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400866

Sigma-Aldrich

氧化铁(II)

−10 mesh, ≥99.6% trace metals basis

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别名:
一氧化铁, 氧化亚铁
经验公式(希尔记法):
FeO
CAS号:
分子量:
71.84
EC 号:
MDL编号:
PubChem化学物质编号:
NACRES:
NA.23

质量水平

检测方案

≥99.6% trace metals basis

形式

powder

杂质

≤5% free iron

粒径

−10 mesh

密度

5.7 g/mL at 25 °C (lit.)

application(s)

battery manufacturing

SMILES string

O=[Fe]

InChI

1S/Fe.O

InChI key

UQSXHKLRYXJYBZ-UHFFFAOYSA-N

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相关类别

一般描述

氧化铁 (II) 又称氧化亚铁或浮氏体,是一种化学式为 FeO 的化合物。它是一种精细的灰黑色粉末,粒径为 10 目。氧化铁 (II) 采用立方岩盐结构,通常作为非化学计量的缺铁化合物存在,其中一些铁被氧化为 3+ 氧化态。氧化铁 (II) 在室温下具有货架稳定性,但在 575 °C 时与铁金属和 Fe3O4 不成比例。它的主要用途之一是作为颜料、油墨和陶瓷中的黑色颜料。
氧化铁纳米颗粒具有独特的属性,如超顺磁性、易于表面修饰和生物相容性。它们被应用于光催化、磁存储介质、靶向药物输送和气体传感等领域。

储存分类代码

13 - Non Combustible Solids

WGK

nwg

闪点(°F)

Not applicable

闪点(°C)

Not applicable


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Biosynthesized FeO nanoparticles coated carbon anode for improving the performance of microbial fuel cell
M. Harshiny, et al.
International Journal of Hydrogen Energy, 42, 26488-26495 (2017)
Zhiying Zhang et al.
Journal of physics. Condensed matter : an Institute of Physics journal, 24(21), 215404-215404 (2012-05-12)
The elastic and anelastic properties of three different samples of Fe(x)O have been determined in the frequency range 0.1-2 MHz by resonant ultrasound spectroscopy and in the range 0.1-50 Hz by dynamic mechanical analysis in order to characterize ferroelastic aspects
M Mahmoudi et al.
Journal of colloid and interface science, 336(2), 510-518 (2009-05-30)
The performance of nanoparticles for biomedical applications is often assessed by their narrow size distribution, suitable magnetic saturation and low toxicity effects. In this work, superparamagnetic iron oxide nanoparticles (SPIONs) with different size, shape and saturation magnetization levels were synthesized
Fe3O4 core/layered double hydroxide shell nanocomposite: versatile magnetic matrix for anionic functional materials.
Liang Li et al.
Angewandte Chemie (International ed. in English), 48(32), 5888-5892 (2009-07-04)
Antony George et al.
ACS applied materials & interfaces, 3(9), 3666-3672 (2011-08-16)
A cost-effective and versatile methodology for bottom-up patterned growth of inorganic and metallic materials on the micro- and nanoscale is presented. Pulsed electrodeposition was employed to deposit arbitrary patterns of Ni, ZnO, and FeO(OH) of high quality, with lateral feature

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