. Brito, Hector Hugo (1999). "Propellantless propulsion by electromagnetic inertia manipulation: Theory and experiment". AIP Conf. Proc. 458: 994. doi:10.1063/1.57710. Bibcode: 1999AIPC..458..994B. http://www.intalek.com/Index/Projects/Research/0994.pdf. ""However, as mentioned previously, the whole system Energy-Momentum tensor is unsymmetrical; this is a rather uncomfortable property for a system assumed to be a closed one...As a conjecture, if ZPF (Zero Point Field) were a physical reality for describing inertia (Haisch, 1994), that “excess” EM momentum could be explained as a form of “directed”, anisotropic vacuum fluctuations of EM energy. The sought extended system would then happen to be space-time itself... The issue is, as shown, highly relevant to “propellantless” propulsion and experiments to definitely settle the question were still missing besides some partialized attempts (James 1968, Walker 1975, Waker 1977, Lahoz 1979), whose results were not conclusive enough. A positive answer for the Minkowski's EM tensor would allow to obtain “jet-less” propulsive effects by EM fields manipulation, on one hand; on the other hand, it could also represents an indirect demonstration of the physical reality of ZPF, as a possible explanation for unsymmetrical energy-momentum tensors of closed systems."". 
  34. White, H.; March, P. (2012). "Advanced Propulsion Physics: Harnessing the Quantum Vacuum". Nuclear and Emerging Technologies for Space. http://www.lpi.usra.edu/meetings/nets2012/pdf/3082.pdf. 
  35. White, Harold G. (2015). "A discussion on characteristics of the quantum vacuum". Physics Essays 28 (7): 496–502. doi:10.4006/0836-1398-28.4.496. Bibcode: 2015PhyEs..28..496W.  https://dx.doi.org/10.4006%2F0836-1398-28.4.496
  36. Khoury, Justin; Weltman, Amanda (2004). "Chameleon Cosmology". Phys. Rev. D 69 (4): 044026. doi:10.1103/PhysRevD.69.044026. Bibcode: 2004PhRvD..69d4026K.  https://dx.doi.org/10.1103%2FPhysRevD.69.044026
  37. Martin, Jerome (2008). "Quintessence: a mini-review". Mod. Phys. Lett. A 23 (17n20): 1252–1265. doi:10.1142/S0217732308027631. Bibcode: 2008MPLA...23.1252M.  https://dx.doi.org/10.1142%2FS0217732308027631
  38. Carroll, Sean M. (1998). "Quintessence and the Rest of the World: Suppressing Long-Range Interactions". Physical Review Letters 81 (15): 3067–3070. doi:10.1103/PhysRevLett.81.3067. ISSN 0031-9007. Bibcode: 1998PhRvL..81.3067C.  https://dx.doi.org/10.1103%2FPhysRevLett.81.3067
  39. Carroll, Sean (2011). "Dark Energy FAQ". http://www.preposterousuniverse.com/blog/2011/10/04/dark-energy-faq/. Retrieved 28 November 2016. 
  40. Clark, Stuart (2016). Amita, Gilead. ed. "Our Implausible Universe". New Scientist 232 (3097): 35. https://www.newscientist.com/article/mg23230970-800-cosmic-coincidences-the-universe-is-flat-as-a-pancake/. 
  41. Forward, Robert L. (1985). "Extracting electrical energy from the vacuum by cohesion of charged foliated conductors". Phys. Rev. B 30 (4): 1700–1702. doi:10.1103/PhysRevB.30.1700. Bibcode: 1984PhRvB..30.1700F. http://www.zpower.com/wap/documents/ZPEPaper_ExtractingElectricalEnergyFromTheVacuumByCohesionOfChargedFoliatedConductors.pdf. 
  42. Pinto, F. (1999). "Engine cycle of an optically controlled vacuum energy transducer". Phys. Rev. B 60 (21): 14740–14755. doi:10.1103/PhysRevB.60.14740. Bibcode: 1999PhRvB..6014740P.  https://dx.doi.org/10.1103%2FPhysRevB.60.14740
  43. Millis, Marc G. (2011). "Progress in revolutionary propulsion physics". 61st International Astronautical Congress, Prague (International Astronautical Federation). Bibcode: 2011arXiv1101.1063M.  http://adsabs.harvard.edu/abs/2011arXiv1101.1063M
  44. Pena, Luis de la; Cetto, Ana Maria; Valdes-Hernandez, Andrea (2014). The Emerging Quantum: The Physics Behind Quantum Mechanics. p. 95. doi:10.1007/978-3-319-07893-9. ISBN 9783319078939. https://books.google.co.uk/books?id=v0MqBAAAQBAJ. 
