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Dive into the research topics where M. P. Shores is active.

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Featured researches published by M. P. Shores.


Physical Review Letters | 2007

Spin dynamics of the spin-1/2 kagome lattice antiferromagnet ZnCu3(OH)6Cl2

Joel S. Helton; K. Matan; M. P. Shores; E. A. Nytko; Bart M. Bartlett; Y. Yoshida; Y. Takano; A. Suslov; Y. Qiu; Jae Ho Chung; Daniel G. Nocera; Yueh-Lin Lee

We have performed thermodynamic and neutron scattering measurements on the S=1/2 kagomé lattice antiferromagnet ZnCu3(OH)6Cl2. The susceptibility indicates a Curie-Weiss temperature of theta CW approximately = -300 K; however, no magnetic order is observed down to 50 mK. Inelastic neutron scattering reveals a spectrum of low energy spin excitations with no observable gap down to 0.1 meV. The specific heat at low-T follows a power law temperature dependence. These results suggest that an unusual spin liquid state with essentially gapless excitations is realized in this kagomé lattice system.


Physical Review Letters | 2010

Dynamic scaling in the susceptibility of the spin-1/2 kagome lattice antiferromagnet herbertsmithite.

Joel S. Helton; K. Matan; M. P. Shores; E. A. Nytko; Bart M. Bartlett; Y. Qiu; Daniel G. Nocera; Young S. Lee

The spin-1/2 kagome lattice antiferromagnet herbertsmithite, ZnCu(3)(OH)(6)Cl(2), is a candidate material for a quantum spin liquid ground state. We show that the magnetic response of this material displays an unusual scaling relation in both the bulk ac susceptibility and the low energy dynamic susceptibility as measured by inelastic neutron scattering. The quantity chiT(alpha) with alpha approximately 0.66 can be expressed as a universal function of H/T or omega/T. This scaling is discussed in relation to similar behavior seen in systems influenced by disorder or by the proximity to a quantum critical point.


Physical Review Letters | 2008

63Cu, 35Cl, and 1H NMR in the S=1/2 Kagome lattice ZnCu3(OH)6Cl2.

Takashi Imai; E. A. Nytko; Bart M. Bartlett; M. P. Shores; Daniel G. Nocera

ZnCu(3)(OH)(6)Cl(2) (S=1/2) is a promising new candidate for an ideal Kagome Heisenberg antiferromagnet, because there is no magnetic phase transition down to approximately 50 mK. We investigated its local magnetic and lattice environments with NMR techniques. We demonstrate that the intrinsic local spin susceptibility decreases toward T=0, but that slow freezing of the lattice near approximately 50 K, presumably associated with OH bonds, contributes to a large increase of local spin susceptibility and its distribution. Spin dynamics near T=0 obey a power-law behavior in high magnetic fields.


Inorganic Chemistry | 2009

CdCu3(OH)6(NO3)2: An S = 1/2 Kagomé Antiferromagnet

E. A. Nytko; M. P. Shores; Joel S. Helton; Daniel G. Nocera

The cadmium copper hydroxide nitrate, CdCu(3)(OH)(6)(NO(3))(2).0.5H(2)O, is furnished from oxygenated suspensions of Cu(2)O in aqueous Cd(NO(3))(2). The compound possesses the kagome structural motif and shows no evidence of magnetic ordering to temperatures as low as 5 K, despite exhibiting a Curie-Weiss temperature of Theta = -114 +/- 27 K, thus giving a spin frustration parameter, f = 22.8.


Physical Review Letters | 2013

Spin Dynamics of the Spin-1/2 Kagome Lattice Antiferromagnet ZnCu_{3}(OH)_{6}Cl_{2}

Joel S. Helton; Daniel G. Nocera; Y. Takano; K. Matan; A. Suslov; Jae Ho Chung; Y. Qiu; Yueh-Lin Lee; Bart M. Bartlett; E. A. Nytko; Y. Yoshida; M. P. Shores

We have performed thermodynamic and neutron scattering measurements on the S=1/2 kagomé lattice antiferromagnet ZnCu3(OH)6Cl2. The susceptibility indicates a Curie-Weiss temperature of theta CW approximately = -300 K; however, no magnetic order is observed down to 50 mK. Inelastic neutron scattering reveals a spectrum of low energy spin excitations with no observable gap down to 0.1 meV. The specific heat at low-T follows a power law temperature dependence. These results suggest that an unusual spin liquid state with essentially gapless excitations is realized in this kagomé lattice system.


