Matches in SemOpenAlex for { <https://semopenalex.org/work/W4211134288> ?p ?o ?g. }
- W4211134288 endingPage "346" @default.
- W4211134288 startingPage "321" @default.
- W4211134288 abstract "Free Access References Roman V. Krems, Roman V. Krems University of British Columbia, 2036 Main Mall, Vancouver, V6T1Z1 British Columbia, CanadaSearch for more papers by this author Book Author(s):Roman V. Krems, Roman V. Krems University of British Columbia, 2036 Main Mall, Vancouver, V6T1Z1 British Columbia, CanadaSearch for more papers by this author First published: 06 June 2018 https://doi.org/10.1002/9781119382638.refs AboutPDFPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShareShare a linkShare onFacebookTwitterLinked InRedditWechat References Lemeshko, M., Doyle, J., Krems, R.V., and Kais, S. (2013). Manipulation of molecules with electromagnetic fields. Eur. Phys. J. D 111: 1648. Mizushima, M. (1975). The Theory of Rotating Diatomic Molecules. Wiley. Lefebvre-Brion, H. and Field, R.W. (1986). Perturbations in the Spectra of Diatomic Molecules. Orlando, FL: Academic Press. Brown, J.M. and Carrington, A. (2003). Rotational Spectroscopy of Diatomic Molecules. Cambridge University Press. Fohlisch, A., Feulner, P., Hennies, F. et al. (2005). Direct observation of electron dynamics in the attosecond domain. Nature 436: 373. Parlant, G. and Yarkony, D.R. (1999). A theoretical analysis of the state-specific decomposition of OH (A 2 Σ + , v ′ , N ′ , F 1 / F 2 ) levels, including the effects of spin–orbit and Coriolis interactions. J. Chem. Phys. 110: 363. Krems, R.V., Jamieson, M.J., and Dalgarno, A. (2006). The 1D-3P transitions in atomic oxygen induced by impact with atomic hydrogen. Astrophys. J. 647: 1531. Landau, L.D. and Lifshitz, E.M. (2003). Quantum Mechanics (Non-Relativistic Theory). Elsevier Science Limited. Zare, R.N. (1988). Angular Momentum: Understanding Spatial Aspects in Chemistry and Physics. Wiley. Varshalovich, D.A., Moskalev, A.N., and Khersonskii, V.K. (1988). Quantum Theory of Angular Momentum: Irreducible Tensors, Spherical Harmonics, Vector Coupling Coefficients, 3 n j Symbols. World Scientific. Hougen, J.T. (1970). The Calculations of Rotational Energy Levels and Rotational Line Intensities in Diatomic Molecules, National Bureau of Standards Monograph 115. Washington, DC: National Bureau of Standards. Wigner, E. and Witmer, E.E. (1928). Über die Struktur der zweiatomigen Molekelspektren nach der Quantenmechanik. Z. Phys. 51: 859. Landau, L.D. and LIfshitz, E.M. (2003). The Classical Theory of Fields. Elsevier Science Limited. Pavlovic, Z., Tscherbul, T.V., Sadeghpour, H.R. et al. (2009). Cold collisions of OH(2Π) molecules with He atoms in external fields†. J. Phys. Chem. A 113: 14670. Landau, L.D. and LIfshitz, E.M. (2003). Mechanics. Elsevier Science Limited. Bergstrröm, L. and Hansson, H. (1999). Lecture Notes in Relativistic Quantum Mechanics. Stockholm: Department of Physics, Stockholm University. Karplus, R. and Kroll, N.M. (1950). Fourth-order corrections in quantum electrodynamics and the magnetic moment of the electron. Phys. Rev. 77: 536. Gabrielse, G., Hanneke, D., Kinoshita, T. et al. (2006). New determination of the fine structure constant from the electron g value and QED. Phys. Rev. Lett. 97: 030802. National Institute of Standards and Technology database: www.nist.gov (accessed 24 November 2017). Friedrich, B., Weinstein, J.D., deCarvalho, R., and Doyle, J.M. (1999). Zeeman spectroscopy of CaH molecules in a magnetic trap. J. Chem. Phys. 110: 2376. Radford, H.E. and Broida, H.P. (1962). Rotational perturbations in CN. Zero-field theory, optical Zeeman effect, and microwave transition probabilities. Phys. Rev. 128: 231. Veseth, L. (1976) Theory of high-precision Zeeman effect in diatomic molecules. J. Mol. Spectrosc. 