Mapping magnetic sources at the millimeter to micrometer scale in dunite and serpentinite by high-resolution magnetic microscopy

被引:11
|
作者
Pastore, Zeudia [1 ]
McEnroe, Suzanne A. [1 ]
ter Maat, Geertje W. [1 ]
Oda, Hirokuni [2 ]
Church, Nathan S. [1 ]
Fumagalli, Patrizia [3 ]
机构
[1] Norwegian Univ Sci & Technol NTNU, Dept Geosci & Petr, Trondheim, Norway
[2] Natl Inst Adv Ind Sci & Technol, Geol Survey Japan, Tsukuba, Ibaraki, Japan
[3] Univ Milan, Dept Earth Sci Ardito Desio, Milan, Italy
关键词
Magnetic anomalies; Scanning magnetic microscopy; Serpentinization; Dunite; Forward and inverse modeling; Natural remanent magnetization; REMANENT MAGNETIZATION; LAMELLAR MAGNETISM; HIGH-TEMPERATURE; MAGNETOSTRATIGRAPHY; TITANOMAGNETITES; SYSTEM; FIELD; TI;
D O I
10.1016/j.lithos.2018.09.018
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
Rock samples can have wide range of magnetic properties depending on composition, amount of ferromagnetic minerals, grain sizes and microstructures. Here, we used scanning magnetic microscopy, a highly sensitive and high-resolution magnetometric technique to map remanent magnetic fields over a planar surface of a rock sample. The technique allows for the investigation of discrete magnetic mineral grains, or magnetic textures and structures with submillimeter scale resolution. Here, we present a case-study of magnetic scans of pristine and serpentinized dunite thin sections from the Reinfjord Ultramafic Complex, in northern Norway. The magnetic mineralogy is characterized by electron microprobe, scanning electron- and optical-microscopy, and with rock magnetic methods. In serpentinized samples the magnetic carrier is end-member magnetite occurring as large discrete grains and small grains in micron scale veins. By contrast, the pristine dunite sample contains large Cr-spinel grains with very fine equant exsolutions ranging in composition from ferrichromite to end-member magnetite. Forward and inverse modeling of the magnetic anomalies is used to determine the remanent magnetization directions and intensities of discrete magnetic sources observed in the scanning magnetic microscopy. The fine-scale magnetization of the rock sample is used to investigate the magnetic carriers and the effect of serpentinization on the magnetic properties of the dunite. Modeling shows that the dipolar magnetic anomalies that are mapped by scanning magnetic microscopy are caused by grains with heterogeneous magnetic sources. The intensity of the magnetization and the amount of magnetic minerals are higher in the serpentinized sample than the pristine dunite sample, consistent with the measured bulk magnetic properties. Furthermore, the serpentinized samples show a larger variability in the direction of the magnetization and a stronger heterogeneity with respect to the pristine sample. The ability to rigorously associate components of the bulk magnetic properties to individual mineral phases creates new possibilities for rock magnetic, paleomagnetic, and exploration applications. (C) 2018 Elsevier B.V. All rights reserved.
引用
收藏
页码:174 / 190
页数:17
相关论文
共 50 条
  • [21] ON HIGH-RESOLUTION TRANSMISSION ELECTRON-MICROSCOPY IN AN UNSTABLE MAGNETIC ENVIRONMENT
    LUZZI, DE
    JOURNAL OF ELECTRON MICROSCOPY TECHNIQUE, 1990, 15 (04): : 406 - 413
  • [22] Intracranial Atherosclerosis: From Microscopy to High-Resolution Magnetic Resonance Imaging
    Yang, Wen-jie
    Wong, Ka-sing
    Chen, Xiang-yan
    JOURNAL OF STROKE, 2017, 19 (03) : 249 - +
  • [23] High-Resolution Detection, Localization, and Classification of Multiple Magnetic Dipole Sources
    Ge, Lin
    Han, Qi
    Tong, Xiaojun
    Xue, Qi
    Qiao, Zhi
    IEEE GEOSCIENCE AND REMOTE SENSING LETTERS, 2024, 21 : 1 - 5
  • [24] HIGH-RESOLUTION MAGNETIC-RESONANCE FOR MAPPING BRAIN IRON DEPOSITION
    DRAYER, BP
    BURGER, P
    RIEDERER, S
    DARWIN, R
    BOBMAN, S
    YEATES, A
    HERFKENS, R
    AMERICAN JOURNAL OF NEURORADIOLOGY, 1985, 6 (03) : 466 - 466
  • [25] High-resolution Structural Magnetic Resonance Imaging and Quantitative Susceptibility Mapping
    Yedavalli, Vivek
    DiGiacomo, Phillip
    Tong, Elizabeth
    Zeineh, Michael
    MAGNETIC RESONANCE IMAGING CLINICS OF NORTH AMERICA, 2021, 29 (01) : 13 - 39
  • [26] A high-resolution computational localization method for transcranial magnetic stimulation mapping
    Aonuma, Shinta
    Gomez-Tames, Jose
    Laakso, Ilkka
    Hirata, Akimasa
    Takakura, Tomokazu
    Tamura, Manabu
    Muragaki, Yoshihiro
    NEUROIMAGE, 2018, 172 : 85 - 93
  • [27] High-resolution magnetic imaging by mapping the locally induced anomalous Nernst effect using atomic force microscopy
    Budai, Nico
    Isshiki, Hironari
    Uesugi, Ryota
    Zhu, Zheng
    Higo, Tomoya
    Nakatsuji, Satoru
    Otani, YoshiChika
    APPLIED PHYSICS LETTERS, 2023, 122 (10)
  • [28] Mapping giant magnetic fields around dense solid plasmas by high-resolution magneto-optical microscopy
    Sinha, Jaivardhan
    Mohan, Shyam
    Banerjee, S. S.
    Kahaly, Subhendu
    Kumar, G. Ravindra
    PHYSICAL REVIEW E, 2008, 77 (04):
  • [29] Advanced Magnetic Force Microscopy for High Resolution Magnetic Imaging
    Ranjbar, M.
    Piramanayagam, S. N.
    Sbiaa, R.
    Chong, T. C.
    Okamoto, I.
    NANOSCIENCE AND NANOTECHNOLOGY LETTERS, 2012, 4 (06) : 628 - 633
  • [30] HIGH-RESOLUTION ELECTRON-MICROSCOPY OF MAGNETIC SPECIMENS IN PHILIPS EM 200
    SPRAGUE, JA
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1973, 44 (08): : 1129 - 1129