Physical Review Letters | 2007

Spin Dynamics of the Spin- 1 / 2 Kagome Lattice Antiferromagnet ZnCu 3 ( OH ) 6 Cl 2

Joel S. Helton; K. Matan; M. P. Shores; E. A. Nytko; Bart M. Bartlett; Y. Yoshida; Y. Takano; A. Suslov; Y. Qiu; Jae Ho Chung; Daniel G. Nocera; Yueh-Lin Lee

We have performed thermodynamic and neutron scattering measurements on the S=1/2 kagomé lattice antiferromagnet ZnCu3(OH)6Cl2. The susceptibility indicates a Curie-Weiss temperature of theta CW approximately = -300 K; however, no magnetic order is observed down to 50 mK. Inelastic neutron scattering reveals a spectrum of low energy spin excitations with no observable gap down to 0.1 meV. The specific heat at low-T follows a power law temperature dependence. These results suggest that an unusual spin liquid state with essentially gapless excitations is realized in this kagomé lattice system.


Physical Review Letters | 2008

Cu63, Cl35, and H1 NMR in the S=12 kagome lattice ZnCu3(OH)6Cl2

Takashi Imai; E. A. Nytko; Bart M. Bartlett; M. P. Shores; Daniel G. Nocera

ZnCu(3)(OH)(6)Cl(2) (S=1/2) is a promising new candidate for an ideal Kagome Heisenberg antiferromagnet, because there is no magnetic phase transition down to approximately 50 mK. We investigated its local magnetic and lattice environments with NMR techniques. We demonstrate that the intrinsic local spin susceptibility decreases toward T=0, but that slow freezing of the lattice near approximately 50 K, presumably associated with OH bonds, contributes to a large increase of local spin susceptibility and its distribution. Spin dynamics near T=0 obey a power-law behavior in high magnetic fields.


Physical Review Letters | 2008

Cu63,Cl35, andH1NMR in theS=12Kagome LatticeZnCu3(OH)6Cl2

Takashi Imai; E. A. Nytko; Bart M. Bartlett; M. P. Shores; Daniel G. Nocera

ZnCu(3)(OH)(6)Cl(2) (S=1/2) is a promising new candidate for an ideal Kagome Heisenberg antiferromagnet, because there is no magnetic phase transition down to approximately 50 mK. We investigated its local magnetic and lattice environments with NMR techniques. We demonstrate that the intrinsic local spin susceptibility decreases toward T=0, but that slow freezing of the lattice near approximately 50 K, presumably associated with OH bonds, contributes to a large increase of local spin susceptibility and its distribution. Spin dynamics near T=0 obey a power-law behavior in high magnetic fields.


Physical Review Letters | 2007

Spin Dynamics of the Spin-1/2Kagome Lattice AntiferromagnetZnCu3(OH)6Cl2

Joel S. Helton; K. Matan; M. P. Shores; E. A. Nytko; Bart M. Bartlett; Y. Yoshida; Y. Takano; A. Suslov; Y. Qiu; Jae Ho Chung; Daniel G. Nocera; Yueh-Lin Lee

We have performed thermodynamic and neutron scattering measurements on the S=1/2 kagomé lattice antiferromagnet ZnCu3(OH)6Cl2. The susceptibility indicates a Curie-Weiss temperature of theta CW approximately = -300 K; however, no magnetic order is observed down to 50 mK. Inelastic neutron scattering reveals a spectrum of low energy spin excitations with no observable gap down to 0.1 meV. The specific heat at low-T follows a power law temperature dependence. These results suggest that an unusual spin liquid state with essentially gapless excitations is realized in this kagomé lattice system.


Physical Review Letters | 2006

Spin Dynamics of the Spin-1/2 Kagome Lattice Antiferromagnet ZnCu_3(OH)_6Cl_2

Joel S. Helton; K. Matan; M. P. Shores; E. A. Nytko; Bart M. Bartlett; Y. Yoshida; Y. Takano; A. Suslov; Y. Qiu; Jae Ho Chung; Daniel G. Nocera; Yueh-Lin Lee

We have performed thermodynamic and neutron scattering measurements on the S=1/2 kagomé lattice antiferromagnet ZnCu3(OH)6Cl2. The susceptibility indicates a Curie-Weiss temperature of theta CW approximately = -300 K; however, no magnetic order is observed down to 50 mK. Inelastic neutron scattering reveals a spectrum of low energy spin excitations with no observable gap down to 0.1 meV. The specific heat at low-T follows a power law temperature dependence. These results suggest that an unusual spin liquid state with essentially gapless excitations is realized in this kagomé lattice system.

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E. A. Nytko

Massachusetts Institute of Technology

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Joel S. Helton

National Institute of Standards and Technology

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K. Matan

Massachusetts Institute of Technology

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Y. Qiu

National Institute of Standards and Technology

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Y. Takano

University of Florida

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Yueh-Lin Lee

Massachusetts Institute of Technology

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A. Suslov

Florida State University

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