  45. Barrett, Terence W. (2008). Topological Foundations of Electromagnetism. Singapore: World Scientific. p. 2. ISBN 9789812779977. https://books.google.com/?id=e0-QdLqT-pIC. 
  46. Itzykson, Claude; Zuber, Jean-Bernard (1980). Quantum Field Theory. McGraw-Hill. pp. 111. ISBN 978-0070320710. https://archive.org/details/quantumfieldtheo0000itzy. 
  47. Couder, Yves; Fort, Emmanuel (2006). "Single-Particle Diffraction and Interference at a Macroscopic Scale". Phys. Rev. Lett. 97 (15): 154101. doi:10.1103/PhysRevLett.97.154101. PMID 17155330. Bibcode: 2006PhRvL..97o4101C. http://users.isy.liu.se/en/jalar/kurser/QF/assignments/Couder2006.pdf. 
  48. Bush, John W. M. (2015). "The new wave of pilot-wave theory". Physics Today 68 (8): 47–53. doi:10.1063/PT.3.2882. Bibcode: 2015PhT....68h..47B. http://newfos.arizona.edu/sites/default/files/uploads/documents/Pilot_Waves_Phys_Today_Aug_2015.pdf. Retrieved 30 November 2016. 
  49. Bush, John W. M. (2015). "Pilot-Wave Hydrodynamics". Annual Review of Fluid Mechanics 47 (1): 269–292. doi:10.1146/annurev-fluid-010814-014506. Bibcode: 2015AnRFM..47..269B. http://dspace.mit.edu/bitstream/1721.1/89790/1/Bush_Pilot-wave.pdf. 
  50. Wolchover, Natalie (24 June 2014). "Fluid Tests Hint at Concrete Quantum Reality". Quanta Magazine. https://www.quantamagazine.org/20140624-fluid-tests-hint-at-concrete-quantum-reality/. Retrieved 28 November 2016. 
  51. Falk, Dan (16 May 2016). "New Support for Alternative Quantum View". Quanta Magazine. https://www.quantamagazine.org/20160517-pilot-wave-theory-gains-experimental-support/. Retrieved 28 November 2016. 
  52. Grössing, G.; Fussy, S.; Mesa Pascasio, J.; Schwabl, H. (2012). "An explanation of interference effects in the double slit experiment: Classical trajectories plus ballistic diffusion caused by zero-point fluctuations". Annals of Physics 327 (2): 421–437. doi:10.1016/j.aop.2011.11.010. Bibcode: 2012AnPhy.327..421G.  https://dx.doi.org/10.1016%2Fj.aop.2011.11.010
  53. Grössing, G.; Fussy, S.; Mesa Pascasio, J.; Schwabl, H. (2012). "The Quantum as an Emergent System". Journal of Physics: Conference Series 361 (1): 012008. doi:10.1088/1742-6596/361/1/012008. Bibcode: 2012JPhCS.361a2008G.  https://dx.doi.org/10.1088%2F1742-6596%2F361%2F1%2F012008
  54. https://plus.google.com/117663015413546257905/posts/WfFtJ8bYVya
  55. http://blogs.discovermagazine.com/outthere/2014/08/06/nasa-validate-imposible-space-drive-word/#.VCYphStdU3c
  56. Lafleur, Trevor (2014-11-19). "Can the quantum vacuum be used as a reaction medium to generate thrust?". arXiv:1411.5359 [quant-ph]. //arxiv.org/archive/quant-ph
  57. https://www.youtube.com/watch?v=Wokn7crjBbA
  58. https://ntrs.nasa.gov/archive/nasa/casi.ntrs.nasa.gov/20140013174.pdf
  59. Pinto, F. (2006). "Progress in Quantum Vacuum Engineering Propulsion". Journal of the British Interplanetary Society (JBIS) 59: 247–256. Bibcode: 2006JBIS...59..247P. http://www.jbis.org.uk/paper.php?p=2006.59.247. Retrieved 2014-08-04. 
