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Merck
CN

F300

乙酰丙酮铁 III

greener alternative

97%

别名:

2,4-戊二酮 铁(III) 衍生物, 2,4-戊二酮铁(III), Fe(acac)3, 乙酰丙酮铁

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关于此项目

线性分子式:
Fe(C5H7O2)3
化学文摘社编号:
分子量:
353.17
Beilstein:
4157960
EC 号:
MDL编号:
UNSPSC代码:
12352103
PubChem化学物质编号:
NACRES:
NA.23
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质量水平

方案

97%

表单

powder

反应适用性

core: iron
reagent type: catalyst

环保替代产品特性

Catalysis
Learn more about the Principles of Green Chemistry.

sustainability

Greener Alternative Product

mp

180-182 °C (dec.) (lit.)

密度

5.24 g/mL at 25 °C (lit.)

环保替代产品分类

SMILES字符串

CC(=O)\C=C(\C)O[Fe](O\C(C)=C/C(C)=O)O\C(C)=C/C(C)=O

InChI

1S/3C5H8O2.Fe/c3*1-4(6)3-5(2)7;/h3*3,6H,1-2H3;/q;;;+3/p-3/b3*4-3-;

InChI key

AQBLLJNPHDIAPN-LNTINUHCSA-K

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应用

用于高结晶(Zn,Fe)Fe2O4 薄膜的 MOCVD 前体和这些薄膜的磁性测量。
Iron(III) acetylacetonate can be used as:
  • Precursor for the synthesis of magnetite nanoparticles via solvothermal method with applications in medical field, nanocomposite preparations, and thin film depositions and biomedical applications.
  • Precursor in the synthesis of iron oxide nanoparticles like (magnetite, maghemite and wustite via thermal decomposition method.
  • These nanoparticles have applications in magnetic materials, drug delivery, biosensing and as catalysts.
  • Catalyst or a precursor for supported catalysts in oxidation and polymerization reactions, particularly in the development of advanced catalytic materials.

特点和优势

Iron(III) acetylacetonate (97%) has diverse applications in catalysis, nanoparticle synthesis, pigment production, research, and electrochemical devices. The purity, concentration, and significantly influence its performance and effectiveness in these applications.

象形图

CorrosionExclamation mark

警示用语:

Danger

危险分类

Acute Tox. 4 Dermal - Acute Tox. 4 Inhalation - Acute Tox. 4 Oral - Eye Dam. 1

储存分类代码

11 - Combustible Solids

WGK

WGK 3

闪点(°F)

Not applicable

闪点(°C)

Not applicable

个人防护装备

dust mask type N95 (US), Eyeshields, Gloves


历史批次信息供参考:

分析证书(COA)

Lot/Batch Number

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Lukáš Pečinka et al.
Rapid communications in mass spectrometry : RCM, 34(11), e8749-e8749 (2020-02-13)
Gold-iron bimetallic materials have applications in many fields, especially in nanotechnology and biomedicine. The chemistry of iron-doped gold clusters is still not fully understood but opens up the possibility of developing new materials, e.g. of gold cages doped with iron
Ruth Rodríguez-Ramos et al.
Chemosphere, 236, 124377-124377 (2019-09-25)
In this study, the application of different nanomaterials as dispersants in matrix solid phase dispersion has been evaluated for the extraction of fifteen phthalates from different environmental samples prior to their separation and quantification by ultra-high performance liquid chromatography coupled
Tingting Li et al.
Nanoscale, 7(9), 4171-4178 (2015-02-12)
The excellent electrochemical performance of greigite (Fe3S4) coupled with its vast abundance and low toxicity make it a good prospect as an anode material for lithium ion batteries (LIBs). In this research, a simple and feasible approach for producing pure
Roland Schoch et al.
Chemphyschem : a European journal of chemical physics and physical chemistry, 15(17), 3768-3775 (2014-09-13)
A new iron-based catalyst for carbon monoxide oxidation, as a potential substitute for precious-metal systems, has been prepared by using a facile impregnation method with iron tris-acetylacetonate as a precursor on γ-Al2 O3 . Light-off and full conversion temperatures as
Kosuke Suzuki et al.
Dalton transactions (Cambridge, England : 2003), 44(32), 14220-14226 (2015-05-23)
Structurally well-defined hetero-pentanuclear manganese-oxide clusters {MMn4} were successfully synthesized in TBA7Hn[MMn4(OH)2(A-α-SiW9O34)2]·2H2O·C2H4Cl2 (, M = Fe(iii), Co(ii), Ni(ii), Cu(ii), Ga(iii)) by sequential introduction of metal cations into the trivacant lacunary polyoxometalates (POMs). The pentanuclear manganese-oxide cluster {Mn5} showed a small spin

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Prof. Randal Lee discusses iron oxide magnetic nanospheres and nanocubes design considerations for biosensing applications.

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