Literature DB >> 22996555

Pulsed electron paramagnetic resonance spectroscopy powered by a free-electron laser.

S Takahashi1, L-C Brunel, D T Edwards, J van Tol, G Ramian, S Han, M S Sherwin.   

Abstract

Electron paramagnetic resonance (EPR) spectroscopy interrogates unpaired electron spins in solids and liquids to reveal local structure and dynamics; for example, EPR has elucidated parts of the structure of protein complexes that other techniques in structural biology have not been able to reveal. EPR can also probe the interplay of light and electricity in organic solar cells and light-emitting diodes, and the origin of decoherence in condensed matter, which is of fundamental importance to the development of quantum information processors. Like nuclear magnetic resonance, EPR spectroscopy becomes more powerful at high magnetic fields and frequencies, and with excitation by coherent pulses rather than continuous waves. However, the difficulty of generating sequences of powerful pulses at frequencies above 100 gigahertz has, until now, confined high-power pulsed EPR to magnetic fields of 3.5 teslas and below. Here we demonstrate that one-kilowatt pulses from a free-electron laser can power a pulsed EPR spectrometer at 240 gigahertz (8.5 teslas), providing transformative enhancements over the alternative, a state-of-the-art ∼30-milliwatt solid-state source. Our spectrometer can rotate spin-1/2 electrons through π/2 in only 6 nanoseconds (compared to 300 nanoseconds with the solid-state source). Fourier-transform EPR on nitrogen impurities in diamond demonstrates excitation and detection of EPR lines separated by about 200 megahertz. We measured decoherence times as short as 63 nanoseconds, in a frozen solution of nitroxide free-radicals at temperatures as high as 190 kelvin. Both free-electron lasers and the quasi-optical technology developed for the spectrometer are scalable to frequencies well in excess of one terahertz, opening the way to high-power pulsed EPR spectroscopy up to the highest static magnetic fields currently available.

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Year:  2012        PMID: 22996555     DOI: 10.1038/nature11437

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  10 in total

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Authors:  Keith A Earle; Boris Dzikovski; Wulf Hofbauer; Jozef K Moscicki; Jack H Freed
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5.  Quenching spin decoherence in diamond through spin bath polarization.

Authors:  Susumu Takahashi; Ronald Hanson; Johan van Tol; Mark S Sherwin; David D Awschalom
Journal:  Phys Rev Lett       Date:  2008-07-23       Impact factor: 9.161

6.  A kilowatt pulsed 94 GHz electron paramagnetic resonance spectrometer with high concentration sensitivity, high instantaneous bandwidth, and low dead time.

Authors:  Paul A S Cruickshank; David R Bolton; Duncan A Robertson; Robert I Hunter; Richard J Wylde; Graham M Smith
Journal:  Rev Sci Instrum       Date:  2009-10       Impact factor: 1.523

7.  Decoherence in crystals of quantum molecular magnets.

Authors:  S Takahashi; I S Tupitsyn; J van Tol; C C Beedle; D N Hendrickson; P C E Stamp
Journal:  Nature       Date:  2011-07-20       Impact factor: 49.962

8.  Watching proteins move using site-directed spin labeling.

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Journal:  Structure       Date:  1996-07-15       Impact factor: 5.006

9.  High-Field Phenomena of Qubits.

Authors:  Johan van Tol; G W Morley; S Takahashi; D R McCamey; C Boehme; M E Zvanut
Journal:  Appl Magn Reson       Date:  2009-10-29       Impact factor: 0.831

10.  Spin Rabi flopping in the photocurrent of a polymer light-emitting diode.

Authors:  D R McCamey; H A Seipel; S-Y Paik; M J Walter; N J Borys; J M Lupton; C Boehme
Journal:  Nat Mater       Date:  2008-09       Impact factor: 43.841

  10 in total
  6 in total

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Review 2.  High-frequency and high-field electron paramagnetic resonance (HFEPR): a new spectroscopic tool for bioinorganic chemistry.

Authors:  Joshua Telser; J Krzystek; Andrew Ozarowski
Journal:  J Biol Inorg Chem       Date:  2014-01-30       Impact factor: 3.358

3.  Gd3+-Gd3+ distances exceeding 3 nm determined by very high frequency continuous wave electron paramagnetic resonance.

Authors:  Jessica A Clayton; Mian Qi; Adelheid Godt; Daniella Goldfarb; Songi Han; Mark S Sherwin
Journal:  Phys Chem Chem Phys       Date:  2017-02-15       Impact factor: 3.676

4.  Laser-driven semiconductor switch for generating nanosecond pulses from a megawatt gyrotron.

Authors:  Julian F Picard; Samuel C Schaub; Guy Rosenzweig; Jacob C Stephens; Michael A Shapiro; Richard J Temkin
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5.  Extending the distance range accessed with continuous wave EPR with Gd3+ spin probes at high magnetic fields.

Authors:  Devin T Edwards; Zhidong Ma; Thomas J Meade; Daniella Goldfarb; Songi Han; Mark S Sherwin
Journal:  Phys Chem Chem Phys       Date:  2013-06-04       Impact factor: 3.676

6.  Quantitative analysis of zero-field splitting parameter distributions in Gd(iii) complexes.

Authors:  Jessica A Clayton; Katharina Keller; Mian Qi; Julia Wegner; Vanessa Koch; Henrik Hintz; Adelheid Godt; Songi Han; Gunnar Jeschke; Mark S Sherwin; Maxim Yulikov
Journal:  Phys Chem Chem Phys       Date:  2018-04-18       Impact factor: 3.676

  6 in total

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