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MilliporeSigma

403342

Copper(I) acetate

97%

Synonym(s):

Copper monoacetate, Cuprous acetate

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$40.88

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$133.45

$40.88

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About This Item

Linear Formula:
CuCO2CH3
CAS Number:
Molecular Weight:
122.59
NACRES:
NA.23
PubChem Substance ID:
UNSPSC Code:
12352103
EC Number:
209-938-7
MDL number:

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Product Name

Copper(I) acetate, 97%

Quality Level

InChI key

RFKZUAOAYVHBOY-UHFFFAOYSA-M

InChI

1S/C2H4O2.Cu/c1-2(3)4;/h1H3,(H,3,4);/q;+1/p-1

SMILES string

CC(=O)O[Cu]

assay

97%

form

powder and chunks

reaction suitability

core: copper
reagent type: catalyst

mp

250 °C (dec.) (lit.)

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This Item
399973337323215554
form

powder and chunks

form

crystals and lumps, solid

form

powder or chunks, solid

form

powder and chunks

assay

97%

assay

99.99% trace metals basis

assay

-

assay

99.999% trace metals basis

mp

250 °C (dec.) (lit.)

mp

298 °C (dec.) (lit.)

mp

252 °C (dec.) (lit.)

mp

605 °C (lit.)

reaction suitability

core: copper

reaction suitability

core: cobalt

reaction suitability

core: copper, reagent type: catalyst

reaction suitability

-

Quality Level

200

Quality Level

200

Quality Level

100

Quality Level

200

Application

Copper(II) acetate hydrate can be used as:
  • A copper source in synthesizing CuS@C nanocomposites for sodium-ion battery anodes, delivering 485 mAh/g capacity after 200 cycles.[1]
  • A precursor to synthesize copper oxide thin films through deposition techniques like atomic layer deposition (ALD) and pulsed spray pyrolysis, enabling p-type semiconductor layers for optoelectronic applications.[2]
  • A electrocatalyst precursor for CO2 reduction to ethanol. [3]
  • A Precursor for superhydrophobic coatings via electrochemical deposition.[4]

General description

Copper(II) acetate hydrate is a high-purity (98%), blue crystalline solid widely used as a versatile precursor for copper-based materials. Its hydrate form enhances solubility in aqueous/organic solvents, facilitating solution processing for advanced applications. Recent research emphasizes its role in sustainable energy technologies, catalysis, and functional nanomaterials, aligning with trends in green chemistry and renewable energy.

Storage Class

11 - Combustible Solids

wgk

WGK 3

flash_point_f

Not applicable

flash_point_c

Not applicable

ppe

dust mask type N95 (US), Eyeshields, Gloves


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Room?Temperature Formation of Hollow Cu2O Nanoparticles.
Hung LI, et al.
Advanced Materials, 22.17, 1910-1914 (2010)
Preparation of superhydrophobic films on copper substrate for corrosion protection
Fan, Youhua and Chen, et al.
Surface and Coatings Technology, 244, 1-8 (2014)
Synthesis of delafossite CuAlO 2 p-type semiconductor with a nanoparticle-based Cu (I) acetate-loaded boehmite precursor
Thu TV, et al.
Mat. Res. Bul., 46.11, 1819-1827 (2011)
Jan Lorkowski et al.
Chemistry (Weinheim an der Bergstrasse, Germany), 25(48), 11365-11374 (2019-07-06)
Cyclic (amino)(aryl)carbenes (cAArCs) based on the isoindoline core were successfully generated in situ by α-elimination of 3-alkoxyisoindolines at high temperatures or by deprotonation of isoindol-2-ium chlorides with sodium or copper(I) acetates at low temperatures. 3-Alkoxy-isoindolines 2 a,b-OR (R=Me, Et, iPr) have
You Zhai et al.
Chemphyschem : a European journal of chemical physics and physical chemistry, 17(5), 741-751 (2015-11-04)
Cu2 S/ZnS heterostructured nanorods (HNRs) with uncommon morphologies are achieved through single-pot and multi-batch synthetic strategies. In both cases, Cu2 S NRs form first, which then undergo partial cation exchange and solution-liquid-solid (SLS)-like growth catalyzed by the remaining Cu2 S

Articles

Copper metal deposition processes are an essential tool for depositing interconnects used in microelectronic applications, giving group 11 (coinage metals: Copper, Silver, and Gold) an important place in atomic layer deposition (ALD) process development.

Questions

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  1. How can I determine the shelf life / expiration / retest date of this product?

    1 answer
    1. If this product has an expiration or retest date, it will be shown on the Certificate of Analysis (COA, CofA). If there is no retest or expiration date listed on the product's COA, we do not have suitable stability data to determine a shelf life. For these products, the only date on the COA will be the release date; a retest, expiration, or use-by-date will not be displayed.
      For all products, we recommend handling per defined conditions as printed in our product literature and website product descriptions. We recommend that products should be routinely inspected by customers to ensure they perform as expected.
      For products without retest or expiration dates, our standard warranty of 1 year from the date of shipment is applicable.
      For more information, please refer to the Product Dating Information document: https://www.sigmaaldrich.com/deepweb/assets/sigmaaldrich/marketing/global/documents/418/501/product-dating-information-06-25-mk.pdf

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  2. How is shipping temperature determined? And how is it related to the product storage temperature?

    1 answer
    1. Products may be shipped at a different temperature than the recommended long-term storage temperature. If the product quality is sensitive to short-term exposure to conditions other than the recommended long-term storage, it will be shipped on wet or dry-ice. If the product quality is NOT affected by short-term exposure to conditions other than the recommended long-term storage, it will be shipped at ambient temperature. As shipping routes are configured for minimum transit times, shipping at ambient temperature helps control shipping costs for our customers. For more information, please refer to the Storage and Transport Conditions document: https://www.sigmaaldrich.com/deepweb/assets/sigmaaldrich/marketing/global/documents/316/622/storage-transport-conditions-mk.pdf

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