Muon Spectroscopy Koji Yokoyama School of Physics and Astronomy, QMUL (on behalf of Dr. Alan Drew) MRI Spectroscopy Workshop 29 th May, 2014.

Slides:



Advertisements
Similar presentations
The analytical measurement principle
Advertisements

PHYSICS OF MAGNETIC RESONANCE
Ion Beam Analysis techniques:
Muon Spin Relaxation A PROBE TO ATOMIC MAGNETIC STRUCTURE.
Advanced Higher Unit 3 Nuclear Magnetic Resonance Spectroscopy.
Lecture 2 1 H Nuclear Magnetic Resonance. Gas Chromatograph of Molecular Hydrogen at –100 °C Thermoconductivity Detector 12.
NMR Spectroscopy.
NMR Nuclear Magnetic Resonance Spectroscopy. Over the past fifty years nuclear magnetic resonance spectroscopy, commonly referred to as nmr, has become.
The most important instrumental technique used by organic chemists to determine the structure of organic compounds. NMR spectroscopy helps to identify.
Psy 8960, Fall ‘06 Introduction to MRI1 Introduction to MRI: NMR MRI - big picture –Neuroimaging alternatives –Goal: understanding neurall coding Electromagnetic.
Structure Determination by NMR CHY 431 Biological Chemistry Karl D. Bishop, Ph.D. Lecture 1 - Introduction to NMR Lecture 2 - 2D NMR, resonance assignments.
FMRI: Biological Basis and Experiment Design Lecture 5: non-BOLD MRI Equilibrium and excitation Relaxation rates Image contrast –TE –TR.
Neutral Particles. Neutrons Neutrons are like neutral protons. –Mass is 1% larger –Interacts strongly Neutral charge complicates detection Neutron lifetime.
Basic Measurements: What do we want to measure? Prof. Robin D. Erbacher University of California, Davis References: R. Fernow, Introduction to Experimental.
UCLA The X-ray Free-electron Laser: Exploring Matter at the angstrom- femtosecond Space and Time Scales C. Pellegrini UCLA/SLAC 2C. Pellegrini, August.
Psy 8960, Spring ’07 Introduction to MRI1 Introduction to MRI: NMR Physics reminders –Nuclei and atoms –Electromagnetic spectrum and Radio Frequency –Magnets.
Electron Paramagnetic Resonance at Hunter College
Lecture 8a EPR Spectroscopy.
Electron Spin Resonance Spectroscopy
What Are Some Types of Spectroscopy ?
Medical Physics Physics 421 Course Description: Medical Physics is a course with two main parts:  Physics of the body  Physics of Diagnostic and Therapeutic.
Principles of Magnetic Resonance
Physical Chemistry 2 nd Edition Thomas Engel, Philip Reid Chapter 28 Nuclear Magnetic Resonance Spectroscopy.
Frequency dependence of the anomalous Hall effect: possible transition from extrinsic to intrinsic behavior John Cerne, University at Buffalo, SUNY, DMR.
Chapter 4 Mark D. Herbst, M.D., Ph.D.. Magnetization MRI depends on magnetization of tissues Temporary magnetization occurs when the hydrogen nuclei are.
57 Mn Mössbauer collaboration at ISOLDE/CERN Emission Mössbauer spectroscopy of advanced materials for opto- and nano- electronics Spokepersons: Haraldur.
4. The Nuclear Magnetic Resonance Interactions 4a. The Chemical Shift interaction The most important interaction for the utilization of NMR in chemistry.
Week 11 © Pearson Education Ltd 2009 This document may have been altered from the original State that NMR spectroscopy involves interaction of materials.
Dynamics Neutron Scattering and Dan Neumann
NMR spectroscopy in solids: A comparison to NMR spectroscopy in liquids Mojca Rangus Mentor: Prof. Dr. Janez Seliger Comentor: Dr. Gregor Mali.
WG4 Summary -Intense Muon Physics- Conveners Y. Semertzdis (BNL), M. Grassi (Pisa), K. Ishida (RIKEN) summary-1 for muon applications by K. Ishida.
September, 2003BME 1450 Introduction to NMR 1 Nuclear Magnetic Resonance (NMR) is a phenomenon discovered about 60 years ago.
