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Dive into the research topics where E. M. Motoyama is active.

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Featured researches published by E. M. Motoyama.


Nature | 2007

Spin correlations in the electron-doped high-transition-temperature superconductor Nd2- xCexCuO4±δ

E. M. Motoyama; Guichuan Yu; Inna Vishik; Owen Peter Vajk; P. K. Mang; M. Greven

High-transition-temperature (high-Tc) superconductivity develops near antiferromagnetic phases, and it is possible that magnetic excitations contribute to the superconducting pairing mechanism. To assess the role of antiferromagnetism, it is essential to understand the doping and temperature dependence of the two-dimensional antiferromagnetic spin correlations. The phase diagram is asymmetric with respect to electron and hole doping, and for the comparatively less-studied electron-doped materials, the antiferromagnetic phase extends much further with doping and appears to overlap with the superconducting phase. The archetypal electron-doped compound Nd2-xCexCuO4±δ (NCCO) shows bulk superconductivity above x ≈ 0.13 (refs 3, 4), while evidence for antiferromagnetic order has been found up to x ≈ 0.17 (refs 2, 5, 6). Here we report inelastic magnetic neutron-scattering measurements that point to the distinct possibility that genuine long-range antiferromagnetism and superconductivity do not coexist. The data reveal a magnetic quantum critical point where superconductivity first appears, consistent with an exotic quantum phase transition between the two phases. We also demonstrate that the pseudogap phenomenon in the electron-doped materials, which is associated with pronounced charge anomalies, arises from a build-up of spin correlations, in agreement with recent theoretical proposals.


Nature Physics | 2009

A universal relationship between magnetic resonance and superconducting gap in unconventional superconductors

Guichuan Yu; Y. Li; E. M. Motoyama; M. Greven

A comprehensive survey of the cuprate, heavy-fermion and iron-based superconductors shows a universal linear relationship between their magnetic resonance energy and superconducting gap. This result suggests that antiferromagnetic fluctuations might have a similar role in the unconventional superconductivity of these seemingly different classes of materials.


Nature Physics | 2014

Asymmetry of collective excitations in electron- and hole-doped cuprate superconductors

Wei-Sheng Lee; James J. Lee; E. A. Nowadnick; Simon Gerber; W. Tabis; Shih Wen Huang; V. N. Strocov; E. M. Motoyama; Guichuan Yu; Brian Moritz; H. Y. Huang; R. P. Wang; Yaobo Huang; W. B. Wu; C. T. Chen; D. J. Huang; M. Greven; Thorsten Schmitt; Zhi-Xun Shen; T. P. Devereaux

Cuprate superconductors are created by adding electrons or holes to a ‘parent’ compound. They have dissimilar phase diagrams and the asymmetry is further highlighted by unexpected collective modes measured using resonant inelastic X-ray scattering.


Physical Review Letters | 2006

Magnetic field effect on the superconducting magnetic gap of Nd1.85Ce0.15CuO4

E. M. Motoyama; P. K. Mang; D. Petitgrand; Guichuan Yu; Owen Peter Vajk; Inna Vishik; M. Greven

Inelastic neutron-scattering measurements on the archetypical electron-doped material Nd1.85Ce0.15CuO4 up to a high relative magnetic-field strength, H/H(c2) approximately 50%, reveal a simple linear magnetic-field effect on the superconducting magnetic gap and the absence of field-induced in-gap states. The extrapolated gap-closing field value is consistent with the upper critical field H(c2), and the high-field response resembles that of the paramagnetic normal state.


Advanced Materials | 2006

Crystal Growth and Characterization of the Model High‐Temperature Superconductor HgBa2CuO4+δ

X. Zhao; Guichuan Yu; Yong Chan Cho; Guillaume Chabot-Couture; N. Barisic; Philippe Bourges; Nobuhisa Kaneko; Yuan Li; L. Lu; E. M. Motoyama; Owen Peter Vajk; M. Greven


Physical Review B | 2010

Magnetic resonance in the model high-temperature superconductor HgBa 2 CuO 4 + δ

Guichuan Yu; Y. Li; E. M. Motoyama; X. Zhao; N. Barisic; Yongchan Cho; P. Bourges; Klaudia Hradil; Richard A. Mole; M. Greven


Physical Review Letters | 2013

Time-Resolved Optical Reflectivity of the Electron-Doped Nd 2 − x Ce x CuO 4 + δ Cuprate Superconductor: Evidence for an Interplay between Competing Orders

James Hinton; J. D. Koralek; Guichuan Yu; E. M. Motoyama; Yunfeng Lu; Ashvin Vishwanath; M. Greven; J. Orenstein


New Journal of Physics | 2009

Effect of strong correlations on the high energy anomaly in hole- and electron-doped high-Tc superconductors

Brian Moritz; F. Schmitt; W. Meevasana; S. Johnston; E. M. Motoyama; M. Greven; D. H. Lu; Changyoung Kim; R. T. Scalettar; Z.-X. Shen; T. P. Devereaux


Physical Review B | 2008

Analysis of the Spectral Function of Nd1.85Ce0.15CuO4, Obtained by Angle Resolved Photoemission Spectroscopy

F. Schmitt; Wei-Sheng Lee; D. H. Lu; W. Meevasana; E. M. Motoyama; M. Greven; Zhi-Xun Shen


Physical Review B | 2010

Two characteristic energies in the low-energy magnetic response of the electron-doped high-temperature superconductor Nd2-xCe xCuO4+δ

Guichuan Yu; Y. Li; E. M. Motoyama; Klaudia Hradil; Richard A. Mole; M. Greven

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Owen Peter Vajk

National Institute of Standards and Technology

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Brian Moritz

SLAC National Accelerator Laboratory

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Klaudia Hradil

University of Göttingen

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Richard A. Mole

Australian Nuclear Science and Technology Organisation

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D. H. Lu

SLAC National Accelerator Laboratory

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T. P. Devereaux

Geballe Laboratory for Advanced Materials

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