Yoshifumi Mizuno
National Institute of Advanced Industrial Science and Technology
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Publication
Featured researches published by Yoshifumi Mizuno.
ACS Nano | 2010
Masashi Okubo; Yoshifumi Mizuno; Hirotoshi Yamada; Je-Deok Kim; Eiji Hosono; Haoshen Zhou; Tetsuichi Kudo; Itaru Honma
The effect of crystallite size on Li-ion insertion in electrode materials is of great interest recently because of the need for nanoelectrodes in higher-power Li-ion rechargeable batteries. We present a systematic study of the effect of size on the electrochemical properties of LiMn(2)O(4). Accurate size control of nanocrystalline LiMn(2)O(4), which is realized by a hydrothermal method, significantly alters the phase diagram as well as Li-ion insertion voltage. Nanocrystalline LiMn(2)O(4) with extremely small crystallite size of 15 nm cannot accommodate domain boundaries between Li-rich and Li-poor phases due to interface energy, and therefore lithiation proceeds via solid solution state without domain boundaries, enabling fast Li-ion insertion during the entire discharge process.
Inorganic Chemistry | 2008
Naoto Ishikawa; Yoshifumi Mizuno; Satoshi Takamatsu; Tadahiko Ishikawa; Shin-ya Koshihara
Chemically induced longitudinal contraction of the square-antiprism coordination polyhedron of a peripherically substituted bis(phthalocyaninato)dysprosiumate(III), a dysprosium-based single-4f-ionic single-molecule magnet having a J z = +/- (13)/ 2 Kramers doublet ground state, resulted in drastic changes in dynamical magnetism including a doubling of the energy barrier, a 2-order-of-magnitude decrease of the spin reversal rate, a significant rise of the blocking temperature, and the first observation of the emergence of a large remanent magnetization.
Journal of the American Chemical Society | 2013
Daisuke Asakura; Carissa H. Li; Yoshifumi Mizuno; Masashi Okubo; Haoshen Zhou; Daniel R. Talham
Prussian blue analogues (PBAs) have recently been proposed as electrode materials for low-cost, long-cycle-life, and high-power batteries. However, high-capacity bimetallic examples show poor cycle stability due to surface instabilities of the reduced states. The present work demonstrates that, relative to single-component materials, higher capacity and longer cycle stability are achieved when using Prussian blue analogue core@shell particle heterostructures as the cathode material for Li-ion storage. Particle heterostructures with a size dispersion centered at 210 nm composed of a high-capacity K(0.1)Cu[Fe(CN)(6)](0.7)·3.8H(2)O (CuFe-PBA) core and lower capacity but highly stable shell of K(0.1)Ni[Fe(CN)(6)](0.7)·4.1H(2)O have been prepared and characterized. The heterostructures lead to the coexistence of both high capacity and long cycle stability because the shell protects the otherwise reactive surface of the highly reduced state of the CuFe-PBA core. Furthermore, interfacial coupling to the shell suppresses a known structural phase transition in the CuFe-PBA core, providing further evidence of synergy between the core and shell. The structure and chemical state of the heterostructure during electrochemical cycling have been monitored with ex situ X-ray diffraction and X-ray absorption experiments and compared to the behavior of the individual components.
CrystEngComm | 2013
Eiji Hosono; Tatsuya Saito; Junichi Hoshino; Yoshifumi Mizuno; Masashi Okubo; Daisuke Asakura; Koichi Kagesawa; Daisuke Nishio-Hamane; Tetsuichi Kudo; Haoshen Zhou
Hollow wires with thin nanowalls constructed from two-dimensionally connected, highly crystalline nanoparticles were fabricated by electrospinning to create electrode active materials of LiNi0.5Mn1.5O4 (5 V spinel) and 0.5Li2MnO3–0.5LiNi1/3Co1/3Mn1/3O2 (solid-solution type). The resultant materials show large-energy-density properties suitable for use as cathode materials in Li-ion batteries.