Muon Beam Research in Condensed Matter Science: achievements and prospects Vice President of the International Society for Muon Spectroscopy (ISMS) President.
C M olecular & M aterials S cience TRIUMF Centre for M olecular & M aterials S cience 8 Year Plan Jess H. Brewer - 6 Dec Proposal: Design.
Photo-induced ferromagnetism in bulk-Cd 0.95 Mn 0.05 Te via exciton Y. Hashimoto, H. Mino, T. Yamamuro, D. Kanbara, A T. Matsusue, B S. Takeyama Graduate.
W HAT IS NUCLEAR MAGNETIC RESONANCE ? State that NMR spectroscopy involves interaction of materials with low-energy radio frequency radiation. Describe.
Nuclear Magnetic Resonance I Magnetization properties Generation and detection of signals.
On the way to neutron scattering at 40 T Report from this workshop Discussions with NSF/DOE/SNS Letter of Intent to SNS Conceptual design project proposal.
Introduction to Helicity Particle Physics of μSR The World's μSR Facilities Basic Techniques of μSR Applications of μSR Jess H. Brewer 15 May 2004 Jess.
Intro to Spectroscopy Ch 12: Spectral Unknown HDI (Hydrogen Deficiency Index) Lecture Problem 1 Due This week in lab: Ch 4: Recrystallization & Melting.
Towards a Next Generation  SR Facility Bob Cywinski School of Applied Sciences FFAG’08, Manchester, September 2008.
1 Nuclear Magnetic Resonance Nuclear Magnetic Resonance (NMR) Applying Atomic Structure Knowledge to Chemical Analysis.
MRI Physics Dr Mohamed El Safwany, MD.. MRI Magnetic Resonance Imaging Magnetic Resonance Imaging.
Evidence of Energy Levels. e-e- e-e- Ground state Excited state Electrons can only be at specific energy levels, NOT between levels.
Introduction to Helicity Particle Physics of μSR The World's μSR Facilities Basic Techniques of μSR Applications of μSR Jess H. Brewer 15 May 2004 Jess.
A. Bondarevskaya Highly charged ion beam polarization and its application to the search for the parity nonconservation effects in ions
M. Ueda, T. Yamasaki, and S. Maegawa Kyoto University Magnetic resonance of Fe8 at low temperatures in the transverse field.
RT 4912 Review (C) Rex T. Christensen MHA RT (R) (MR) (CT) (ARRT) CIIP.
Magnetic Resonance Imaging Glenn Pierce, King’s College London, Department of Physics Introduction Edward Purcell and Felix Bloch were both awarded the.
First Principle Calculation of Nuclear Magnetic Resonance (NMR) chemical shift Kanchan Sonkar Center of Biomedical Magnetic Resonance SGPGIMS-Campus, Lucknow,
Nuclear and Radiation Physics, BAU, First Semester, (Saed Dababneh) Nuclear and Radiation Physics Before we start, let us tackle.
MOLECULAR STRUCTURE ANALYSIS NMR Spectroscopy VCE Chemistry Unit 3: Chemical Pathways Area of Study 2 – Organic Chemistry.
Introduction to Infrared Spectroscopy
All in a spin – An introduction to muon science
Muons in condensed matter research Tom Lancaster Durham University, UK.
Introduction to The World's μSR Facilities Basic Techniques of μSR μSR “Toolbox” for QM Examples of μSR in HT c SC Jess H. Brewer CIAR QM Summer School.
AFTERWORD Town Meeting 2002
Nuclear Magnetic Resonance Spectroscopy
(Instrument part) Thanundon Kongnok M
Characterizing thin films by RF and DC methods
Lecture 7b EPR spectroscopy.
PHL424: γ-decay γ-decay is an electromagnetic process where the nucleus decreases in excitation energy, but does not change proton or neutron numbers This.
LI: To understand the purposes of spectroscopy.
Medical Physics Physics 421 Course Description:
Nuclear Magnetic Resonance (NMR)
Interaction of Radiation with Matter
CHY 431 Biological Chemistry
Advanced Pharmaceutical Analysis
Advanced Pharmaceutical Analysis
HiFi The high-field muon instrument at ISIS
Presentation transcript:

