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Featured researches published by Noriaki Oba.


Journal of the Physical Society of Japan | 2005

Spin-Singlet Ground State in Two-Dimensional S=1/2 Frustrated Square Lattice: (CuCl)LaNb2O7

Hiroshi Kageyama; Taro Kitano; Noriaki Oba; Masakazu Nishi; Satoshi Nagai; K. Hirota; L. Viciu; J. B. Wiley; Jun Yasuda; Yoichi Baba; Yoshitami Ajiro; Kazuyoshi Yoshimura

We report on the magnetic properties of double-layered perovskite (CuCl)LaNb 2 O 7 with a square lattice of S =1/2 Cu 2+ ions, prepared by topotactic ion-exchange reactions. Magnetic susceptibility exhibits a thermal-activated behavior, and the analysis of the data suggests competing ferro- and antiferromagnetic exchanges for first- and second-nearest-neighbor bonds, respectively. Neutron scattering experiments provide explicit evidence for a spin-singlet ground state with an energy gap of 2.3 meV. The well-defined low-lying triplet mode is almost independent of Q despite densely packed magnetic ions in the CuCl plane. In addition, on the basis of the isolated dimer model, we found that the intradimer distance is as long as 8.8 A, which corresponds to the fourth-nearest-neighbor bond. These results indicate a sizable geometrical frustration that should impose severe constraints on the propagation of the triplet excitation, as in the case of SrCu 2 (BO 3 ) 2 . This argument is further reinforced by the obs...


Journal of the Physical Society of Japan | 2006

Collinear order in frustrated quantum antiferromagnet on square lattice (CuBr)LaNb2O7

Noriaki Oba; Hiroshi Kageyama; Taro Kitano; Jun Yasuda; Yoichi Baba; Masakazu Nishi; K. Hirota; Yasuo Narumi; Masayuki Hagiwara; Koichi Kindo; Takashi Saito; Yoshitami Ajiro; Kazuyoshi Yoshimura

Magnetic susceptibility, heat capacity, high-field magnetization and neutron diffraction measurements have been performed on a two-dimensional S ¼ 1=2 square-lattice system (CuBr)LaNb2O7, prepared by a topotactic ion-exchange reaction of a nonmagnetic double-layered perovskite RbLaNb2O7. (CuBr)LaNb2O7 exhibits a second-order magnetic transition at 32 K, in marked contrast to a spin-singlet nature for its Cl-based counterpart (CuCl)LaNb2O7, despite nearly identical structural parameters. The magnetic structure is a novel collinear antiferromagnetic (CAF) ordering characterized by a modulation vector q ¼ð �; 0 ;� Þ with a reduced moment of 0.6� B. Mixed ferromagnetic nearest-neighbor (J1) and antiferromagnetic second-nearest-neighbor (J2) interactions are of comparable strength (J1=kB ¼ � 35:6 K and J2=kB ¼ 41:3 K), placing the system in a more frustrated region of the CAF phase than ever reported.


Journal of the Physical Society of Japan | 2005

Anomalous Magnetization of Two-Dimensional S ¼ 1=2 Frustrated Square-Lattice Antiferromagnet (CuCl)LaNb2O7

Hiroshi Kageyama; Jun Yasuda; Taro Kitano; Keisuke Totsuka; Yasuo Narumi; Masayuki Hagiwara; Koichi Kindo; Yoichi Baba; Noriaki Oba; Yoshitami Ajiro; Kazuyoshi Yoshimura

High-field magnetization measurements have been performed up to 56 T for a two-dimensional S = 1/2 frustrated square-lattice antiferromagnet (CuCl)LaNb 2 O 7 , a recently discovered spin gap system (Δ/ k B = 26.7 K). It is found that the spin gap closes at a surprisingly low field H c1 = 10.3 T compared with that expected from the zero-field spin gap (Δ/ g µ B = 18.4 T). For H > H c1 , the magnetization exhibits a linear increase without any trace of anomalies such as fractional plateaus until it saturates at H c2 = 30.1 T. This means that the gapless phase, where the field-induced magnetic ordering is expected to occur at low temperatures, is stable over a wide field region. These results suggest strong correlations of triplet excitations in the layer and the proximity of the spin-liquid phase to the magnetically ordered phase.


