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Merck
CN

520918

Gold(III) chloride trihydrate

≥99.9% trace metals basis

Synonym(s):

Hydrogen tetrachloroaurate(III), Tetrachloroauric(III) acid

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About This Item

Linear Formula:
HAuCl4 · 3H2O
CAS Number:
Molecular Weight:
393.83
NACRES:
NA.23
PubChem Substance ID:
UNSPSC Code:
12352302
EC Number:
240-948-4
MDL number:
Assay:
≥99.9% trace metals basis
Form:
crystals and lumps
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Quality Level

assay

≥99.9% trace metals basis

form

crystals and lumps

composition

Au, 48.5-50.25%

reaction suitability

core: gold

packaging

glass bottle of 1 g, glass bottle of 25 g, glass bottle of 5 g

impurities

≤1000.0 ppm Trace Metal Analysis

application(s)

PEM fuel cells
homogeneous catalyst
material synthesis precursor

SMILES string

Cl[H].[H]O[H].[H]O[H].[H]O[H].Cl[Au](Cl)Cl

InChI

1S/Au.4ClH.3H2O/h;4*1H;3*1H2/q+3;;;;;;;/p-3

InChI key

XYYVDQWGDNRQDA-UHFFFAOYSA-K

General description

Gold(III) chloride trihydrate also known as chloroauric acid or auric chloride comes with orange colored crystals or crystal with chunks having a purity of >=99.9% based on trace metals analysis. Gold(III) chloride is a strong oxidizing agent and it finds applications in catalysis, nanotechnology, electroplating, medicine, surface chemistry, glass coloring etc.

Application

Gold(III) chloride trihydrate is a chemical catalyst, often employed in the synthesis of organic compounds. It is used as a catalyst in oxidation reactions, such as the synthesis of vinyl ethers and esters.[1] Gold(III) chloride trihydrate can be used as a precursor for the synthesis of gold nanoparticles, which find applications in fields such as medicine (for targeted drug delivery and imaging), electronics (for conductive inks and sensors), and optics (for surface-enhanced Raman spectroscopy). [2,3] Gold(III) chloride trihydrate is also used in surface chemistry studies, particularly in the modification of surfaces for specific applications, such as in biosensors and fuel cells.

Features and Benefits

  1. Tested with ICP-Mass for confirming the requirements of purity and trace metal analysis ( =< 1000.0 ppm).
  2. Low insoluble matter (=< 0.1 %) of the product and high purity is very reliable for R&D applications
  3. Gold % is in the range of 48.50 - 50.25 %


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Danger

Hazard Classifications

Acute Tox. 4 Oral - Aquatic Chronic 2 - Eye Dam. 1 - Met. Corr. 1 - Skin Corr. 1B - STOT RE 2 Oral

target_organs

Kidney

flash_point_f

Not applicable

flash_point_c

Not applicable

ppe

Eyeshields, Faceshields, Gloves, type P3 (EN 143) respirator cartridges

Storage Class

8A - Combustible corrosive hazardous materials



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Articles

纳米颗粒的溶剂热合成:从纳米电路、纳米光学电路到纳米磁学和生物技术应用。

Solvothermal synthesis of nanoparticles: applications from nanocircuits and nano-optical circuits to nanomagnetics and biotech.

Plasmonic nanoparticles have unique optical properties that can be tailored to suit a variety of applications in the biotechnology1–8 and electronics9–16 industries.

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Rama Ranjan Bhattacharjee et al.
The journal of physical chemistry. B, 110(13), 6768-6775 (2006-03-31)
Thermoresponsive gold nanoparticles (GNPs) have been prepared by the borohydride reduction of gold salt in the presence of water-soluble polymer, poly(vinyl methyl ether) (PVME). The PVME-coated GNPs (PVME-GNPs) have been assembled into large aggregates in the presence of polyelectrolytes, viz.
Chih-Yuan Chen et al.
Analytical chemistry, 86(24), 11942-11945 (2014-11-25)
Localized surface plasmon resonance (LSPR) represents a sensitive and versatile method for detection of biomolecules in a label-free fashion, but identification of bound analytes can be challenging with LSPR alone, especially for samples in a complex medium. We report the
Yushan Zhang et al.
Bioconjugate chemistry, 30(6), 1724-1733 (2019-05-09)
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Global Trade Item Number

SKUGTIN
520918-25G04061835521401
520918-1G04061835508662
520918-5G04061835563289