Inorganic Chemistry | 2013
Masashi Okubo; Koichi Kagesawa; Yoshifumi Mizuno; Daisuke Asakura; Eiji Hosono; Tetsuichi Kudo; Haoshen Zhou; Kotaro Fujii; Hidehiro Uekusa; Shin-ichi Nishimura; Atsuo Yamada; Atsushi Okazawa; Norimichi Kojima
Coordination polymers have significant potential for new functionality paradigms due to the intrinsic tunability of both their electronic and structural properties. In particular, octacyanometallate-bridged coordination polymers have the extended structural and magnetic diversity to achieve novel functionalities. We demonstrate that [Mn(H2O)][Mn(HCOO)(2/3)(H2O)(2/3)](3/4)[Mo(CN)8]·H2O can exhibit electrochemical alkali-ion insertion/extraction with high durability. The high durability is explained by the small lattice change of less than 1% during the reaction, as evidenced by ex situ X-ray diffraction analysis. The ex situ X-ray absorption spectroscopy revealed reversible redox of the octacyanometallate. Furthermore, the solid state redox of the paramagnetic [Mo(V)(CN)8](3-)/diamagnetic[Mo(IV)(CN)8](4-) couple realizes magnetic switching.
Inorganic Chemistry | 2014
Satoshi Kajiyama; Yoshifumi Mizuno; Masashi Okubo; Ryosuke Kurono; Shin-ichi Nishimura; Atsuo Yamada
Phase separation and transformation induced by electrochemical ion insertion are key processes in achieving efficient energy storage. Exploration of novel insertion electrode materials/reactions is particularly important to unravel the atomic/molecular-level mechanism and improve the electrochemical properties. Here, we report the unconventional phase separation of a cyanide-bridged coordination polymer, Eu[Fe(CN)6]·4H2O, under electrochemical Na-ion insertion. Detailed structural analyses performed during the electrochemical reaction revealed that, in contrast to conventional electrochemical phase separation induced by the elastic interaction between nearest neighbors, the phase separation of NaxEu[Fe(CN)6]·4H2O is due to a long-range interaction, namely, cooperative rotation ordering of hexacyanoferrates. Kolmogorov-Johnson-Mehl-Avrami analysis showed that the activation energy for the phase boundary migration in NaxEu[Fe(CN)6]·4H2O is lower than that in other conventional electrode materials such as Li(1-x)FePO4.
Journal of Physical Chemistry Letters | 2014
Daisuke Asakura; Yusuke Nanba; Masashi Okubo; Yoshifumi Mizuno; Hideharu Niwa; Masaharu Oshima; Haoshen Zhou; Kozo Okada; Yoshihisa Harada
We combine Mn L2,3-edge X-ray absorption, high resolution Mn 2p-3d-2p resonant X-ray emission, and configuration-interaction full-multiplet (CIFM) calculation to analyze the electronic structure of Mn-based Prussian blue analogue. We clarified the Mn 3d energy diagram for the Mn(2+) low-spin state separately from that of the Mn(2+) high-spin state by tuning the excitation energy for the X-ray emission measurement. The obtained X-ray emission spectra are generally reproduced by the CIFM calculation for the Mn(2+) low spin state having a stronger ligand-to-metal charge-transfer effect between Mn t2g and CN π orbitals than the Mn(2+) high spin state. The d-d-excitation peak nearest to the elastic scattering was ascribed to the Mn(2+) LS state by the CIFM calculation, indicating that the Mn(2+) LS state with a hole on the t2g orbital locates near the Fermi level.
Journal of Physical Chemistry Letters | 2010
Masashi Okubo; Daisuke Asakura; Yoshifumi Mizuno; Je-Deok Kim; T. Mizokawa; Tetsuichi Kudo; Itaru Honma
Journal of Physical Chemistry C | 2013
Yoshifumi Mizuno; Masashi Okubo; Eiji Hosono; Tetsuichi Kudo; Haoshen Zhou; Katsuyoshi Oh-ishi
Journal of Physical Chemistry C | 2012
Daisuke Asakura; Masashi Okubo; Yoshifumi Mizuno; Tetsuichi Kudo; Haoshen Zhou; Kazumichi Ikedo; T. Mizokawa; Atsushi Okazawa; Norimichi Kojima
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National Institute of Advanced Industrial Science and Technology
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