Shock-induced microtextures in lunar apatite and merrillite

被引:26
作者
Cernok, Ana [1 ,6 ]
White, Lee Francis [2 ,3 ]
Darling, James [4 ]
Dunlop, Joseph [4 ]
Anand, Mahesh [1 ,5 ]
机构
[1] Open Univ, Sch Phys Sci, Walton Hall, Milton Keynes MK7 6AA, Bucks, England
[2] Royal Ontario Museum, Dept Nat Hist, Ctr Appl Planetary Mineral, Toronto, ON M5S 2C6, Canada
[3] Univ Toronto, Dept Earth Sci, Toronto, ON M5S 3B1, Canada
[4] Univ Portsmouth, Sch Earth & Environm Sci, Burnaby Rd, Portsmouth PO1 3QL, Hants, England
[5] Nat Hist Museum, Dept Earth Sci, London SW7 5BD, England
[6] Royal Ontario Museum, Planetary Mineral, 100 Queens Pk, Toronto, ON, Canada
基金
欧盟地平线“2020”;
关键词
U-PB; IMPACT STRUCTURE; TRACE-ELEMENT; CRYSTAL-CHEMISTRY; ISOTOPIC COMPOSITION; PHOSPHATE MINERALS; VOLATILE CONTENT; RB-SR; ZIRCON; METAMORPHISM;
D O I
10.1111/maps.13278
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Apatite and merrillite are the most common phosphate minerals in a wide range of planetary materials and are key accessory phases for in situ age dating, as well as for determination of the volatile abundances and their isotopic composition. Although most lunar and meteoritic samples show at least some evidence of impact metamorphism, relatively little is known about how these two phosphates respond to shock-loading. In this work, we analyzed a set of well-studied lunar highlands samples (Apollo 17 Mg-suite rocks 76535, 76335, 72255, 78235, and 78236), in order of displaying increasing shock deformation stages from S1 to S6. We determined the stage of shock deformation of the rock based on existing plagioclase shock-pressure barometry using optical microscopy, Raman spectroscopy, and SEM-based panchromatic cathodoluminescence (CL) imaging of plagioclase. We then inspected the microtexture of apatite and merrillite through an integrated study of Raman spectroscopy, SEM-CL imaging, and electron backscatter diffraction (EBSD). EBSD analyses revealed that microtextures in apatite and merrillite become progressively more complex and deformed with increasing levels of shock-loading. An early shock-stage fragmentation at S1 and S2 is followed by subgrain formation from S2 onward, showing consistent decrease in subgrain size with increasing level of deformation (up to S5) and finally granularization of grains caused by recrystallization (S6). Starting with 2 degrees-3 degrees of intragrain crystal-plastic deformation in both phosphates at the lowest shock stage, apatite undergoes up to 25 degrees and merrillite up to 30 degrees of crystal-plastic deformation at the highest stage of shock deformation (S5). Merrillite displays lower shock impedance than apatite; hence, it is more deformed at the same level of shock-loading. We suggest that the microtexture of apatite and merrillite visualized by EBSD can be used to evaluate stages of shock deformation and should be taken into account when interpreting in situ geochemically relevant analyses of the phosphates, e.g., age or volatile content, as it has been shown in other accessory minerals that differently shocked domains can yield significantly different ages.
引用
收藏
页码:1262 / 1282
页数:21
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