Richard R. Freeman is an American physicist, academic and researcher. He is an affiliated professor of physics at the University of Washington,[1] a distinguished emeritus professor of mathematical and physical science at Ohio State University, and an emeritus Edward Teller Professor of Applied Science at University of California, Davis.[2]

Richard R. Freeman
NationalityAmerican
Occupation(s)Physicist, academic and researcher
TitleEmeritus Edward Teller Professor of Applied Science
AwardsFellow, Optical Society of America
Fellow, American Physical Society
Academic background
EducationB.S., physics
A.M., physics
Ph.D., physics
Alma materUniversity of Washington
Harvard University
Doctoral advisorNorman Ramsey
Academic work
InstitutionsUniversity of Washington
Ohio State University
University of California, Davis

Freeman’s research specializes in high energy density physics. He has authored over 350 peer-reviewed research papers and holds 6 patents in the fields of lithography and laser processing. His graduate textbook, Electromagnetic Radiation, was published in 2019.[3]

Freeman is a fellow of American Physical Society (APS)[4] and Optical Society of America.

Education edit

Freeman completed his B.S. degree in physics from University of Washington in 1967. He then studied at Harvard University and earned his A.M. and Ph.D. degrees in physics in 1968 and 1973, respectively. He then completed his postdoctoral studies Massachusetts Institute of Technology in 1976.[2]

Career edit

Along with his post-doctoral studies, Freeman taught at MIT as a lecturer in physics from 1973 to 1976. From 1976 till 1996, he was then associated with AT&T Bell Laboratories where he served as a member of technical staff, and variously as departmental head of electromagnetic phenomena research, silicon electronics research, advanced lithography research, and strategic planning and business departments.[5]

In 1996, he was appointed by Lawrence Livermore National Laboratory as a deputy associate director of laser programs. In 1998, Freeman left Lawrence Livermore National Laboratory and joined University of California, Davis, where he held positions of chair and Edward Teller Professor at Department of Engineering Applied Science till 2003. He was then recruited by Ohio State University as a distinguished professor of mathematical and physical sciences. During his term at Ohio State University, he served as dean of College of Math and Physical Sciences from 2003 through 2007,[6] as head of the high energy density research group and as the first director of the SCARLET laser facility.[7]

In 2015, Freeman was appointed as an affiliated professor of physics at University of Washington, and as an emeritus professor at Ohio State University and University of California in Davis.[5]

Research edit

Freeman has conducted research focused on various fields, including atomic physics, high energy density physics, lithography, laser processing, electromagnetics, semiconductors and laser physics.

Atomic physics edit

Freeman focused on the energy level systematics of high-angular-momentum Rydberg states of alkali-metal atoms and described them through a quantum-defect model. His research indicated polarization of core electrons to be the major contribution to the quantum defect.[8]

High energy density physics edit

He studied light absorption in ultra-short scale length plasmas and calculated the absorption of S and P polarized light at a glossy interface. He explained different methods to model the absorption of a short laser pulse as a function of intensity.[9]

Freeman conducted numerical simulations of the energy spectrum of electrons escaping in a cell code large-scale plasma and found a significant difference in the simulated energy spectrum recorded by electron spectrometer and the computations made within the target. He then presented the mechanisms responsible for the resulting difference and also discussed the applications of constraints regarding obtaining electron energy distributions from experimental data.[10]

Lithography edit

Freeman worked extensively on lithography during 1990s. He presented Schwarzschild imaging optics for improving alignment stability and demonstrated soft-x-ray projection imaging using radiation from plasma source and ellipsoidal condenser.[11] Using the Schwarzschild camera, magnetically levitated wafer stage and a plasma source, he presented EUV lithography tool and incorporated camera aberrations into physical-optic simulations. Freeman’s research resulted in successful matching of five multilayer reflecting surfaces.[12]

Freeman used the scattering with angular limitation projection electron-beam lithography (SCALPEL) principle to help design the proof-of-concept projection electron-beam lithography system and highlighted the application of the designed technology for the production of sub-0.18 micrometer features.[13]

Laser physics edit

Freeman extensively studied the changes in atomic structure when an atom is subjected to extremely intense laser light, and published numerous papers explaining the highly modified phoionization yields of atoms irradiated by extremely high intensity laser light compared to that obtained at low intensities.[14]