63 (2), 180. Krems, R., Egorov, D., Helton, J.S. et al. (2004). Zeeman effect in CaF( 2 Π 3 / 2 ). J. Chem. Phys. 121: 11639. Wallis, A.O.G. and Krems, R.V. (2014). Magnetic Feshbach resonances in collisions of nonmagnetic closed-shell 1Σ molecules. Phys. Rev. A 89: 032716. Aldegunde, J., Rivington, B.A., Żuchowski, P.S., and Hutson, J.M. (2008). Hyperfine energy levels of alkali-metal dimers: ground-state polar molecules in electric and magnetic fields. Phys. Rev. A 78: 033434. Yanovsky, V., Chvykov, V., Kalinchenko, G. et al. (2008). Ultra-high intensity- 300-TW laser at 0.1 Hz repetition rate. Opt. Express 16: 2109. Amann, H. (1990). Ordinary Differential Equations: An Introduction to Nonlinear Analysis. Walter de Gruyter. Shirley, J.H. (1965). Solution of the schrödinger equation with a hamiltonian periodic in time. Phys. Rev. 138: B979. Ho, T.S., Chu, S.I., and Tietz, J.V. (1983). Semiclassical many-mode Floquet theory. Chem. Phys. Lett. 96: 464. Ho, T.S. and Chu, S.I. (1984). Semiclassical many-mode Floquet theory. II. Non-linear multiphoton dynamics of a 2-level system in a strong bichromatic field. J. Phys. B: At. Mol. Opt. Phys. 17: 2101. Bonin, K.D. and Kresin, V.V. (1997). Electric-Dipole Polarizabilities of Atoms, Molecules and Clusters. Singapore: World Scientific. Happer, W. and Mathur, B.S. (1967). Effective operator formalism in optical pumping. Phys. Rev. 163: 12. Brieger, M. (1984). Stark effect, polarizabilities and the electric dipole moment of heteronuclear diatomic molecules in 1 Σ states. Chem. Phys. 89: 275. Bishop, D.M., Lam, B., and Epstein, S.T. (1988). The Stark effect and polarizabilities for a diatomic molecule. J. Chem. Phys. 88: 337. Bishop, D.M. (1990). Molecular vibrational and rotational motion in static and dynamic electric fields. Rev. Mod. Phys. 62: 343. Friedrich, B. and Herschbach, D. (1995). Alignment and trapping of molecules in intense laser fields. Phys. Rev. Lett. 74: 4623. DeMille, D., Glenn, D., and Petricka, J. (2004). Microwave traps for cold polar molecules. Eur. Phys. J. D 31: 375. Alyabyshev, S.V., Tscherbul, T.V., and Krems, R.V. (2009). Microwave-laser-field modification of molecular collisions at low temperatures. Phys. Rev. A 79: 060703. Grynberg, G., Aspect, A., and Fabre, C. (2010). Introduction to Quantum Optics. Cambridge: Cambridge University Press. Weiner, J. and Ho, P.-H. (2003). Light-Matter Interaction. Hoboken, NJ: Wiley. Jackson, J.D. (1998). Classical Electrodynamics. New York: Wiley. Arfken, G. and Weber, H.J. (2005). Mathematical Methods for Physicists. USA: Elsevier Academic Press. Meyenn, K. (1970). Rotation von zweiatomigen Dipolmolekülen in Starken elektrischen Feldern. Z. Phys. 231: 154. Bernstein, R.B., Herschbach, D., and Levine, R.D. (1987). Dynamical aspects of stereochemistry. J. Phys. Chem. 91: 5365. Brooks, P.R. (1976). Reactions of oriented molecules. Science 193: 11. Loesch, H.J. and Remscheid, A. (1990). Brute force in molecular reaction dynamics: a novel technique for measuring steric effects. J. Chem. Phys. 93: 4779. Friedrich, B. and Herschbach, D. (1991). Spatial orientation of molecules in strong electric fields and evidence for pendular states. Nature 353: 412. Friedrich, B. and Herschbach, D. (1991). On the possibility of orienting rotationally cooled polar molecules in an electric field. Z. Phys. D 18: 153. Rost, J., Griffin, J., Friedrich, B., and Herschbach, D. (1992). Pendular states and spectra of oriented linear molecules. Phys. Rev. Lett. 68: 1299. Friedrich, B., Rubahn, H., and Sathyamurthy, N. (1992). State-resolved scattering of molecules in pendular states: ICl + Ar. Phys. Rev. Lett. 69: 2487. Friedrich, B. and Herschbach, D.R. (1993). Thermodynamic functions of pendular molecules. Collect. Czech. Chem. Commun. 