Special Topics in Electrodynamics:

Slides:



Advertisements
Similar presentations
Superconductivity Michael Spreitzer. Overview „Superconductivity“ ? Who discovered it ? Meissner & Ochsenknecht effect? BCS – Theory Different types of.
Advertisements

1 lectures accompanying the book: Solid State Physics: An Introduction,by Philip Hofmann (1st edition, October 2008, ISBN-10: , ISBN-13: ,
The Three Hallmarks of Superconductivity
26-29 Nov Superconducting magnetic levitated bearings for rotary machines Superconducting magnetic levitated bearings for rotary machines 5 th.
1/12/2015PHY 752 Spring Lecture 11 PHY 752 Electrodynamics 11-11:50 AM MWF Olin 107 Plan for Lecture 1: Reading: Chapters 1-2 in Marder’s text.
Vortex Dynamics in Type II Superconductors Yuri V. Artemov Yuri V. Artemov Ph.D. Student in Physics Brian B. Schwartz Mentor: Brian B. Schwartz Professor.
02/03/2014PHY 712 Spring Lecture 81 PHY 712 Electrodynamics 10-10:50 AM MWF Olin 107 Plan for Lecture 8: Start reading Chapter 4 Multipole moment.
02/19/2014PHY 712 Spring Lecture 151 PHY 712 Electrodynamics 10-10:50 AM MWF Olin 107 Plan for Lecture 15: Finish reading Chapter 6 1.Some details.
02/18/2015PHY 712 Spring Lecture 151 PHY 712 Electrodynamics 9-9:50 AM MWF Olin 103 Plan for Lecture 15: Finish reading Chapter 6 1.Some details.
By: Shruti Sheladia, Garrett M Leavitt, Stephanie Schroeder, Christopher Dunn, Kathleen Brackney Levitation of a magnet above a high temperature superconductor.
Superconductivity III: Theoretical Understanding Physics 355.
1 PHY 712 Electrodynamics 9-9:50 AM MWF Olin 103 Plan for Lecture 34: Special Topics in Electrodynamics: Electromagnetic aspects of superconductivity 
1 Superconductivity  pure metal metal with impurities 0.1 K Electrical resistance  is a material constant (isotopic shift of the critical temperature)
Who was the first person to observe superconductivity? 1.Leon Cooper 2.Walther Meissner 3.Sir James Dewar 4.Heike Kamerlingh- Onnes.
03/28/2014PHY 712 Spring Lecture 241 PHY 712 Electrodynamics 10-10:50 AM MWF Olin 107 Plan for Lecture 24: Continue reading Chap. 11 – Theory of.
Michael Browne 11/26/2007.
Studies of the Cryogenic Part with Load Lock System T. Eisel, F. Haug CERN TE-CRG-CI October 19 th, 2011, Page 1 Superconductivity years Heike Kamerlingh.
SUPERCONDUCTORS mobile electrons in conducting material move through lattice of atoms or ions that vibrate (thermal motion) when conductor is cooled down.
4/6/2015PHY 752 Spring Lecture 281 PHY 752 Solid State Physics 11-11:50 AM MWF Olin 107 Plan for Lecture 28:  Chap. 21 in Marder & pdf file from.
1 PHY 712 Electrodynamics 10-10:50 AM MWF Olin 107 Plan for Lecture 33: Special Topics in Electrodynamics: 1.Electromagnetic aspects of superconductivity.
Why Make Holes in Superconductors? Saturday Morning Physics December 6, 2003 Dr. Sa-Lin Cheng Bernstein.
Superconductivity Eton College Physics WJEC AS Level.
WHAT IS SUPERCONDUCTIVITY?? For some materials, the resistivity vanishes at some low temperature: they become superconducting. Superconductivity is the.
02/13/2015PHY 712 Spring Lecture 131 PHY 712 Electrodynamics 9-9:50 AM MWF Olin 103 Plan for Lecture 13: Continue reading Chapter 5 1.Hyperfine.
Group properties of atomic orbitals and crystals
COCKCROFT INSTITUTE, DARESBURY
Electrical resistance
Nathan Finney Michael Gammon Newell Jensen
Special Topics in Electrodynamics:
PHY 752 Solid State Physics
Graduate Lecture Series
Shanghai Jiao Tong University
PHY 712 Electrodynamics 11-11:50 AM MWF Olin 107 Plan for Lecture 14:
Time reversal symmetry and
PHY 752 Solid State Physics Superconductivity (Chap. 18 in GGGPP)
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 25:
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 1:
Special Topics in Electrodynamics:
PHY 752 Solid State Physics Superconductivity (Chap. 18 in GGGPP)
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 12:
Magnetic Properties and Superconductivity
Complete reading of Chapter 7
High Temperature Superconductivity
PHY 752 Solid State Physics Electron Gas in Magnetic Fields
Special Topics in Electrodynamics:
Special Topics in Electrodynamics:
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 14:
Finish reading Chapter 6
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 103 Plan for Lecture 11:
Special Topics in Electrodynamics:
Electromagnetic waves due to specific sources
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 103 Plan for Lecture 26:
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 8:
PHY 752 Solid State Physics
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 1:
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 7:
PHY 712 Electrodynamics 10-10:50 AM MWF Olin 107 Plan for Lecture 22:
PHY 752 Solid State Physics 11-11:50 AM MWF Olin 103
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 11:
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 13:
Finish Chap. 11 and begin Chap. 14
Finish Chap. 11 and begin Chap. 14
PHY 752 Solid State Physics 11-11:50 AM MWF Olin 103
PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 2:
PHY 752 Solid State Physics
Special Topics in Electrodynamics:
Review of electrodynamics
Finish reading Chapter 6
Ginzburg-Landau theory
Presentation transcript:

Special Topics in Electrodynamics: PHY 712 Electrodynamics 9-9:50 AM MWF Olin 105 Plan for Lecture 35: Special Topics in Electrodynamics: Electromagnetic aspects of superconductivity 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

04/16/2018 PHY 712 Spring 2018 -- Lecture 35

04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Special topic: Electromagnetic properties of superconductors Ref:D. Teplitz, editor, Electromagnetism – paths to research, Plenum Press (1982); Chapter 1 written by Brian Schwartz and Sonia Frota-Pessoa History: 1908 H. Kamerlingh Onnes successfully liquified He 1911 H. Kamerlingh Onnes discovered that Hg at 4.2 K has vanishing resistance 1957 Theory of superconductivity by Bardeen, Cooper, and Schrieffer 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Some phenomenological theories < 1957 Note: Equations are in cgs Gaussian units. 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Some phenomenological theories < 1957 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

London model – continued 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

London model – continued lL x 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Behavior of superconducting material – exclusion of magnetic field according to the London model lL x 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Behavior of magnetic field lines near superconductor normal state: superconducting state: 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Need to consider phase equilibria between “normal” and superconducting state as a function of temperature and applied magnetic fields. 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Magnetization field At T=0K 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Magnetization field (for “type I” superconductor) B H HC -4pM H HC GS-GN HC H 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

characteristic phonon energy density of electron states at EF attraction potential between electron pairs 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Temperature dependence of critical field From PR 108, 1175 (1957) Bardeen, Cooper, and Schrieffer, “Theory of Superconductivity” characteristic phonon energy density of electron states at EF attraction potential between electron pairs 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Type I elemental superconductors http://wuphys.wustl.edu/~jss/NewPeriodicTable.pdf 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Type I superconductors: 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Type II superconductors 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Quantization of current flux associated with the superconducting state (Ref: Ashcroft and Mermin, Solid State Physics) 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Such “vortex” fields can exist within type II superconductors. Quantization of current flux associated with the superconducting state -- continued Suppose a superconducting material has a cylindrical void. Evaluate the integral of the current in a closed path within the superconductor containing the void. dl Such “vortex” fields can exist within type II superconductors. 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Crystal structure of one of the high temperature superconductors 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Some details of single vortex in type II superconductor 04/16/2018 PHY 712 Spring 2018 -- Lecture 35

Scanning probe images of vortices in YBCO at 22 K 04/16/2018 PHY 712 Spring 2018 -- Lecture 35