Freeman developed a method involving detection of ionization products, for measuring peak intensity at the focus of high energy short pulse lasers operating in single shot mode.[15] He conducted a combined study of particle-in-cell and Monte Carlo modeling and investigated the production of Bremsstrahlung radiation during the interaction of ultra-intense laser with a tower-structured target. Freeman found that the targets narrowed the electron angular distribution and generated higher energies.[16]

He published a paper regarding backward-propagating MeV electrons from 1018 W/cm2 laser interactions with water. Freeman’s research indicated that the backward-going, high-energy electrons interacting with the focusing optic resulted in the generation of energetic x-rays in the experiment. He also demonstrated the suppression of high energy radiation by reducing nanosecond-scale pre-pulse.[17] Freeman further presented a diagnostic tool for the alignment of targets in laser-matter interactions in a precise manner.[18]

Awards and honors edit

  • 1981 - Fellow, Optical Society of America
  • 1982 - Fellow, American Physical Society[4]
  • 2002 - Appointed Edward Teller Professor of Applied Science

Bibliography edit

Books edit

  • with James A. King and Gregory P. Lafyatis: Electromagnetic Radiation (2019) ISBN 978-0198726500

Selected articles edit

  • Ducas, T.W., Littman, M.G., Freeman, R.R. and Kleppner, D., 1975. Stark ionization of high-lying states of sodium. Physical Review Letters, 35(6), p. 366.
  • Littman, M.G., Zimmerman, M.L., Ducas, T.W., Freeman, R.R. and Kleppner, D., 1976. Structure of sodium Rydberg states in weak to strong electric fields. Physical Review Letters, 36(14), p. 788.
  • Freeman, R.R. and Kleppner, D., 1976. Core polarization and quantum defects in high-angular-momentum states of alkali atoms. Physical Review A, 14(5), p. 1614.
  • Freeman, R.R., Bucksbaum, P.H., Milchberg, H., Darack, S., Guesic, M., 1987. Above-threshold Ionization with subpicosecond laser pulses”, Physical Review Letters, 59 (10) Sept. 1987, p. 1092
  • Bucksbaum, P.H., Freeman, R.R., Bashkansky, M. and McIlrath, T.J., 1987. Role of the ponderomotive potential in above-threshold ionization. JOSA B, 4(5), pp. 760–764.
  • Bloomfield, L.A., Freeman, R.R., Brown, W.L., “Photofragmentation of Mass-Resolved Si-2-12(+) Clusters” Physical Review Letters 54(20), p2246
  • Milchberg, H.M., Freeman, R.R., Davey, Sc., More, R.M., ”Resistivity of a Simple Metal from Room Temperature to 106K” Physical Review Letters 61(20), p 2364

