80
5 Rotation of a Dipole
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acceptor substituted molecular motor: unidirectional rotation driven by visible light. Org.
Biomol. Chem. 1, 33 (2003)
9. Galajda, P., Ormos, P.: Complex micromachines produced and driven by light. Appl. Phys.
Lett. 78, 249 (2001)
10. Galajda, P., Ormos, P.: Rotors produced and driven in laser tweezers with reversed direction of
rotation. Appl. Phys. Lett. 80, 4653 (2002)
11. Sestelo, J.P., Kelly, T.R.: A prototype of a rationally designed chemically powered Brownian
motor. Appl. Phys. A 75, 337 (2002)
12. Vacek, J., Michl, J.: Molecular dynamics of a grid-mounted molecular dipolar rotor in a rotating
electric field. Proc. Natl. Acad. Sci. U. S. A. 98, 5481 (2001)
13. Horinek, D., Michl, J.: Molecular dynamics simulation of an electric field driven dipolar
molecular rotor attached to a quartz glass surface. J. Am. Chem. Soc. 125, 11900 (2003)
14. Leigh, D.A., Wong, J.K.Y., Dehez, F., Zerbetto, F.: Miniaturized gas ionization sensors using
carbon nanotubes. Nature 424, 174 (2003)
15. Zolotaryuk, A.V., Christiansen, P.L., Nordén, B., Savin, A.V., Zolotaryuk, Y.: Pendulum as
a model system for driven rotation in molecular nanoscale machines. Phys. Rev. E 61, 3256
(2000)
16. Porto, M.: Molecular motor based entirely on the Coulomb interaction. Phys. Rev. E 63,
030102(R) (2001)
17. Engel, A., Müller, H.W., Reimann, P., Jung, A.: Ferrofluids as thermal ratchets. Phys. Rev. Lett.
91, 060602 (2003)
18. Kleutsch, B., Läuger, P.: Coupling of proton flow and rotation in the bacterial flagellar motor:
stochastic simulation of a microscopic model. Eur. Biophys. J. 18, 175, 191 (1990)
19. Elston, T., Wang, H., Oster, G.: Energy transduction in ATP synthase. Nature 391, 510 (1998)
20. Oster, G., Wang, H., Grabe, M.: How Fo–ATPase generates rotary torque. Phil. Trans. R. Soc.
Lond. B 355, 523 (2000)
21. Bustamante, C., Keller, D., Oster, G.: The Physics of Molecular Motors. Acc. Chem. Res. 34,
412 (2001)
22. Reimann, P.: Brownian motors: noisy transport far from equilibrium. Phys. Rep. 361, 57–265
(2002)
23. Gimzewski, J.K., Joachim, C.: Nanoscale science of single molecules using local probes.
Science 283, 1683 (1999)
24. Gardiner, C.W.: Handbook of Stochastic Methods for Physics, Chemistry and the Natural
Sciences. Springer, Berlin (1985)
25. Reimann, P., Hängii, P.: Introduction to the physics of Brownian motors. Appl. Phys. A 75,
169–178 (2002)
26. Metzler, R., Klafter, J.: The random walk’s guide to anomalous diffusion: a fractional dynamics
approach. Phys. Rep. 339, 1–77 (2000)
5 Rotation of a Dipole
8. Van Delden, R.A., Koumura, N.A., Schoevaars, A., Meetsma, A., Feringa, B.L.: A donor–
acceptor substituted molecular motor: unidirectional rotation driven by visible light. Org.
Biomol. Chem. 1, 33 (2003)
9. Galajda, P., Ormos, P.: Complex micromachines produced and driven by light. Appl. Phys.
Lett. 78, 249 (2001)
10. Galajda, P., Ormos, P.: Rotors produced and driven in laser tweezers with reversed direction of
rotation. Appl. Phys. Lett. 80, 4653 (2002)
11. Sestelo, J.P., Kelly, T.R.: A prototype of a rationally designed chemically powered Brownian
motor. Appl. Phys. A 75, 337 (2002)
12. Vacek, J., Michl, J.: Molecular dynamics of a grid-mounted molecular dipolar rotor in a rotating
electric field. Proc. Natl. Acad. Sci. U. S. A. 98, 5481 (2001)
13. Horinek, D., Michl, J.: Molecular dynamics simulation of an electric field driven dipolar
molecular rotor attached to a quartz glass surface. J. Am. Chem. Soc. 125, 11900 (2003)
14. Leigh, D.A., Wong, J.K.Y., Dehez, F., Zerbetto, F.: Miniaturized gas ionization sensors using
carbon nanotubes. Nature 424, 174 (2003)
15. Zolotaryuk, A.V., Christiansen, P.L., Nordén, B., Savin, A.V., Zolotaryuk, Y.: Pendulum as
a model system for driven rotation in molecular nanoscale machines. Phys. Rev. E 61, 3256
(2000)
16. Porto, M.: Molecular motor based entirely on the Coulomb interaction. Phys. Rev. E 63,
030102(R) (2001)
17. Engel, A., Müller, H.W., Reimann, P., Jung, A.: Ferrofluids as thermal ratchets. Phys. Rev. Lett.
91, 060602 (2003)
18. Kleutsch, B., Läuger, P.: Coupling of proton flow and rotation in the bacterial flagellar motor:
stochastic simulation of a microscopic model. Eur. Biophys. J. 18, 175, 191 (1990)
19. Elston, T., Wang, H., Oster, G.: Energy transduction in ATP synthase. Nature 391, 510 (1998)
20. Oster, G., Wang, H., Grabe, M.: How Fo–ATPase generates rotary torque. Phil. Trans. R. Soc.
Lond. B 355, 523 (2000)
21. Bustamante, C., Keller, D., Oster, G.: The Physics of Molecular Motors. Acc. Chem. Res. 34,
412 (2001)
22. Reimann, P.: Brownian motors: noisy transport far from equilibrium. Phys. Rep. 361, 57–265
(2002)
23. Gimzewski, J.K., Joachim, C.: Nanoscale science of single molecules using local probes.
Science 283, 1683 (1999)
24. Gardiner, C.W.: Handbook of Stochastic Methods for Physics, Chemistry and the Natural
Sciences. Springer, Berlin (1985)
25. Reimann, P., Hängii, P.: Introduction to the physics of Brownian motors. Appl. Phys. A 75,
169–178 (2002)
26. Metzler, R., Klafter, J.: The random walk’s guide to anomalous diffusion: a fractional dynamics
approach. Phys. Rep. 339, 1–77 (2000)
