Tohoku University · 工学
Kazuaki Kisu教授の研究室は、リチウムイオン電池に代わる次世代エネルギー貯蔵デバイスの開発を主眼としています。特にマグネシウムおよびカルシウムイオン電池の固体電解質や電極材料の創出に注力しており、高イオン伝導性・電気化学的安定性を有する新規化合物の設計・合成を進めています。また、ナノコンposite構造の制御や界面挙動の解明を通じて、長寿命で高効率な全固体電池の実現に向けた基盤技術の構築を進めています。
Figures are computed from collected data and may differ slightly.
Magnesium borohydride ammonia borane, Mg(BH4)2(NH3BH3)2, was electrochemically investigated. Impedance measurements of the mechanochemically synthesized Mg(BH4)2(NH3BH3)2 exhibited an ionic conductivity of 1.3 × 10–5 S cm–1 at 30 °C. Electrochemical cells fabricated with Mg(BH4)2(NH3BH3)2 as the solid electrolyte demonstrated reversible Mg migration through the material, indicating its potential for use as a Mg ionic conductor in all-solid-state Mg-ion batteries.
High-energy-density and low-cost calcium (Ca) batteries have been proposed as 'beyond-Li-ion' electrochemical energy storage devices. However, they have seen limited progress due to challenges associated with developing electrolytes showing reductive/oxidative stabilities and high ionic conductivities. This paper describes a calcium monocarborane cluster salt in a mixed solvent as a Ca-battery electrolyte with high anodic stability (up to 4 V vs. Ca<sup>2+</sup>/Ca), high ionic conductivity (4 m
Single-nanocrystalline SnO<sub>2</sub> particles encapsulated within hollow-structured carbon structures were synthesized. Encapsulated SnO<sub>2</sub> is readily transformed into a blended amorphous structure composed of Li<sub>x</sub>SnO<sub>1.45</sub> (<italic>x</italic> = 0–7.3) after repeated lithiation–delithiation processes.
Spherical LiMn<sub>0.792</sub>Fe<sub>0.198</sub>Mg<sub>0.010</sub>PO<sub>4</sub>nanocrystals, which are highly dispersed and encapsulated within the interstices of supergrowth (single-walled) carbon nanotubes (SGCNTs), were successfully synthesized by<italic>in situ</italic>material processing technology called “ultra-centrifuging (UC) treatment”.
As potential alternatives to Li-ion batteries, rechargeable Ca metal batteries offer advantageous features such as high energy density, cost-effectiveness, and natural elemental abundance. However, challenges, such as Ca metal passivation by electrolytes and a lack of cathode materials with efficient Ca<sup>2+</sup> storage capabilities, impede the development of practical Ca metal batteries. To overcome these limitations, the applicability of a CuS cathode in Ca metal batteries and its electroc
Water molecules are exchanged in the crystal structure, which imparts a high divalent conductivity to hydrated complex hydrides. MB 12 H 12 ·12H 2 O (M = Zn or Mg) exhibits exceptional conductivities higher than those of less-hydrated complex hydrides.
Rechargeable Ca batteries offer the advantages of high energy density, low cost, and earth-abundant constituents, presenting a viable alternative to lithium-ion batteries. However, using polymer electrolytes in practical Ca batteries is not often reported, despite its potential to prevent leakage and preserve battery flexibility. Herein, a Ca(BH<sub>4</sub>)<sub>2</sub>-based gel-polymer electrolyte (GPE) is prepared from Ca(BH<sub>4</sub>)<sub>2</sub> and poly(tetrahydrofuran) (pTHF) and tested
Multivalent-ion and all-solid-state batteries have emerged as potential solutions to address resource concerns and safety issues.
The use of Ca metal in battery technology is a promising approach owing to its high energy density and sustainability. However, the increased battery resistance during extended cycling significantly narrows its application range. This study aimed to improve the long-term stability of Ca deposition by employing a dual-salt strategy based on calcium monocarborane, Ca(CB<sub>11</sub>H<sub>12</sub>)<sub>2</sub>, which demonstrated favorable Ca deposition characteristics as a single-salt electrolyte.
Efficient Ca plating/stripping and the development of low-volatility electrolytes remain key challenges for the broad-scale application of Ca metal batteries. In this study, we demonstrate that CaBr<sub>2</sub> addition modifies the electrolyte environment, enabling highly reversible Ca plating/stripping in electrolytes based on low-volatility diglyme as a solvent previously considered nonfunctional.
1. Introduction Olivine phosphates have long been investigated as cathode material in Li-ion batteries. In particular, lithium iron phosphate (LiFePO 4 ) has attracted the attention of many researchers because of its high theoretical capacity of 170 mAh g -1 , low cost and high electrochemical/thermal stabilities of the phosphate (PO 4 3- ) anion [1] . However, the large volume difference during two-phase reaction between Li-rich Li 1-a FePO 4 (LFP) and Li-poor Li b FePO 4 (FP) phases leads to l
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