Top Curr Chem (Z) (2018) 376:6
1 3
84. Möbius K, Savitsky A, Wegener C et al (2005) Combining high-field EPR with site-directed spin
labeling reveals unique information on proteins in action. Magn Reson Chem 43:S4–S19. http s://
doi.org/10.1002 /mrc.1690
85. Yamaguchi K, Nakajima M, Suemoto T (2010) Coherent control of spin precession motion with
impulsive magnetic fields of half-cycle terahertz radiation. Phys Rev Lett 105:237201. http s://doi.
org/10.1103 /Phys RevL ett.105.2372 01
86. Kozlov GV, Lebedev SP, Mukhin AA et al (1993) Submillimeter backward-wave oscillator spectroscopy of the rare-earth orthoferrites. IEEE Trans Magn 29:3443–3445. http s://doi.org/10.1109
/20.2811 90
87. Baierl S, Hohenleutner M, Kampfrath T et al (2016) Nonlinear spin control by terahertz-driven
anisotropy fields. Nat Photonics 10:715–718. http s://doi.org/10.1038 /npho ton.2016 .181
88. Baierl S, Mentink JH, Hohenleutner M et al (2016) Terahertz-driven nonlinear spin response of
antiferromagnetic nickel oxide. Phys Rev Lett 117:197201. http s://doi.org/10.1103 /Phys RevL
ett.117.1972 01
89. Mukai Y, Hirori H, Yamamoto T et al (2016) Nonlinear magnetization dynamics of antiferromagnetic spin resonance induced by intense terahertz magnetic field. New J Phys 18:13045. http s://doi.
org/10.1088 /1367 -2630 /18/1/0130 45
90. Herrmann GF (1963) Resonance and high frequency susceptibility in canted antiferromagnetic
substances. J Phys Chem Solids 24:597–606. http s://doi.org/10.1016 /S002 2-3697 (63)8000 1-3
91. Herrmann GF (1964) Magnetic resonances and susceptibility in orthoferrites. Phys Rev
133:A1334–A1344. http s://doi.org/10.1103 /Phys Rev.133.A133 4
92. Morello A, Stamp PCE, Tupitsyn IS (2006) Pairwise decoherence in coupled spin qubit networks.
Phys Rev Lett 97:207206. http s://doi.org/10.1103 /Phys RevL ett.97.2072 06
93. Fleury PA, Loudon R (1968) Scattering of light by one- and two-magnon excitations. Phys Rev
166:514–530. http s://doi.org/10.1103 /Phys Rev.166.514
94. Kozuki K, Nagashima T, Hangyo M (2011) Measurement of electron paramagnetic resonance
using terahertz time-domain spectroscopy. Opt Express 19:24950. http s://doi.org/10.1364 /
OE.19.0249 50
95. Lu J, Li X, Skorupskii G et al (2017) Rapid and precise determination of zero-field splittings by
terahertz time-domain electron paramagnetic resonance spectroscopy. Chem Sci 8:7312–7323. http
s://doi.org/10.1039 /c7sc 0083 0a
96. Schnegg A, Behrends J, Lips K et al (2009) Frequency domain Fourier transform THz-EPR on
single molecule magnets using coherent synchrotron radiation. Phys Chem Chem Phys 11:6820–
6825. http s://doi.org/10.1039 /b905 709a
97. Champion PM, Sievers AJ (1977) Far infrared magnetic resonance in FeSiF 6 ·6H 2 O and Fe(SPh) 4
2− .
J Chem Phys 66:1819–1825. http s://doi.org/10.1063 /1.4342 00
98. Brackett GC (1971) Far-infrared magnetic resonance in Fe(III) and Mn(III) porphyrins, myoglobin, hemoglobin, ferrichrome A, and Fe(III) dithiocarbamates. J Chem Phys 54:4383. http s://doi.
org/10.1063 /1.1674 688
99. Nehrkorn J, Telser J, Holldack K et al (2015) Simulating frequency-domain electron paramagnetic
resonance: bridging the gap between experiment and magnetic parameters for high-spin transitionmetal ion complexes. J Phys Chem B 119:13816–13824. http s://doi.org/10.1021 /acs.jpcb .5b04 156
100. Kuehn W, Reimann K, Woerner M et al (2011) Two-dimensional terahertz correlation spectra of
electronic excitations in semiconductor quantum wells. J Phys Chem B 115:5448–5455. http s://doi.
org/10.1021 /jp10 9904 6
101. Lee S-H, Lu J, Lee S-J et al (2017) Benzothiazolium single crystals: a new class of nonlinear optical crystals with efficient THz wave generation. Adv Mater 29:1701748. http s://doi.org/10.1002 /
adma .2017 0174 8
102. Chen Z, Zhou X, Werley CA, Nelson KA (2011) Generation of high power tunable multicycle teraherz pulses. Appl Phys Lett 99:71102. http s://doi.org/10.1063 /1.3624 919
103. Lu J, Hwang HY, Li X et al (2015) Tunable multi-cycle THz generation in organic crystal HMQTMS. Opt Express 23:22723–22729. http s://doi.org/10.1364 /OE.23.0227 23
104. Liu B, Bromberger H, Cartella A et al (2017) Generation of narrowband, high-intensity, carrier-envelope phase-stable pulses tunable between 4 and 18 THz. Opt Lett 42:129. http s://doi.
