Hideo Hirano
National Institute of Advanced Industrial Science and Technology
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Mineralogical Magazine | 2015
Daniel Atencio; Artur Cezar Bastos Neto; Vitor Paulo Pereira; José Tadeu Maximino Mirras Ferron; Mihoko Hoshino; Takeru Moriyama; Yasushi Watanabe; Ritsuro Miyawaki; José Moacyr Vianna Coutinho; Marcelo B. Andrade; Kenneth J. Domanik; N. V. Chukanov; K. Momma; Hideo Hirano; Maiko Tsunematsu
Abstract Waimirite-(Y) (IMA 2013-108), orthorhombic YF3, occurs associated with halloysite, in hydrothermal veins (up to 30 mm thick) cross-cutting the albite-enriched facies of the A-type Madeira granite (~1820 Ma), at the Pitinga mine, Presidente Figueiredo Co., Amazonas State, Brazil. Minerals in the granite are ‘K-feldspar’, albite, quartz, riebeckite, ‘biotite’, muscovite, cryolite, zircon, polylithionite, cassiterite, pyrochlore-group minerals, ‘columbite’, thorite, native lead, hematite, galena, fluorite, xenotime-(Y), gagarinite-(Y), fluocerite-(Ce), genthelvite–helvite, topaz, ‘illite’, kaolinite and ‘chlorite’. The mineral occurs as massive aggregates of platy crystals up to ~1 μm in size. Forms are not determined, but synthetic YF3 displays pinacoids, prisms and bipyramids. Colour: pale pink. Streak: white. Lustre: non-metallic. Transparent to translucent. Density (calc.) = 5.586 g/cm3 using the empirical formula. Waimirite-(Y) is biaxial, mean n = 1.54-1.56. The chemical composition is (average of 24 wavelength dispersive spectroscopy mode electron microprobe analyses, O calculated for charge balance): F 29.27, Ca 0.83, Y 37.25, La 0.19, Ce 0.30, Pr 0.15, Nd 0.65, Sm 0.74, Gd 1.86, Tb 0.78, Dy 8.06, Ho 1.85, Er 6.38, Tm 1.00, Yb 5.52, Lu 0.65, O (2.05), total (97.53) wt.%. The empirical formula (based on 1 cation) is (Y0.69Dy0.08Er0.06Yb0.05Ca0.03Gd0.02Ho0.02Nd0.01Sm0.01Tb0.01Tm0.01Lu0.01)∑1.00[F2.54⃞0.25O0.21]∑3.00. Orthorhombic, Pnma, a = 6.386(1), b = 6.877(1), c = 4.401(1) Å, V = 193.28(7) Å3, Z = 4 (powder data). Powder X-ray diffraction (XRD) data [d in Å (I) (hkl)]: 3.707 (26) (011), 3.623 (78) (101), 3.438 (99) (020), 3.205 (100) (111), 2.894 (59) (210), 1.937 (33) (131), 1.916 (24) (301), 1.862 (27) (230). The name is for the Waimiri-Atroari Indian people of Roraima and Amazonas. A second occurrence of waimirite-(Y) is described from the hydrothermally altered quartz-rich microgranite at Jabal Tawlah, Saudi Arabia. Electron microprobe analyses gave the empirical formula (Y0.79Dy0.08Er0.05Gd0.03Ho0.02Tb0.01 Tm0.01Yb0.01)∑1.00[F2.85O0.08⃞0.07]∑3.00. The crystal structure was determined with a single crystal from Saudi Arabia. Unit-cell parameters refined from single-crystal XRD data are a = 6.38270(12), b = 6.86727(12), c = 4.39168(8) Å, V = 192.495(6) Å3, Z = 4. The refinement converged to R1 = 0.0173 and wR2 = 0.0388 for 193 independent reflections. Waimirite-(Y) is isomorphous with synthetic SmF3, HoF3 and YbF3. The Y atom forms a 9-coordinated YF9 tricapped trigonal prism in the crystal structure. The substitution of Y for Dy, as well as for other lanthanoids, causes no notable deviations in the crystallographic values, such as unit-cell parameters and interatomic distances, from those of pure YF3.
BULLETIN OF THE GEOLOGICAL SURVEY OF JAPAN | 2007
Xiaofeng Li; Yasushi Watanabe; Chunzeng Wang; Hideo Hirano; Yan Zhang
The paper presents the newest age information of the rock crystals (clear quartz crystals) in Donghai County of eastern China, and discusses the evolution of the rock crystal-bearing quartz veins with respect to the exhumation history of the Su-Lu ultra-high pressure (UHP) metamorphic belt. Biotite samples were collected from the alteration zone of the quartz veins and Ar-Ar method was used to date the biotite in an attempt to decipher the age of the rock crystals based on the relation between the biotite and the quartz veins. The dating yields biotite Ar-Ar plateau age, isochron age, and inverse-isochron age of 239.8±2.6 Ma, 241.0±2.6 Ma, and 241.1±2.7 Ma respectively. The ages are close to the peak metamorphism age (at 240-245 Ma) of the Su-Lu UHP belt, indicating that the rock crystals of the quartz veins were crystallized in the early stage of exhumation of the Su-Lu UHP metamorphic belt.
Resource Geology | 2011
Takeru Moriyama; Ritsuro Miyawaki; Kazumi Yokoyama; Satoshi Matsubara; Hideo Hirano; Hiroyasu Murakami; Yasushi Watanabe
BULLETIN OF THE GEOLOGICAL SURVEY OF JAPAN | 2012
Shunso Ishihara; Hideo Hirano; Kenichiro Tani
BULLETIN OF THE GEOLOGICAL SURVEY OF JAPAN | 2011
Shunso Ishihara; Hideo Hirano; Mihoko Hoshino; Pham Ngoc Can; Pham Thi Dung; Tran Tuan-Anh
Archive | 2001
Hideo Hirano; Harunori Noda; Takashi Sumiki; Yasushi Watanabe; 秀夫 平野; 康史 渡邉; 晴紀 野田; 隆 隅木
BULLETIN OF THE GEOLOGICAL SURVEY OF JAPAN | 2007
Takeru Moriyama; Masaharu Kamitani; Yoji Teraoka; Kimio Okumura; Hideo Hirano; Hiroyasu Murakami; Yasushi Watanabe
Archive | 2000
Hideo Hirano; Takashi Sumiki; Yasushi Watanabe; 秀夫 平野; 康史 渡邉; 隆 隅木
Resource Geology | 2017
Shunso Ishihara; Hideo Hirano
BULLETIN OF THE GEOLOGICAL SURVEY OF JAPAN | 2009
Shunso Ishihara; Hideo Hirano; Takeru Moriyama
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Dive into the Hideo Hirano's collaboration.
National Institute of Advanced Industrial Science and Technology
View shared research outputsNational Institute of Advanced Industrial Science and Technology
View shared research outputsNational Institute of Advanced Industrial Science and Technology
View shared research outputsNational Institute of Advanced Industrial Science and Technology
View shared research outputsNational Institute of Advanced Industrial Science and Technology
View shared research outputsNational Institute of Advanced Industrial Science and Technology
View shared research outputsNational Institute of Advanced Industrial Science and Technology
View shared research outputsNational Institute of Advanced Industrial Science and Technology
View shared research outputs