58: 2458. Friedrich, B., Herschbach, D., Rost, J., and Rubahn, H. (1993). Optical spectra of spatially oriented molecules: ICl in a strong electric field. J. Chem. Soc., Faraday Trans. 89: 1539. Friedrich, B., Slenczka, A., and Herschbach, D. (1994). Spectroscopy of pendular molecules in strong parallel electric and magnetic fields. Can. J. Phys. 72: 897. Slenczka, A., Friedrich, B., and Herschbach, D. (1994). Determination of the electric dipole moment of IC1(B 3 Π 0 ) from pendular spectra. Chem. Phys. Lett. 224: 238. Friedrich, B. and Herschbach, D. (1996). Statistical mechanics of pendular molecules. Int. Rev. Phys. Chem. 15: 325. Aoiz, F.J., Friedrich, B., Herrero, V.J. et al. (1998). Effect of pendular orientation on the reactivity of H + DCl: a quasiclassical trajectory study. Chem. Phys. Lett. 289: 132. Friedrich, B. (2006). Net polarization of a molecular beam by strong electrostatic or radiative fields. Eur. Phys. J. D 38: 209. Coisson, R., Vernizzi, G., and Yang, X. (2009). Mathieu functions and numerical solutions of the Mathieu equation. 2009 IEEE International Workshop on Open-Source Software for Scientific Computation (OSSC), p. 3. Friedrich, B. and Herschbach, D. (1992). On the possibility of aligning paramagnetic molecules or ions in a magnetic field. Z. Phys. D 24: 25. Slenczka, A. (1998). Electric linear dichroism with a simple interpretation in terms of molecular pendular states. Phys. Rev. Lett. 80: 2566. Kim, W. and Felker, P.M. (1996). Spectroscopy of pendular states in optical-field-aligned species. J. Chem. Phys. 104: 1147. Kim, W. and Felker, P.M. (1997). Ground-state intermolecular spectroscopy and pendular states in benzene–argon. J. Chem. Phys. 107: 2193. Kim, W. and Felker, P.M. (1998). Optical-field-induced pendular states and pendular band contours in symmetric tops. J. Chem. Phys. 108: 6763. Kumar, G.R., Gross, P., Safvan, C.P. et al. (1996). Pendular motion of linear in intense laser fields. J. Phys. B 29: L95. Kumar, G., Gross, P., Safvan, C. et al. (1996). Molecular pendular states in intense laser fields. Phys. Rev. A 53: 3098. Safvan, C.P., Vijayalakshmi, K., Rajgara, F.A. et al. (1999). Dissociation dynamics of in intense laser fields: directional specificity of and fragments. J. Phys. B 29: L481. Bhardwaj, V., Vijayalakshmi, K., and Mathur, D. (1997). Spatial alignment of gas-phase polyatomic molecules by an intense laser field. Phys. Rev. A 56: 2455. Bhardwaj, V.R., Safvan, C.P., Vijayalakshmi, K., and Mathur, D. (1999). On the spatial alignment of bent triatomic molecules by intense, picosecond laser fields. J. Phys. B 30: 3821. Sakai, H., Safvan, C., Larsen, J.J. et al. (1999). Controlling the alignment of neutral molecules by a strong laser field. J. Chem. Phys. 110: 10235. Larsen, J., Wendt-Larsen, I., and Stapelfeldt, H. (1999). Controlling the branching ratio of photodissociation using aligned molecules. Phys. Rev. Lett. 83: 1123. Larsen, J.J., Sakai, H., Safvan, C.P. et al. (1999). Aligning molecules with intense nonresonant laser fields. J. Chem. Phys. 111: 7774. Larsen, J.J., Hald, K., Bjerre, N. et al. (2000). Three dimensional alignment of molecules using elliptically polarized laser fields. Phys. Rev. Lett. 85: 2470. Sugita, A., Mashino, M., Kawasaki, M. et al. (2000). Control of photofragment velocity anisotropy by optical alignment of CH 3 I. J. Chem. Phys. 112: 2164. Kumarappan, V., Bisgaard, C.Z., Viftrup, S.S. et al. (2006). Role of rotational temperature in adiabatic molecular alignment. J. Chem. Phys. 125: 194309. Pentlehner, D., Nielsen, J.H., Christiansen, L. et al. (2013). Laser-induced adiabatic alignment of molecules dissolved in helium nanodroplets. Phys. Rev. A 87: 063401. Madsen, C.B., Madsen, L.B., Viftrup, S.S. et al. (2009). Manipulating the torsion of molecules by strong laser pulses. Phys. Rev. Lett. 102: 073007. Madsen, C.B., Madsen, L.B., Viftrup, S. et