org/10.1364 /OL.42.0001 29
320
Reprinted from the journal
1 3
84. Möbius K, Savitsky A, Wegener C et al (2005) Combining high-field EPR with site-directed spin
labeling reveals unique information on proteins in action. Magn Reson Chem 43:S4–S19. http s://
doi.org/10.1002 /mrc.1690
85. Yamaguchi K, Nakajima M, Suemoto T (2010) Coherent control of spin precession motion with
impulsive magnetic fields of half-cycle terahertz radiation. Phys Rev Lett 105:237201. http s://doi.
org/10.1103 /Phys RevL ett.105.2372 01
86. Kozlov GV, Lebedev SP, Mukhin AA et al (1993) Submillimeter backward-wave oscillator spectroscopy of the rare-earth orthoferrites. IEEE Trans Magn 29:3443–3445. http s://doi.org/10.1109
/20.2811 90
87. Baierl S, Hohenleutner M, Kampfrath T et al (2016) Nonlinear spin control by terahertz-driven
anisotropy fields. Nat Photonics 10:715–718. http s://doi.org/10.1038 /npho ton.2016 .181
88. Baierl S, Mentink JH, Hohenleutner M et al (2016) Terahertz-driven nonlinear spin response of
antiferromagnetic nickel oxide. Phys Rev Lett 117:197201. http s://doi.org/10.1103 /Phys RevL
ett.117.1972 01
89. Mukai Y, Hirori H, Yamamoto T et al (2016) Nonlinear magnetization dynamics of antiferromagnetic spin resonance induced by intense terahertz magnetic field. New J Phys 18:13045. http s://doi.
org/10.1088 /1367 -2630 /18/1/0130 45
90. Herrmann GF (1963) Resonance and high frequency susceptibility in canted antiferromagnetic
substances. J Phys Chem Solids 24:597–606. http s://doi.org/10.1016 /S002 2-3697 (63)8000 1-3
91. Herrmann GF (1964) Magnetic resonances and susceptibility in orthoferrites. Phys Rev
133:A1334–A1344. http s://doi.org/10.1103 /Phys Rev.133.A133 4
92. Morello A, Stamp PCE, Tupitsyn IS (2006) Pairwise decoherence in coupled spin qubit networks.
Phys Rev Lett 97:207206. http s://doi.org/10.1103 /Phys RevL ett.97.2072 06
93. Fleury PA, Loudon R (1968) Scattering of light by one- and two-magnon excitations. Phys Rev
166:514–530. http s://doi.org/10.1103 /Phys Rev.166.514
94. Kozuki K, Nagashima T, Hangyo M (2011) Measurement of electron paramagnetic resonance
using terahertz time-domain spectroscopy. Opt Express 19:24950. http s://doi.org/10.1364 /
OE.19.0249 50
95. Lu J, Li X, Skorupskii G et al (2017) Rapid and precise determination of zero-field splittings by
terahertz time-domain electron paramagnetic resonance spectroscopy. Chem Sci 8:7312–7323. http
s://doi.org/10.1039 /c7sc 0083 0a
96. Schnegg A, Behrends J, Lips K et al (2009) Frequency domain Fourier transform THz-EPR on
single molecule magnets using coherent synchrotron radiation. Phys Chem Chem Phys 11:6820–
6825. http s://doi.org/10.1039 /b905 709a
97. Champion PM, Sievers AJ (1977) Far infrared magnetic resonance in FeSiF 6 ·6H 2 O and Fe(SPh) 4
2− .
J Chem Phys 66:1819–1825. http s://doi.org/10.1063 /1.4342 00
98. Brackett GC (1971) Far-infrared magnetic resonance in Fe(III) and Mn(III) porphyrins, myoglobin, hemoglobin, ferrichrome A, and Fe(III) dithiocarbamates. J Chem Phys 54:4383. http s://doi.
org/10.1063 /1.1674 688
99. Nehrkorn J, Telser J, Holldack K et al (2015) Simulating frequency-domain electron paramagnetic
resonance: bridging the gap between experiment and magnetic parameters for high-spin transitionmetal ion complexes. J Phys Chem B 119:13816–13824. http s://doi.org/10.1021 /acs.jpcb .5b04 156
100. Kuehn W, Reimann K, Woerner M et al (2011) Two-dimensional terahertz correlation spectra of
electronic excitations in semiconductor quantum wells. J Phys Chem B 115:5448–5455. http s://doi.
org/10.1021 /jp10 9904 6
101. Lee S-H, Lu J, Lee S-J et al (2017) Benzothiazolium single crystals: a new class of nonlinear optical crystals with efficient THz wave generation. Adv Mater 29:1701748. http s://doi.org/10.1002 /
adma .2017 0174 8
102. Chen Z, Zhou X, Werley CA, Nelson KA (2011) Generation of high power tunable multicycle teraherz pulses. Appl Phys Lett 99:71102. http s://doi.org/10.1063 /1.3624 919
103. Lu J, Hwang HY, Li X et al (2015) Tunable multi-cycle THz generation in organic crystal HMQTMS. Opt Express 23:22723–22729. http s://doi.org/10.1364 /OE.23.0227 23
104. Liu B, Bromberger H, Cartella A et al (2017) Generation of narrowband, high-intensity, carrier-envelope phase-stable pulses tunable between 4 and 18 THz. Opt Lett 42:129. http s://doi.
org/10.1364 /OL.42.0001 29
320
Reprinted from the journal
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