Bismuth (III) neodecanoate - (99.9 %-Bi), ~60% in neodecanoic acid (15-20% Bi), high purity , CAS No.34364-26-6

  • ≥99.9% metals basis
  • 60% in neodecanoic acid (15-20% Bi)
Item Number
B283250
Grouped product items
SKUSizeAvailabilityPrice Qty
B283250-10g
10g
In stock
$9.90
B283250-50g
50g
In stock
$17.90
B283250-250g
250g
In stock
$62.90

Catalysts & Chiral Catalysts

View related series
Catalyzer

Basic Description

SynonymsBismuth trineodecanoate | Neodecanoic acid bismuth salt
Specifications & Purity≥99.9% metals basis, 60% in neodecanoic acid (15-20% Bi)
Storage TempArgon charged
Shipped InNormal
Product Description

Bismuth neodecanoate is mainly used as a catalyst for the synthesis of various polymers ( including polyesters and alkyd resins ). The reason why bismuth can play the role of catalyst is that bismuth has Lewis acid properties, which can accelerate esterification and transesterification reactions. In addition to catalytic applications, bismuth neodecanoate has also been studied for the production of flame retardant materials, taking advantage of the low toxicity of bismuth compared to other heavy metals.


Application:

Bismuth neodecanoate can be used as a catalyst to synthesize:Thermoplastic polyurethanes by reacting polycaprolactone diols, diisocyanates, and diols with anthracene group;Polysiloxanes from hydroxy-terminatedpoly(dimethylsiloxanes) and ethyl silicate.

Names and Identifiers

Molecular Weight 722.71

Certificates

Certificate of Analysis(COA)

Enter Lot Number to search for COA:

Find and download the COA for your product by matching the lot number on the packaging.

15 results found

Lot NumberCertificate TypeDateItem
L2412642Certificate of AnalysisNov 21, 2024 B283250
L2412643Certificate of AnalysisNov 21, 2024 B283250
L2412799Certificate of AnalysisNov 21, 2024 B283250
L2412800Certificate of AnalysisNov 21, 2024 B283250
C2331098Certificate of AnalysisFeb 23, 2023 B283250
C2331099Certificate of AnalysisFeb 23, 2023 B283250
C2331104Certificate of AnalysisFeb 23, 2023 B283250
C23311116Certificate of AnalysisFeb 23, 2023 B283250
C23311117Certificate of AnalysisFeb 23, 2023 B283250
C2331117Certificate of AnalysisFeb 23, 2023 B283250
C2331125Certificate of AnalysisFeb 23, 2023 B283250
C2331129Certificate of AnalysisFeb 23, 2023 B283250
C2407340Certificate of AnalysisFeb 23, 2023 B283250
G2408036Certificate of AnalysisFeb 23, 2023 B283250
J2424022Certificate of AnalysisFeb 23, 2023 B283250

Show more⌵

Chemical and Physical Properties

Sensitivityair sensitive
Refractive Indexn20/D 1.479 (lit.)
Boil Point(°C)300 °C (lit.)

Related Documents

Citations of This Product

1. Yayuan Liu, Fuyue Tian, Jing Hu, Nanying Ning, Bing Yu, Ming Tian.  (2023)  Photochromic Polyurethane Coatings with Cross-Linked Structure and Self-Healing Behavior Based on the FRET Effect.  MACROMOLECULAR RAPID COMMUNICATIONS,  44  (13): (2300097).  [PMID:37165710] [10.1002/marc.202300097]
2. Pengsheng Jing, Jinmei Du, Dagang Miao, Guowei Xiao, Yang Jiang, Changhai Xu.  (2023)  Polyurethanes Based on Dicyclohexylmethane 4,4′-Diisocyanate and N-tert-Butyldiethanolamine for Enhancing the Dyeability of Fiber toward Acid Dye.  ACS Applied Polymer Materials,  (2): (1276–1282).  [PMID:] [10.1021/acsapm.2c01827]
3. Weiwei Fan, Junchao Wang, Zhengjun Li.  (2021)  Antiglare waterborne polyurethane/modified silica nanocomposite with balanced comprehensive properties.  POLYMER TESTING,  99  (107072).  [PMID:] [10.1016/j.polymertesting.2021.107072]
4. Weining Du, Yong Jin, Shuangquan Lai, Liangjie Shi, Wuhou Fan, Jiezhou Pan.  (2018)  Near-infrared light triggered shape memory and self-healable polyurethane/functionalized graphene oxide composites containing diselenide bonds.  POLYMER,  158  (120).  [PMID:] [10.1016/j.polymer.2018.10.059]
5. Ang Li, Xiang Li, Xujiang Yu, Wei Li, Ruyi Zhao, Xiao An, Daxiang Cui, Xiaoyuan Chen, Wanwan Li.  (2017)  Synergistic thermoradiotherapy based on PEGylated Cu3BiS3 ternary semiconductor nanorods with strong absorption in the second near-infrared window.  BIOMATERIALS,  112  (164).  [PMID:27768971] [10.1016/j.biomaterials.2016.10.024]

References

1. Yayuan Liu, Fuyue Tian, Jing Hu, Nanying Ning, Bing Yu, Ming Tian.  (2023)  Photochromic Polyurethane Coatings with Cross-Linked Structure and Self-Healing Behavior Based on the FRET Effect.  MACROMOLECULAR RAPID COMMUNICATIONS,  44  (13): (2300097).  [PMID:37165710] [10.1002/marc.202300097]
2. Pengsheng Jing, Jinmei Du, Dagang Miao, Guowei Xiao, Yang Jiang, Changhai Xu.  (2023)  Polyurethanes Based on Dicyclohexylmethane 4,4′-Diisocyanate and N-tert-Butyldiethanolamine for Enhancing the Dyeability of Fiber toward Acid Dye.  ACS Applied Polymer Materials,  (2): (1276–1282).  [PMID:] [10.1021/acsapm.2c01827]
3. Weiwei Fan, Junchao Wang, Zhengjun Li.  (2021)  Antiglare waterborne polyurethane/modified silica nanocomposite with balanced comprehensive properties.  POLYMER TESTING,  99  (107072).  [PMID:] [10.1016/j.polymertesting.2021.107072]
4. Weining Du, Yong Jin, Shuangquan Lai, Liangjie Shi, Wuhou Fan, Jiezhou Pan.  (2018)  Near-infrared light triggered shape memory and self-healable polyurethane/functionalized graphene oxide composites containing diselenide bonds.  POLYMER,  158  (120).  [PMID:] [10.1016/j.polymer.2018.10.059]
5. Ang Li, Xiang Li, Xujiang Yu, Wei Li, Ruyi Zhao, Xiao An, Daxiang Cui, Xiaoyuan Chen, Wanwan Li.  (2017)  Synergistic thermoradiotherapy based on PEGylated Cu3BiS3 ternary semiconductor nanorods with strong absorption in the second near-infrared window.  BIOMATERIALS,  112  (164).  [PMID:27768971] [10.1016/j.biomaterials.2016.10.024]

Solution Calculators