al. (2009). A combined experimental and theoretical study on realizing and using laser controlled torsion of molecules. J. Chem. Phys. 130: 234310. Hansen, J.L., Nielsen, J.H., Madsen, C.B. et al. (2012). Control and femtosecond time-resolved imaging of torsion in a chiral molecule. J. Chem. Phys. 136: 204310. Karczmarek, J., Wright, J., Corkum, P., and Ivanov, M. (1999). Optical centrifuge for molecules. Phys. Rev. Lett. 82: 3420. Korobenko, A., Milner, A.A., and Milner, V. (2014). Direct observation, study, and control of molecular superrotors. Phys. Rev. Lett. 112: 113004. Korobenko, A., Milner, A.A., Hepburn, J.W., and Milner, V. (2014). Rotational spectroscopy with an optical centrifuge. Phys. Chem. Chem. Phys. 16: 4071. Korobenko, A., Hepburn, J.W., and Milner, V. (2015). Observation of nondispersing classical-like molecular rotation. Phys. Chem. Chem. Phys. 17: 951. Korobenko, A. and Milner, V. (2015). Dynamics of molecular superrotors in an external magnetic field. J. Phys. B 48: 164004. Korobenko, A. and Milner, V. (2016). Adiabatic field-free alignment of asymmetric top molecules with an optical centrifuge. Phys. Rev. Lett. 116: 183001. Milner, A.A., Korobenko, A., Floss, J. et al. (2015). Magneto-optical properties of paramagnetic superrotors. Phys. Rev. Lett. 115: 033005. Milner, A.A., Korobenko, A., Hepburn, J.W., and Milner, V. (2014). Effects of ultrafast molecular rotation on collisional decoherence. Phys. Rev. Lett. 113: 043005. Milner, A.A., Korobenko, A., and Milner, V. (2015). Sound emission from the gas of molecular superrotors. Opt. Express 23: 8603. Milner, A.A., Korobenko, A., and Milner, V. (2014). Coherent spinâ rotational dynamics of oxygen superrotors. New J. Phys. 16: 093038. Milner, A.A., Korobenko, A., and Milner, V. (2016). Field-free long-lived alignment of molecules with a two-dimensional optical centrifuge. Phys. Rev. A 93: 053408. Parker, D. and Bernstein, R.B. (1989). Oriented molecule beams via the electrostatic hexapole: preparation, characterization, and reactive scattering. Annu. Rev. Phys. Chem. 40: 561. Cho, V.A. and Bernstein, R.B. (1991). Tight focusing of beams of polar polyatomic molecules via the electrostatic hexapole lens. J. Phys. Chem. 95: 8129. Brooks, P.R. (1995). Orientation effects in electron transfer collisions. Int. Rev. Phys. Chem. 14: 327. Brooks, P.R., McKillop, J.S., and Pippin, H.G. (1979). Molecular beam reaction of K atoms with sideways oriented CF 3 I. Chem. Phys. Lett. 66: 144. Brooks, P.R. and Jones, E.M. (1966). Reactive scattering of K atoms from oriented CH3I molecules. J. Chem. Phys. 45: 3449. Beuhler, R.J. Jr., Bernstein, R.B., and Kramer, K.H. (1966). Observation of the reactive asymmetry of methyl iodide. Crossed beam study of the reaction of rubidium with oriented methyl iodide molecules. J. Am. Chem. Soc. 88: 5331. Parker, D.H., Chakravorty, K.K., and Bernstein, R.B. (1982). Crossed beam reaction of oriented methyl iodide with rubidium: steric factor and reactive asymmetry versus scattering angle. Chem. Phys. Lett. 82: 113. Brooks, P.R. (1969). Molecular beam reaction of K with oriented CF 3 I. Evidence for harpooning? J. Chem. Phys. 50: 5031. van Beek, M., ter Meulen, J., and Alexander, M. (2000). Rotationally inelastic collisions of OH ( X 2 Π ) + Ar. II. The effect of molecular orientation. J. Chem. Phys. 113: 637. van Beek, M., Berden, G., Bethlem, H., and ter Meulen, J. (2001). Molecular reorientation in collisions of OH + Ar. Phys. Rev. Lett. 86: 4001. Van Leuken, J., Bulthuis, J., Stolte, S., and Loesch, H. (1995). KBr angular and velocity distributions from a crossed molecular beam study between K and brute force oriented and nonoriented CH 3 Br molecules. J. Phys. Chem. 99: 13582. Loesch, H. and Möller, J. (1993). Brute force in reactive scattering: steric effects