Journal of the Physical Society of Japan | 2007

1/3 Magnetization Plateau in Spin-1/2 Square Lattice Antiferromagnet (CuBr)Sr2Nb3O10

Yoshihiro Tsujimoto; Yoichi Baba; Noriaki Oba; Hiroshi Kageyama; Tomoya Fukui; Yasuo Narumi; Koichi Kindo; Takashi Saito; Mikio Takano; Yoshitami Ajiro; Kazuyoshi Yoshimura

A new triple-layered perovskite (CuBr)Sr 2 Nb 3 O 10 with the S = 1/2 square lattice has been prepared through a chimie douce route. Presence of strong spin frustration is inferred from zero-field specific heat measurements which exhibit successive phase transitions at 9.3 and 7.5 K. Application of magnetic fields merges the transition temperatures at 3 T, suggesting that the intermediate phase is of magnetic origin with fluctuating spin–spin correlation. Despite the square geometry, magnetization curves have revealed a metamagnetic transition to a novel phase characterized by a 1/3 plateau of the saturated magnetization.


Progress of Theoretical Physics Supplement | 2005

S = 1/2 Square-Lattice Antiferromagnets: (CuX)LaB2O7 and (CuCl)A2B3O10 (X = Cl, Br; A = Ca, Sr; B = Nb, Ta)

Hiroshi Kageyama; Taro Kitano; Ryu Nakanishi; Jun Yasuda; Noriaki Oba; Yoichi Baba; Masakazu Nishi; Yutaka Ueda; Y. Ajiro; Kazuyoshi Yoshimura

A series of magnetic compounds with the formula (CuX)LaB 2 O 7 and (CuCl)A 2 B 3 O 10 (X = Cl, Br: A = Ca, Sr; B = Nb, Ta) have been prepared through a low-temperature topochemical route starting from nonmagnetic double- (n = 2) and triple- (n = 3) layered perovskites, respectively. The magnetic susceptibility of these compounds typically exhibits a broad maximum at low temperatures, characteristic of low-dimensional antiferromagnetic compounds. However, depending on the choice of the parameters. X, A, B and n, physical quantities such as the Weiss temperature and the temperature at a maximum susceptibility vary to a great extent, which enables us to study the phase diagram of the S = 1/2 frustrated square-lattice antiferromagnets (the so-called J 1 -J 2 model). In particular, (CuCl)LaNb 2 O 7 , possibly having a ferromagnetic J 1 and an antiferromagnetic J 2 , shows a spin-liquid behavior with the spill gap of 27 K.


Physica B-condensed Matter | 2003

Magnetic properties of V-jarosite AV3(SO4)2(OH)6 (A=Na,K) with kagomé lattice

Masaki Kato; Tsutomu Hori; Noriaki Oba; Kazuyoshi Yoshimura; Tsuneaki Goto

Abstract We have newly synthesized V-jarosite, NaV3(SO4)2(OH)6 and KV3(SO4)2(OH)6, with kagome lattice using the hydrothermal reaction method. Structural parameters were refined by powder X-ray diffraction. It was found that these compounds show a ferromagnetic behavior below 50 K and that the field dependence of magnetization has no hysteresis. Thus, it can be concluded that magnetic interactions of intralayer are ferromagnetic and those of interlayer are antiferromagnetic. Results of 23 Na NMR also will be presented in this report.


Journal of Physics and Chemistry of Solids | 2005

Physical properties of the novel Jarosite-type compound NaFe3(SeO4)2(OH)6

Noriaki Oba; Chishiro Michioka; Masaki Kato; Kazuyoshi Yoshimura; Ko Mibu


Journal of Magnetism and Magnetic Materials | 2007

Synchrotron X-ray diffraction study on the square-lattice antiferromagnets (CuCl)LaNb2O7 and (FeCl)LaNb2O7

Noriaki Oba; Hiroshi Kageyama; Takashi Saito; Masaki Azuma; Werner Paulus; Taro Kitano; Y. Ajiro; Kazuyoshi Yoshimura


Journal of Magnetism and Magnetic Materials | 2007

Synchrotron X-ray diffraction study on the square-lattice antiferromagnets (CuCl)LaNb2O7(CuCl)LaNb2O7 and (FeCl)LaNb2O7(FeCl)LaNb2O7

Noriaki Oba; Hiroshi Kageyama; Takashi Saito; Masaki Azuma; Werner Paulus; Taro Kitano; Y. Ajiro; Kazuyoshi Yoshimura


Journal of the Physical Society of Japan | 2007

1/3 Magnetization Plateau in Spin-1/2 Square Lattice Antiferromagnet (CuBr)Sr_2Nb_3O_ (Condensed matter: electronic structure and electrical, magnetic, and optical properties)

Yoshihiro Tsujimoto; Yoichi Baba; Noriaki Oba; Hiroshi Kageyama; Tomoya Fukui; Yasuo Narumi; Koichi Kindo; Takashi Saito; Mikio Takano; Yoshitami Ajiro; Kazuyoshi Yoshimura

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