References edit

  1. ^ "Richard Freeman".
  2. ^ a b "Richard R. Freeman".
  3. ^ "Electromagnetic Radiation".
  4. ^ a b "APS Fellow Archive".
  5. ^ a b "Richard R. Freeman" (PDF).
  6. ^ "OSU Nabs New Dean for Math and Sciences".
  7. ^ "Professor Richard R. Freeman Takes One Year Sabbatical".
  8. ^ Freeman, Richard R.; Kleppner, Daniel (1976). "Core polarization and quantum defects in high-angular-momentum states of alkali atoms". Physical Review A. 14 (5): 1614–1619. Bibcode:1976PhRvA..14.1614F. doi:10.1103/PhysRevA.14.1614.
  9. ^ "Light absorption in ultrashort scale length plasmas".
  10. ^ Link, A.; Freeman, R. R.; Schumacher, D. W.; Van Woerkom, L. D. (2011). "Effects of target charging and ion emission on the energy spectrum of emitted electrons". Physics of Plasmas. 18 (5): 053107. Bibcode:2011PhPl...18e3107L. doi:10.1063/1.3587123.
  11. ^ "Soft-x-ray projection lithography experiments using Schwarzschild imaging optics".
  12. ^ Tichenor, Daniel A.; Kubiak, Glenn D.; Malinowski, Michael E.; Stulen, Richard H.; Haney, Steven J.; Berger, Kurt W.; Nissen, Rodney P.; Wilkerson, G. A.; Paul, Phillip H.; Birtola, S. R.; Jin, P. S.; Arling, Richard W.; Ray-Chaudhuri, Avijit K.; Sweatt, William C.; Chow, Weng W.; Bjorkholm, John E.; Freeman, Richard R.; Himel, Marc D.; MacDowell, Alastair A.; Tennant, Donald M.; Fetter, Linus A.; Wood Ii, Obert R.; Waskiewicz, Warren K.; White, Donald L.; Windt, David L.; Jewell, Tanya E. (1994). "Development of a laboratory extreme-ultraviolet lithography tool". In Patterson, David O (ed.). Electron-Beam, X-Ray, and Ion-Beam Submicrometer Lithographies for Manufacturing IV. Vol. 2194. p. 95. doi:10.1117/12.175834. S2CID 135772193.
  13. ^ Waskiewicz, Warren K.; Biddick, Christopher J.; Blakey, Myrtle I.; Brady, Kevin J.; Camarda, Ron M.; Connelly, Wayne F.; Crorken, A. H.; Custy, J. P.; Demarco, R.; Farrow, Reginald C.; Felker, Joseph A.; Fetter, Linus A.; Freeman, Richard R.; Harriott, Lloyd R.; Hopkins, Leslie C.; Huggins, Harold A.; Kasica, Richard J.; Knurek, Chester S.; Kraus, Joseph S.; Liddle, James A.; Mkrtchyan, Masis M.; Novembre, Anthony E.; Peabody, Jr, Milton L.; Rutberg, Len; Wade, Harry H.; Watson, Pat G.; Werder, Kurt S.; Windt, David L.; Tarascon-Auriol, Regine G.; et al. (1997). "SCALPEL proof-of-concept system: preliminary lithography results". In Seeger, David E (ed.). Emerging Lithographic Technologies. Vol. 3048. p. 255. doi:10.1117/12.275786. S2CID 137021646.
  14. ^ "Above-Threshold Ionization with subpicosecond laser pulses".
  15. ^ Link, Anthony; Chowdhury, Enam A.; Morrison, John T.; Ovchinnikov, Vladimir M.; Offermann, Dustin; Van Woerkom, Linn; Freeman, Richard R.; Pasley, John; Shipton, Erik; Beg, Farhat; Rambo, Patrick; Schwarz, Jens; Geissel, Matthias; Edens, Aaron; Porter, John L. (2006). "Development of an in situ peak intensity measurement method for ultraintense single shot laser-plasma experiments at the Sandia Z petawatt facility". Review of Scientific Instruments. 77 (10): 10E723. Bibcode:2006RScI...77jE723L. doi:10.1063/1.2336469.
  16. ^ Jiang, Sheng; Krygier, Andrew G.; Schumacher, Douglass W.; Akli, Kramer U.; Freeman, Richard R. (2014). "Enhancing Bremsstrahlung production from ultraintense laser-solid interactions with front surface structures". The European Physical Journal D. 68 (10): 283. arXiv:1405.0958. Bibcode:2014EPJD...68..283J. doi:10.1140/epjd/e2014-50339-4. S2CID 119194795.
  17. ^ Morrison, J. T.; Chowdhury, E. A.; Frische, K. D.; Feister, S.; Ovchinnikov, V. M.; Nees, J. A.; Orban, C.; Freeman, R. R.; Roquemore, W. M. (2015). "Backward-propagating MeV electrons from 1018 W/cm2 laser interactions with water". Physics of Plasmas. 22 (4): 043101. arXiv:1501.02261. Bibcode:2015PhPl...22d3101M. doi:10.1063/1.4916493. S2CID 119262288.
  18. ^ Willis, Christopher; Poole, Patrick L.; Akli, Kramer U.; Schumacher, Douglass W.; Freeman, Richard R. (2015). "A confocal microscope position sensor for micron-scale target alignment in ultra-intense laser-matter experiments". Review of Scientific Instruments. 86 (5): 053303. Bibcode:2015RScI...86e3303W. doi:10.1063/1.4921554. PMID 26026518.