Muon Spectroscopy Koji Yokoyama School of Physics and Astronomy, QMUL (on behalf of Dr. Alan Drew) MRI Spectroscopy Workshop 29 th May, 2014

What is muon? ~1 muon every second on the size of a palm Charge ±e 200 times heavier than e - 1/9 of proton mass 2.2 μs lifetime μ + for muon spectroscopy

Producing muons

Muon beam 100% spin polarized Opposite to propagation Monochromatic, kinetic energy of 4 MeV Pulsed or continuous beam source ISIS: 2,500 μ + /pulse “Surface” muon beam

Implanted muons in sample Stopping range: 100 mg/cm 2 Thin sample, but probe of bulk material (Thermalisation)

Final form of muons In insulator, often Mu In metal, usually bare muon μ +

Muon decays Preferentially emits positron in the direction of its spin Positron penetrates through e.g. sample holders

Muon spectroscopy Muon time spectrum: F B spin μ If no relaxation, A(t) is just flat:

μSR Muon Spin Relaxation Rotation Resonance

An example of detecotor: CHRONUS Three Helmholtz coils for Longitudinal Transverse Zero Field Changing Ts, Bs Sometimes with excitations: RF, Light

μSR Muons at ISIS Chronus

Example 1: Ion diffusion Lithium ion battery: cathode material is a crucial part for battery performance Li x CoO 2 Layered structure: TMO || Li || TMO || … Self-diffusion coefficient D of Li ions J. Sugiyama et al. PRL 103, (2009)

Example 1: Ion diffusion Implanted muons bind to oxygen atoms Muons are sensitive probes of local internal fields Muons feel random nuclear magnetic fields of Li

Example 1: Ion diffusion Spin relaxation in isotropic internal field with Gaussian distribution (no external field) Kubo-Toyabe function describes its behavior First proposed as a “Toy” problem Turned out to be quite useful in μSR Dynamic KT function to include fluctuation in field Time

Example 1: Ion diffusion Ion hopping ν: dynamic contribution From T-dependence ν(T) the ion diffusion coeff D is determined

Example 2: Level Crossing Resonance Low field relaxation rates are a superposition of several different relaxation rates from different Mu states Difficult to interpret low field relaxation rates ALC resonances, on the other hand, are on individual Mu state

Example 2: Level Crossing Resonance Consider Mu in condensed matter B-field |+ +> |+ −> |− +> |− −> |e - μ + > Polarization The magnitude of the hfcc is characteristic of the binding site

Example 2: Level Crossing Resonance Muonium substituted free radicals Addition of Mu to unsaturated hydrocarbons Unpaired electron distributed over the molecule Hyperfine interactions with the muon and nuclear spins

Example 2: Level Crossing Resonance What if the molecule is in the excited state? Can we see any change in the ALC signal? How about its dynamics? … Project MuSES may discover the answer !

More applications Inorganic magnetism Superconductors Organic magnetism Hydrogen studies of semiconductors Charge transport and diffusion Chemistry and molecular studies

2 calls per year (deadlines 16 April and 16 October) All submissions via ISIS website ~50 proposals submitted per round Oversubscription ~1.8 6 weeks after the deadline, the selection panel meets Results a few weeks after that (with comments) Instrument scientist will then ask for preferred dates Schedule produced, local contacts assigned Run experiments! The Proposal Process 2 pages proposal

Other types of Proposals Rapid Access For rapidly-moving science areas, new sample discoveries, other urgent studies Proposals can be submitted any time Rapidly reviewed by FAP Chair and one other FAP member If awarded time, scheduled as soon as possible Must be a clear case as to why the measurement is urgent Xpress Access For initial characterisation of samples or feasibility checks on samples for future beamtime Proposals are short, and can be submitted any time Reviewed internally Awarded up to 5 hours of beamtime on either MuSR or EMU. Users need not come for the measurement – can send the sample in Further details on website

Many thanks to: Prof. Roberto De Renzi Dr. Adrian Hillier Dr. Jamie Peck Dr. Martin Mansson