in the reaction K + ICl → KI + Cl, KCl + I at E tr = 3.03 eV. J. Phys. Chem. 97: 2158. Loesch, H.J. and Stienkemeier, F. (1993). Steric effects in the state specific reaction Li + HF( v = 1 , j = 1 , m = 0 ) → LiF + H. J. Chem. Phys. 98: 9570. Loesch, H.J. and Moller, J. (1997). Reactive scattering from brute force oriented asymmetric top molecules: K + C 6 H 5 I → KI + C 6 H 5 . J. Phys. Chem. A 101: 7534. Loesch, H.J. (1995). Orientation and alignment in reactive beam collisions: recent progress. Annu. Rev. Phys. Chem. 46: 555. Parker, D.H., Jalink, H., and Stolte, S. (1987). Dynamics of molecular stereochemistry via oriented molecule scattering. J. Phys. Chem. 91: 5427. Franks, K.J., Li, H., and Kong, W. (1999). Orientation of pyrimidine in the gas phase using a strong electric field: spectroscopy and relaxation dynamics. J. Chem. Phys. 110: 11779. Kong, W., Pei, L., and Zhang, J. (2009). Linear dichroism spectroscopy of gas phase biological molecules embedded in superfluid helium droplets. Int. Rev. Phys. Chem. 28: 33. Gijsbertsen, A., Siu, W., Kling, M.F. et al. (2007). Direct determination of the sign of the NO dipole moment. Phys. Rev. Lett. 99: 213003. Paul, W. (1990). Electromagnetic traps for charged and neutral particles. Rev. Mod. Phys. 62: 531. Gerlach, W. and Stern, O. (1922). Das magnetische Moment des Silberatoms. Z. Phys. A 9: 353. Kallmann, H. and Reiche, F. (1921). Über den Durchgang bewegter Moleküle durch inhomogene Kraftfelder. Z. Phys. A 6: 352. Küpper, G.M.J., Filsinger, F., and Stapelfeldt, H. (2012). Manipulating the motion of complex molecules: deflection, focusing, and deceleration of molecular beams for quantum-state and conformer selection. In: Methods in Physical Chemistry (ed. R. Schafer and P.C. Schmidt), Wiley. Wrede, E. (1927). Über die Ablenkung von Molekularstrahlen elektrischer Dipolmoleküle im inhomogenen elektrischen Feld. Z. Phys. A 44: 261. Rabi, I.I., Millman, S., Kusch, P., and Zacharias, J.R. (1939). The molecular beam resonance method for measuring nuclear magnetic moments. The magnetic moments of 3 Li 6 , 3 Li 7 and 9 F 19 . Phys. Rev. 55: 526. Aquilanti, V., Ascenzi, D., Cappelletti, D., and Pirani, F. (1995). Magnetic analysis of nearly effusive and moderately supersonic beams of oxygen molecules. Int. J. Mass Spectrom. Ion Proc. 149–150: 355. Gordon, J., Zeiger, H., and Townes, C. (1954). Molecular microwave oscillator and new hyperfine structure in the microwave spectrum of NH3 . Phys. Rev. 95: 282. Gordon, J., Zeiger, H., and Townes, C. (1955). The maser—new type of microwave amplifier, frequency standard, and spectrometer. Phys. Rev. 99: 1264. Auerbach, D., Bromberg, E.E.A., and Wharton, L. (1966). Alternate-gradient focusing of molecular beams. J. Chem. Phys. 45: 2160. Rangwala, S., glen, T., Rieger, T. et al. (2003). Continuous source of translationally cold dipolar molecules. Phys. Rev. A 67: 043406. Junglen, T., Rieger, T., Rangwala, S. et al. (2004). Two-dimensional trapping of dipolar molecules in time-varying electric fields. Phys. Rev. Lett. 92: 223001. Rieger, T., glen, T., Rangwala, S. et al. (2005). Continuous loading of an electrostatic trap for polar molecules. Phys. Rev. Lett. 95: 173002. Tsuji, H., Sekiguchi, T., Mori, T. et al. (2010). Stark velocity filter for nonlinear polar molecules. J. Phys. B 43: 095202. Chervenkov, S., Wu, X., Bayerl, J. et al. (2014). Continuous centrifuge decelerator for polar molecules. Phys. Rev. Lett. 112: 013001. Bethlem, H., van Roij, A., Jongma, R., and Meijer, G. (2002). Alternate gradient focusing and deceleration of a molecular beam. Phys. Rev. Lett. 88: 133003. Tarbutt, M., Bethlem, H., Hudson, J. et al. (2004). Slowing heavy, ground-state molecules using an alternating gradient decelerator. Phys. Rev. Lett. 92: 173002. Bethlem, H.L., Tarbutt, M.R., Küpper, J. et al. (2006). Alternating gradient focusing and deceleration of polar molecules. J. Phys. B 39: R263. Wohlfart, K., Filsinger, F., Grätz, F. et al. (2008). Stark deceleration of OH radicals in low-field-seeking and high-field-seeking quantum states. Phys. Rev. A 78: 033421. Küpper, J., Filsinger, F., and Meijer, G. (2009). Manipulating the motion of large neutral molecules. Faraday Discuss. 