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Occurrence, Structure and Mineral Phases of Nanoparticles in an Anthrosol

Occurrence, Structure and Mineral Phases of Nanoparticles in an Anthrosol
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摘要 Soils contain various kinds of crystalline to amorphous solid particles with at least one dimension in the nanoscale (〈 100 nm). These nanoparticles contribute greatly to dynamic soil processes such as soil genesis, trace element cycling, contaminant transport, and chemical reaction. The nano-sized fraction of an Anthrosol was obtained to determine the occurrence, chemical composition, structure, and mineral phases of nanoparticles using high-resolution transmission electron microscopy (HRTEM) equipped with an energy-dispersive X-ray spectroscopy. Selected area electron diffraction or the fast Fourier transform of high-resolution images was used in structural characterization of the nanoparticles with HRTEM. Two nanoscale mineral types, i.e., mineral nanoparticles and nanomi- nerals, were observed in the Anthrosol. Mineral nanoparticles in soil included well crystalline aluminumsilicate nanosheets, nanorods, and nanoparticles. Nanosheets with a length of 120-150 nm and a width of about 10-20 nm were identified as chlorite/vermiculite series. The presence of clear lattice fringe spacing in HRTEM image of nanoparticles indicated that mineral nanoparticles had a relatively good crystallinity. The nanomineral ferrihydrite also existed in the Anthrosol. The HRTEM images and the particle size distribution histogram suggested that these ferrihydrite nanoparticles were quite homogeneous, and had a narrow size distribution range (1-7 nm) with a mean diameter of 3.6 4- 1.6 nm. Our HRTEM observation indicated that mineral nanoparticles and nanominerals were common and widely distributed in Anthrosols. HRTEM and selected area diffraction or lattice fringe spacing characterization provided further proofs to the structure of nanoparticles formed in soil. Soils contain various kinds of crystalline to amorphous solid particles with at least one dimension in the nanoscale (<100nm). These nanoparticles contribute greatly to dynamic soil processes such as soil genesis, trace element cycling, contaminant transport, and chemical reaction. The nano-sized fraction of an Anthrosol was obtained to determine the occurrence, chemical composition, structure, and mineral phases of nanoparticles using high-resolution transmission electron microscopy (HRTEM) equipped with an energy-dispersive X-ray spectroscopy. Selected area electron diffraction or the fast Fourier transform of high-resolution images was used in structural characterization of the nanoparticles with HRTEM. Two nanoscale mineral types, i.e., mineral nanoparticles and nanominerals, were observed in the Anthrosol. Mineral nanoparticles in soil included well crystalline aluminumsilicate nanosheets, nanorods, and nanoparticles. Nanosheets with a length of 120-150 nm and a width of about 10-20 nm were identified as chlorite/vermiculite series. The presence of clear lattice fringe spacing in HRTEM image of nanoparticles indicated that mineral nanoparticles had a relatively good crystallinity. The nanomineral ferrihydrite also existed in the Anthrosol. The HRTEM images and the particle size distribution histogram suggested that these ferrihydrite nanoparticles were quite homogeneous, and had a narrow size distribution range (1-7 nm) with a mean diameter of 3.6±1.6 nm. Our HRTEM observation indicated that mineral nanoparticles and nanominerals were common and widely distributed in Anthrosols. HRTEM and selected area diffraction or lattice fringe spacing characterization provided further proofs to the structure of nanoparticles formed in soil.<Keywords>energy-dispersive X-ray spectroscopy (EDS), ferrihydrite, high-resolution transmission electron microscopy (HRTEM), nanominerals, nano-sized
出处 《Pedosphere》 SCIE CAS CSCD 2013年第3期273-280,共8页 土壤圈(英文版)
基金 Supported by the National Natural Science Foundation of China (No. 40971131) the Ph.D. Program Foundation of Ministry of Education of China (No. 20090101110088)
关键词 energy-dispersive X-ray spectroscopy (EDS) FERRIHYDRITE high-resolution transmission electron microscopy (HRTEM) nanominerals nano-sized fraction 纳米粒子 矿物类型 结构表征 高分辨透射电子显微镜 高分辨率图像 选区电子衍射 快速傅立叶变换 电子显微镜观察
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参考文献22

  • 1Baalousha, M. and Lead, J. R. 2007. Size fractionation and cha-racterization of natural aquatic colloids and nanoparticles. Sci. Total Environ. 386: 93-102.
  • 2Chinese Society of Soil Science (CSSS). 1984. Standard Met-hods of Soil and Agrochemistry Analysis (in Chinese). Sci-ence Press, Beijing.
  • 3Filip, J., Zboril, R, Schneeweiss, 0., Zeman, J., Cernik, M., Kvapil, P. and Otyepka, M. 2007. Environmental applica-tions of chemically pure natural ferrihydrite. Environ. Sci. Technol. 41: 4367-4374.
  • 4Hasselliiv, M. and von der Kammer, F. 2008. Iron oxides as geo-chemical nanovectors for metal transport in soil-river sys-tems. Elements. 4: 401-406.
  • 5Hochella, M. F. Jr. 2008. Nanogeoscience: from origins to cutting-edge applications. Elements. 4: 373-379.
  • 6Hochella, M. F. Jr., Lower, S. K., Maurice, P. A., Penn, R L., Sahai, N., Sparks, D. L. and Twining, B. S. 2008. Nanominerals, mineral nanoparticles, and earth sys-tems. Science. 319: 1631-1635.
  • 7Hochella, M. F. Jr., Moore, J. N., Putnis, C. V., Putnis, A., Kasama, T. and Eberl, D. D. 2005. Direct observation of heavy metal-mineral association from the Clark Fork River Superfund Complex: implications for metal transport and bioavailability. Geochim. Cosmochim. Acta. 69: 1651-1663.
  • 8Lahann, J. 2008. Environmental nanotechnology: nanomateri-als clean up. Nat. Nanotechnol. 3: 320-321.
  • 9Lead, J. R. and Wilkinson, K. J. 2006. Aquatic colloids and nanoparticles: current knowledge and future trends. Envi-ron. Chem. 3: 159-171. Jones, A. M., Collins, R N., Rose, J. and Waite, T. D. 2009.
  • 10The effect of silica and natural organic matter on the Fe(II)-catalysed transformation and reactivity of Fe (III) minerals. Geochim. Cosmochim. Acta. 73: 4409-4422.

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