Tokyo Institute of Technology · 지구·행성과학
Kei Hirose 교수의 연구실은 지구의 내부 구조, 특히 핵과 맨틀의 고압 고온 조건에서의 물질적 성질과 상전이를 중심으로 연구를 진행합니다. 주로 다이아몬드 압력챔버 및 다이아몬드 압력장치를 활용한 고압 실험을 통해 철 및 철합금의 결정구조, 액체화 조건, 그리고 맨틀 구성물질의 상관계를 규명하고 있습니다. 이는 지구의 형성, 자기장 유지, 핵의 구성 및 열역학적 진화 이해에 핵심적인 기초 자료를 제공합니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Earth's solid inner core is mainly composed of iron (Fe). Because the relevant ultrahigh pressure and temperature conditions are difficult to produce experimentally, the preferred crystal structure of Fe at the inner core remains uncertain. Static compression experiments showed that the hexagonal close-packed (hcp) structure of Fe is stable up to 377 gigapascals and 5700 kelvin, corresponding to inner core conditions. The observed weak temperature dependence of the c/a axial ratio suggests that
Research Article| January 01, 1997 Melting experiments on lherzolite KLB-1 under hydrous conditions and generation of high-magnesian andesitic melts Kei Hirose Kei Hirose 1Department of Earth and Planetary Sciences, Tokyo Institute of Technology, Ookayama, Tokyo 152, Japan Search for other works by this author on: GSW Google Scholar Author and Article Information Kei Hirose 1Department of Earth and Planetary Sciences, Tokyo Institute of Technology, Ookayama, Tokyo 152, Japan Publisher: Geologica
Phase relations in the natural pyrolitic mantle composition (KLB‐1) around 670‐km depth have been determined at 1600–2200°C by high‐pressure experiments using multianvil apparatus. A phase transition between majorite garnet and Al‐bearing Mg‐rich perovskite occurs at depths similar to the postspinel phase transition. The seismic discontinuity observed at this depth could be caused by a combination of both transitions. The majorite‐perovskite transition boundary has a positive Clausius‐Clapeyron
The composition and state of Earth's core, located deeper than 2,900 km from the surface, remain largely uncertain. Recent static experiments on iron and alloys performed up to inner core pressure and temperature conditions have revealed phase relations and properties of core materials. These mineral physics constraints, combined with theoretical calculations, continue to improve our understanding of the core, in particular the crystal structure of the inner core and the chemical composition, th
Partial melt compositions of natural carbonated peridotite (KLB‐1 + 2.5 wt% CO 2 ) have been determined at 3 GPa using the diamond aggregate method. Melt obtained at 1350 °C is carbonatitic, and with increasing temperature melt composition becomes silicate‐rich. These melts are lower in SiO 2 and Al 2 O 3 and higher in MgO and CaO compared to dry partial melts of KLB‐1 generated at the same pressure. The 1400 and 1450 °C liquids have melilititic compositions, which are in good agreement with tho
Constraining the core’s composition is essential for understanding Earth accretion, core formation and the sustainment of Earth’s magnetic field. Earth’s outer and inner core exhibit a density deficit relative to pure iron, attributed to the presence of substantial amounts of low atomic number ‘light’ elements, such as sulfur, silicon, oxygen, carbon and hydrogen. However, owing to its inaccessibility, estimates of core composition can only be indirectly obtained by matching results from high-pr
We present a method for the first-principles calculation of the electronic states under strong field and current, which is effective for the bielectrode system with atomic structures around the surface regions. A microscopic electron distribution is calculated self-consistently together with the field and current distributions. In our method the scattering waves are calculated by the step-by-step recursion-matrix method and two different Fermi levels are assigned to each jellium electrode in acc
The stability of (Mg,Fe)SiO 3 perovskite in the deep lower mantle has long been uncertain. Recently, a phase transition from perovskite to postperovskite was discovered through a significant change in the X‐ray diffraction pattern at high‐pressure and high‐temperature conditions corresponding to the core‐mantle boundary region. This phase transition was also confirmed by first‐principles calculations. These suggest that (Mg,Fe)SiO 3 postperovskite is the predominant mineral in the lowermost mant
Using spin-density-functional theory, we study the electronic states of a two-dimensional parabolic quantum dot with up to $N=58$ electrons. We observe a shell structure for the filling of the dot with electrons. Hund's rule determines the spin configuration of the ground state, but only up to 22 electrons. At specific N, the ground state is degenerate, and a small elliptical deformation of the external potential induces a rotational charge-density-wave state. Previously identified spin-density-