142: 155. Kalnins, J., Lambertson, G., and Gould, H. (2002). Improved alternating gradient transport and focusing of neutral molecules. Rev. Sci. Instrum. 73: 2557. Wohlfart, K., Grätz, F., Filsinger, F. et al. (2008). Alternating-gradient focusing and deceleration of large molecules. Phys. Rev. A 77: 031404. Putzke, S., Filsinger, F., Küpper, J., and Meijer, G. (2012). Alternating-gradient focusing of the benzonitrile-argon van der Waals complex. J. Chem. Phys. 137: 104310. Putzke, S., Filsinger, F., Haak, H. et al. (2011). Rotational-state-specific guiding of large molecules. Phys. Chem. Chem. Phys. 13: 18962. Filsinger, F., Erlekam, U., von Helden, G. et al. (2008). Selector for structural isomers of neutral molecules. Phys. Rev. Lett. 100: 133003. Filsinger, F., Küpper, J., Meijer, G. et al. (2009). Pure samples of individual conformers: the separation of stereoisomers of complex molecules using electric fields. Angew. Chem. Int. Ed. 48: 6900. Filsinger, F., Putzke, S., Haak, H. et al. (2010). Optimizing the resolution of the alternating-gradient m/μ selector. Phys. Rev. A 82: 052513. Trippel, S., Chang, Y.-P., Stern, S. et al. (2012). Spatial separation of state- and size-selected neutral clusters. Phys. Rev. A 86: 033202. Stapelfeldt, H., Sakai, H., Constant, E., and Corkum, P. (1997). Deflection of neutral molecules using the nonresonant dipole force. Phys. Rev. Lett. 79: 2787. Sakai, H., Tarasevitch, A., Danilov, J. et al. (1998). Optical deflection of molecules. Phys. Rev. A 57: 2794. Zhao, B.S., Sung Chung, H., Cho, K. et al. (2000). Molecular lens of the nonresonant dipole force. Phys. Rev. Lett. 85: 2705. Zhao, B.S., Lee, S.H., Chung, H.S. et al. (2003). Separation of a benzene and nitric oxide mixture by a molecule prism. J. Chem. Phys. 119: 8905. Chung, H.S., Zhao, B.S., Lee, S.H. et al. (2001). Molecular lens applied to benzene and carbon disulfide molecular beams. J. Chem. Phys. 114: 8293. Averbukh, I.S., Vrakking, M.J.J., Villeneuve, D.M., and Stolow, A. (1996). Wave packet isotope separation. Phys. Rev. Lett. 77: 3518. Leibscher, M. and Averbukh, I.S. (2001). Optimal control of wave-packet isotope separation. Phys. Rev. A 63: 043407. Odashima, H., Merz, S., Enomoto, K. et al. (2010). Microwave lens for polar molecules. Phys. Rev. Lett. 104: 253001. Enomoto, K., Djuricanin, P., Gerhardt, I. et al. (2012). Superconducting microwave cavity towards controlling the motion of polar molecules. Appl. Phys. B 109: 149. Gershnabel, E. and Averbukh, I.S. (2011). Deflection of rotating symmetric top molecules by inhomogeneous fields. J. Chem. Phys. 135: 084307. Gershnabel, E. and Averbukh, I.S. (2010). Deflection of field-free aligned molecules. Phys. Rev. Lett. 104: 153001. Arndt, M., Ekers, A., von Klitzing, W., and Ulbricht, H. (2012). Focus on modern frontiers of matter wave optics and interferometry. New J. Phys. 14: 125006. Gershnabel, E. and Averbukh, I. (2010). Controlling molecular scattering by laser-induced field-free alignment. Phys. Rev. A 82: 033401. Floß, J., Gershnabel, E., and Averbukh, I. (2011). Motion of spinning molecules in inhomogeneous fields. Phys. Rev. A 83: 025401. Gershnabel, E. and Averbukh, I.S. (2011). Electric deflection of rotating molecules. J. Chem. Phys. 134: 054304. Purcell, S. and Barker, P. (2010). Controlling the optical dipole force for molecules with field-induced alignment. Phys. Rev. A 82: 033433. R.V. Krems, W.C. Stwalley, and