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Copper(I) sulfide - powder, −325 mesh, high purity , CAS No.22205-45-4

    Grade & Purity:
  • powder,−325 mesh
In stock
Item Number
C432344
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SKU Size
Availability
Price Qty
C432344-250g
250g
Available within 8-12 weeks(?)
Production requires sourcing of materials. We appreciate your patience and understanding.
$699.90

Basic Description

Synonyms Chromium Nitride (Cr2N) Sputtering Targets | EINECS 244-842-9 | DTXSID0041804 | Chalcocite | Dicopper sulphide | UNII-349M3C1RS1 | Copper(I) sulfide, powder, -325 mesh | Copper(I) sulfide | Copper(I) sulfide, anhydrous, powder, 99.99% trace metals basis |
Specifications & Purity powder,−325 mesh
Product Description

Copper sulfide shows metal-like electrical conductivity, chemical-sensing capability and suitable characteristics for absorption of solar energy. Cu63 NMR, X ray photoelectron spectroscopy,2 copper sulfide CuS was studied in detail. Copper sulfide is a monovalent and oxidation state was determined to be 2.2


Other Notes

may contain a slight excess of S

Names and Identifiers

Isomeric SMILES [SH-].[Cu].[Cu+]
WGK Germany 3
RTECS GL8910000
PubChem CID 62755
Molecular Weight 159.16

Certificates(CoA,COO,BSE/TSE and Analysis Chart)

C of A & Other Certificates(BSE/TSE, COO):
Analytical Chart:

Chemical and Physical Properties

Melt Point(°C) ca 1100°
Molecular Weight 160.170 g/mol
XLogP3
Hydrogen Bond Donor Count 1
Hydrogen Bond Acceptor Count 1
Rotatable Bond Count 0
Exact Mass 158.839 Da
Monoisotopic Mass 158.839 Da
Topological Polar Surface Area 1.000 Ų
Heavy Atom Count 3
Formal Charge 0
Complexity 2.800
Isotope Atom Count 0
Defined Atom Stereocenter Count 0
Undefined Atom Stereocenter Count 0
Defined Bond Stereocenter Count 0
Undefined Bond Stereocenter Count 0
The total count of all stereochemical bonds 0
Covalently-Bonded Unit Count 3

Citations of This Product

1. Yifan Chen, Jinze Wang, Youran Hong, Yusi Yang, Lulu Tan, Nan Li, Can Ma, Jiangwei Wang, Xiulin Fan, Yujie Zhu.  (2023)  Uncovering the untapped potential of copper(I) sulphide toward lithium-ion storage under ultra-low temperatures.  Journal of Materials Chemistry A,  11  (12): (6168-6180). 
2. Ying Wu, Danying Xing, Linna Zhang, Hualiang Suo, Xiaodan Zhao.  (2022)  Application of a novel heterogeneous sulfite activation with copper(I) sulfide (Cu2S) for efficient iohexol abatement.  RSC Advances,  12  (13): (8009-8018). 
3. Yang Wang, Yuqiang Fang, Yunzhen Cao, Fuqiang Huang.  (2022)  Two Nonlinear Optical Thiophosphates Cu5Hg0.5P2S8 and AgHg3PS6 Activated by Their Tetrahedra-Stacking Architecture.  INORGANIC CHEMISTRY,  61  (3): (1620–1626). 
4. Yisheng Zhang, Hongbo Zhao, Yanjun Zhang, Hongwei Liu, Huaqun Yin, Jiushuai Deng, Guanzhou Qiu.  (2020)  Interaction mechanism between marmatite and chalcocite in acidic (microbial) environments.  HYDROMETALLURGY,  191  (105217). 
5. Lingshuai Kong, Guodong Fang, Yufeng Chen, Meng Xie, Feng Zhu, Long Ma, Dongmei Zhou, Jinhua Zhan.  (2019)  Efficient activation of persulfate decomposition by Cu2FeSnS4 nanomaterial for bisphenol A degradation: Kinetics, performance and mechanism studies.  APPLIED CATALYSIS B-ENVIRONMENTAL,  253  (278). 
6. Zhihao Lu, Xiangwei Liao, Chenglin Zhao, Deli Shang, Haiwei Wang, Chengjun Liu.  (2024)  Feasibility of Electro-Reduction of Metals in Sulfide-Based Copper Removal Slag for Steelmaking.  ISIJ INTERNATIONAL,     
7. Sun Hu, You Mengyu, Hou Yanrui, Luo Jun, Rao Mingjun, Han Guihong, Li Guanghui.  (2024)  Molybdates Formation Pathways and Their Roles on Thermal Oxidation of Molybdenite Concentrates.  METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE,  55  (6): (5221-5234). 

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