  60. MacLay, G. Jordan; Forward, Robert L. (2004-03-01). "A Gedanken Spacecraft that Operates Using the Quantum Vacuum (Dynamic Casimir Effect)". Foundations of Physics 34 (3): 477–500. doi:10.1023/B:FOOP.0000019624.51662.50. Bibcode: 2004FoPh...34..477M.  https://dx.doi.org/10.1023%2FB%3AFOOP.0000019624.51662.50
  61. Puthoff, H. E.; Little, S. R. (2010-12-23). "Engineering the Zero-Point Field and Polarizable Vacuum For Interstellar Flight". J. Br. Interplanet. Soc. 55: 137–144. Bibcode: 2010arXiv1012.5264P.  http://adsabs.harvard.edu/abs/2010arXiv1012.5264P
  62. Minami, Y. (2008). "Preliminary Theorectical Considerations for Getting Thrust via Squeezed Vacuum". Journal of the British Interplanetary Society (JBIS) 61: 315–321. Bibcode: 2008JBIS...61..315M. http://www.jbis.org.uk/paper.php?p=2008.61.315. Retrieved 2014-08-04. 
  63. Feigel, Alexander (2009-12-05). "A magneto-electric quantum wheel". arXiv:0912.1031 [quant-ph]. //arxiv.org/archive/quant-ph
  64. Graham, G. M; Lahoz, D. G (1980). "Observation of static electromagnetic angular momentum in vacua". Nature (Nature Publishing Group) 285 (5761): 154–155. doi:10.1038/285154a0. Bibcode: 1980Natur.285..154G.  https://dx.doi.org/10.1038%2F285154a0
  65. Donaire, Manuel; Van Tiggelen, Bart; Rikken, Geert (2014). "Transfer of linear momentum from the quantum vacuum to a magnetochiral molecule". Journal of Physics: Condensed Matter 1404 (21): 5990. doi:10.1088/0953-8984/27/21/214002. PMID 25965120. Bibcode: 2015JPCM...27u4002D.  https://dx.doi.org/10.1088%2F0953-8984%2F27%2F21%2F214002
  66. White, Harold (2013). "Eagleworks Laboratories: Warp Field Physics". NASA Technical Reports Server (NTRS) 20140000851. https://ntrs.nasa.gov/archive/nasa/casi.ntrs.nasa.gov/20140000851.pdf. 
  67. "Propulsion device and method employing electric fields for producing thrust". http://www.google.com/patents/US6492784. 
  68. "Gravitec Inc. Website". Archived from the original on 4 June 2013. https://web.archive.org/web/20130604233553/http://gravitecinc.com/. 
  69. "Eagleworks Newsletter 2013". https://xa.yimg.com/kq/groups/86787010/513081407/name/Eagleworks+Newsletter+2013.pdf. 
  70. "Anomalous Thrust Production from an RF Test Device Measured on a Low-Thrust Torsion Pendulum". https://ntrs.nasa.gov/archive/nasa/casi.ntrs.nasa.gov/20140006052.pdf. 
  71. Brady, David; White, Harold; March, Paul; Lawrence, James; Davies, Frank (2014). "Anomalous Thrust Production from an RF Test Device Measured on a Low-Thrust Torsion Pendulum". 50th AIAA/ASME/SAE/ASEE Joint Propulsion Conference. doi:10.2514/6.2014-4029. ISBN 978-1-62410-303-2.  https://dx.doi.org/10.2514%2F6.2014-4029
  72. Wang, Brian (6 February 2015). "Update on EMDrive work at NASA Eagleworks". http://nextbigfuture.com/2015/02/update-on-emdrive-work-at-nasa.html. 
  73. "Anomalous Thrust Production from an RF Test Device Measured on a Low-Thrust Torsion Pendulum". http://www.libertariannews.org/wp-content/uploads/2014/07/AnomalousThrustProductionFromanRFTestDevice-BradyEtAl.pdf. 
  74. Yang, J.; Liu, X.-C.; Wang, Y.-G.; Tang, M.-J.; Luo, L.-T.; Jin, Y.-Z.; Ning, Z.-X. (February 2016). "Thrust Measurement of an Independent Microwave Thruster Propulsion Device with Three-Wire Torsion Pendulum Thrust Measurement System". Journal of Propulsion Technology(in Chinese). 37 (2): 362–371.
  75. March, P.; Palfreyman, A. (2006). M. S. El-Genk. ed. "The Woodward Effect: Math Modeling and Continued Experimental Verifications at 2 to 4 MHz". Proceedings of Space Technology and Applications International Forum (STAIF) (American Institute of Physics, Melville, New York) 813: 1321–1332. doi:10.1063/1.2169317. Bibcode: 2006AIPC..813.1321M. http://proceedings.aip.org/resource/2/apcpcs/813/1/1321_1. Retrieved 29 January 2013. 
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