B. Friedrich ed. (2009). Cold Molecules: Theory, Experiment and Applications. Boca Raton, FL: Taylor and Francis. Bethlem, H., Berden, G., and Meijer, G. (1999). Decelerating neutral dipolar molecules. Phys. Rev. Lett. 83: 1558. Maddi, J., Dinneen, T., and Gould, H. (1999). Slowing and cooling molecules and neutral atoms by time-varying electric-field gradients. Phys. Rev. A 60: 3882. Heiner, C.E., Bethlem, H.L., and Meijer, G. (2006). Molecular beams with a tunable velocity. Phys. Chem. Chem. Phys. 8: 2666. Friedrich, B. (2004). A quasi-analytic model of a linear Stark accelerator/decelerator for polar molecules. Eur. Phys. J. D 31: 313. Gubbels, K., Meijer, G., and Friedrich, B. (2006). Analytic wave model of Stark deceleration dynamics. Phys. Rev. A 73: 063406. Bethlem, H., Crompvoets, F., Jongma, R. et al. (2002). Deceleration and trapping of ammonia using time-varying electric fields. Phys. Rev. A 65: 053416. van de Meerakker, S., Vanhaecke, N., Bethlem, H., and Meijer, G. (2005). Higher-order resonances in a Stark decelerator. Phys. Rev. A 71: 053409. van de Meerakker, S., Vanhaecke, N., Bethlem, H., and Meijer, G. (2006). Transverse stability in a Stark decelerator. Phys. Rev. A 73: 023401. van de Meerakker, S.Y.T., Bethlem, H.L., and Meijer, G. (2008). Taming molecular beams. Nat. Phys. 4: 595. Bethlem, H.L., Berden, G., Crompvoets, F.M.H. et al. (2000). Electrostatic trapping of ammonia molecules. Nature 406: 491. Bochinski, J.R., Hudson, E.R., Lewandowski, H.J. et al. (2003). Phase space manipulation of cold free radical OH molecules. Phys. Rev. Lett. 91: 243001. van de Meerakker, S., Smeets, P., Vanhaecke, N. et al. (2005). Deceleration and electrostatic trapping of OH radicals. Phys. Rev. Lett. 94: 023004. Scharfenberg, L., Haak, H., Meijer, G., and van de Meerakker, S. (2009). Operation of a Stark decelerator with optimum acceptance. Phys. Rev. A 79: 023410. Hoekstra, S., Gilijamse, J., Sartakov, B. et al. (2007). Optical pumping of trapped neutral molecules by blackbody radiation. Phys. Rev. Lett. 98: 133001. van de Meerakker, S.Y.T., Labazan, I., Hoekstra, S. et al. (2006). Production and deceleration of a pulsed beam of metastable NH ( a 1 Δ ) radicals. J. Phys. B 39: S1077. Hudson, E., Ticknor, C., Sawyer, B. et al. (2006). Production of cold formaldehyde molecules for study and control of chemical reaction dynamics with hydroxyl radicals. Phys. Rev. A 73: 063404. Jung, S., Tiemann, E., and Lisdat, C. (2006). Cold atoms and molecules from fragmentation of decelerated SO 2 . Phys. Rev. A 74: 040701. Tokunaga, S.K., Dyne, J.M., Hinds, E.A., and Tarbutt, M.R. (2009). Stark deceleration of lithium hydride molecules. New J. Phys. 11: 055038. Wall, T.E., Tokunaga, S.K., Hinds, E.A., and Tarbutt, M.R. (2010). Nonadiabatic transitions in a Stark decelerator. Phys. Rev. A 81: 033414. Deng, L.-Z., Fu, G.-B., and Yin, J.-P. (2009). Theoretical study of slowing supersonic CH 3 F molecular beams using electrostatic Stark decelerator. Chin. Phys. B 18: 149. Fu, G.-B., Deng, L.-Z., and Yin, J.-P. (2008). A new desirable molecular species for Stark deceleration. Chin. Phys. Lett. 25: 923. Berg, J.E., Turkesteen, S.H., Prinsen, E.B., and Hoekstra, S. (2012). Deceleration and trapping of heavy diatomic molecules using a ring-decelerator. Eur. Phys. J. D 66: 235. Osterwalder, A., Meek, S.A., Hammer, G. et al. (2010). Deceleration of neutral molecules in macroscopic traveling traps. Phys. Rev. A 81: 051401. Bulleid, N., Hendricks, R., Hinds, E. et al. (2012). Traveling-wave deceleration of heavy polar molecules in low-field-seeking states. Phys. Rev. A 86: 021404. Marian, A., Haak, H., Geng, P., and Meijer, G. (2010). Slowing polar molecules using a wire Stark decelerator. Eur. Phys. J. D 59: 179. Meek, S.A., Bethlem, H., Conrad, H., and Meije" @default.
- W4211134288 created "2022-02-13" @default.
- W4211134288 date "2018-06-06" @default.
- W4211134288 modified "2023-10-03" @default.
- W4211134288 title "References" @default.
- W4211134288 cites W108586035 @default.
- W4211134288 cites W1518896276 @default.
- W4211134288 cites W1519819348 @default.
- W4211134288 cites W1522352106 @default.
- W4211134288 cites W1544011429 @default.
- W4211134288 cites W1591344595 @default.
- W4211134288 cites W1596240248 @default.
- W4211134288 cites W1611670824 @default.
- W4211134288 cites W1648370840 @default.
- W4211134288 cites W1657672565 @default.
- W4211134288 cites W1661804174 @default.
- W4211134288 cites W1669653682 @default.
- W4211134288 cites W1800474873 @default.
- W4211134288 cites W1851083431 @default.
- W4211134288 cites W1851842069 @default.
- W4211134288 cites W1875618797 @default.
- W4211134288 cites W1881851899 @default.
- W4211134288 cites W191686042 @default.
- W4211134288 cites W1963647688 @default.
- W4211134288 cites W1963820688 @default.
- W4211134288 cites W1964777041 @default.
- W4211134288 cites W1964840421 @default.
- W4211134288 cites W1965587313 @default.
- W4211134288 cites W1965666613 @default.
- W4211134288 cites W1965860200 @default.
- W4211134288 cites W1966371106 @default.
- W4211134288 cites W1966486767 @default.
- W4211134288 cites W1967335216 @default.
- W4211134288 cites W1967476869 @default.
- W4211134288 cites W1968333703 @default.
- W4211134288 cites W1969390771 @default.
- W4211134288 cites W1970000241 @default.
- W4211134288 cites W1970042897 @default.
- W4211134288 cites W1970649272 @default.
- W4211134288 cites W1971296773 @default.
- W4211134288 cites W1971610101 @default.
- W4211134288 cites W1972686088 @default.
- W4211134288 cites W1973376309 @default.
- W4211134288 cites W1973559081 @default.
- W4211134288 cites W1973878334 @default.
- W4211134288 cites W1973902103 @default.
- W4211134288 cites W1974251460 @default.
- W4211134288 cites W1974642539 @default.
- W4211134288 cites W1974685993 @default.
- W4211134288 cites W1974707754 @default.
- W4211134288 cites W1974732567 @default.
- W4211134288 cites W1975690689 @default.
- W4211134288 cites W1976465800 @default.
- W4211134288 cites W1978413990 @default.
- W4211134288 cites W1978664086 @default.
- W4211134288 cites W1978713836 @default.
- W4211134288 cites W1979861296 @default.
- W4211134288 cites W1981518576 @default.
- W4211134288 cites W1982052877 @default.
- W4211134288 cites W1983720079 @default.
- W4211134288 cites W1984212283 @default.
- W4211134288 cites W1984282335 @default.
- W4211134288 cites W1985136006 @default.
- W4211134288 cites W1985260560 @default.
- W4211134288 cites W1985561937 @default.
- W4211134288 cites W1985737944 @default.
- W4211134288 cites W1985962224 @default.
- W4211134288 cites W1986328193 @default.
- W4211134288 cites W1986545251 @default.
- W4211134288 cites W1987758799 @default.
- W4211134288 cites W1988364518 @default.
- W4211134288 cites W1989167470 @default.
- W4211134288 cites W1989578152 @default.
- W4211134288 cites W1989837710 @default.
- W4211134288 cites W1989864116 @default.
- W4211134288 cites W1990083610 @default.
- W4211134288 cites W1991976803 @default.
- W4211134288 cites W1992629396 @default.
- W4211134288 cites W1992799259 @default.
- W4211134288 cites W1993257594 @default.
- W4211134288 cites W1993553103 @default.
- W4211134288 cites W1993773164 @default.
- W4211134288 cites W1994465295 @default.
- W4211134288 cites W1995006289 @default.
- W4211134288 cites W1995672555 @default.
- W4211134288 cites W1996601495 @default.
- W4211134288 cites W1997563824 @default.
- W4211134288 cites W1997925745 @default.
- W4211134288 cites W1997968609 @default.
- W4211134288 cites W1998162900 @default.
- W4211134288 cites W1999850228 @default.
- W4211134288 cites W2001060515 @default.
- W4211134288 cites W2001859888 @default.
- W4211134288 cites W2002055926 @default.
- W4211134288 cites W2002621188 @default.
- W4211134288 cites W2002815115 @default.
- W4211134288 cites W2003586250 @default.
- W4211134288 cites W2004001921 @default.