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4361-27-7

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4361-27-7 Usage

Description

2-Propynoic acid, 3-cyclohexylis an organic compound with the molecular formula C9H10O2. It is a derivative of propynoic acid that features a cyclohexyl group. 2-Propynoic acid, 3-cyclohexylis widely used in organic synthesis and research, particularly for the production of pharmaceuticals, polymers, and other industrial chemicals. Its versatility and importance in the synthesis of key molecules and materials make it a valuable asset in the field of chemistry.

Uses

Used in Pharmaceutical Industry:
2-Propynoic acid, 3-cyclohexylis used as an intermediate in the synthesis of various pharmaceuticals. Its unique structure allows for the development of new drugs with potential therapeutic applications.
Used in Polymer Industry:
2-Propynoic acid, 3-cyclohexylis utilized as a monomer or a building block in the production of polymers. Its incorporation into polymer structures can enhance properties such as strength, flexibility, and durability.
Used in Organic Synthesis:
2-Propynoic acid, 3-cyclohexylis used as a reactant in various organic synthesis processes. Its reactivity and functional groups make it suitable for the formation of complex molecules and materials.
Used in Research:
2-Propynoic acid, 3-cyclohexylserves as a valuable research tool for chemists studying the properties and reactions of propynoic acid derivatives and cyclohexyl-containing compounds. It can provide insights into the development of new synthetic methods and applications.

Check Digit Verification of cas no

The CAS Registry Mumber 4361-27-7 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 4,3,6 and 1 respectively; the second part has 2 digits, 2 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 4361-27:
(6*4)+(5*3)+(4*6)+(3*1)+(2*2)+(1*7)=77
77 % 10 = 7
So 4361-27-7 is a valid CAS Registry Number.

4361-27-7SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 17, 2017

Revision Date: Aug 17, 2017

1.Identification

1.1 GHS Product identifier

Product name 3-cyclohexylprop-2-ynoic acid

1.2 Other means of identification

Product number -
Other names 2-Propynoic acid,3-cyclohexyl

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:4361-27-7 SDS

4361-27-7Relevant articles and documents

CO2-Folded Single-Chain Nanoparticles as Recyclable, Improved Carboxylase Mimics

Chen, Liang,Yan, Qiang,Zeng, Rongjin

supporting information, p. 18418 - 18422 (2020/08/21)

Emulating the function of natural carboxylases to convert CO2 under atmospheric condition is a great challenge. Herein we report a class of CO2-folded single-chain nanoparticles (SCNPs) that can function as recyclable, function-intensified carboxylase mimics. Lewis pair polymers containing bulky Lewis acidic and basic groups as the precursor, can bind CO2 to drive an intramolecular folding into SCNPs, in which CO2 as the folded nodes can form gas-bridged bonds. Such bridging linkages highly activate CO2, which endows the SCNPs with extraordinary catalytic ability that can not only catalyze CO2-insertion of C(sp3)-H for imitating the natural enzyme's function, it can also act on non-natural carboxylation pathways for C(sp2 and sp)-H substrates. The nanocatalysts are of highly catalytic efficiency and recyclability, and can work at room temperature and near ambient CO2 condition, inspiring a new approach to sustainable C1 utilization.

Core-shell metal-organic frameworks and metal functionalization to access highest efficiency in catalytic carboxylation

Gong, Yanyan,Yuan, Ye,Chen, Cheng,Zhang, Pan,Wang, Jichao,Zhuiykov, Serge,Chaemchuen, Somboon,Verpoort, Francis

, p. 106 - 115 (2019/02/14)

A core-shell metal-organic frameworks (MOF@MOF) based on the Zr-MOFs assembly from core-structure UiO-66 combined with shell-structure UiO-67-BPY were explored. The synthesized materials were characterized via XRD, FTIR, SEM, TEM, and surface area analysis, etc. indicating the presence of a core-shell structure of UiO-66@UiO-67-BPY. Furthermore, incorporation of the bipyridinic (BPY) group in the linker used to construct the shell layer (UiO-67-BPY) could coordinate with active metal species and thus create an advantage for site-selective metal incorporation in the core-shell structure. Silver (Ag) was selected for the selective metal incorporation and an excellent Ag-dispersion via coordination with the bipyridinic groups in the UiO-67-BPY layer of the core-shell material was obtained. The synthesized material (UiO-66@UiO-67-BPY-Ag) was successfully applied as a heterogeneous catalyst for the CO2 fixation via carboxylation of terminal alkynes. The catalytic material showed excellent yields using at a low Ag-loading under mild reaction condition (50 °C, 1 bar). Moreover, the catalyst can be recycled for at least 5 times maintaining a stable catalytic performance. Interestingly, the high catalytic activity of the synthesized material demonstrated clearly the beneficial advantage of the metalated core-shell structure over the reported routes to synthesize silver catalysts such as encapsulated Ag nanoparticles (AgNP@MOF) or Ag-bidentately coordinated on traditional MOFs applying the same reaction model.

Sequential protocol for C(sp)–H carboxylation with CO2: KOtBu-catalyzed C(sp)–H silylation and KOtBu-mediated carboxylation

Yu, Bo,Yang, Peng,Gao, Xiang,Yang, Zhenzhen,Zhao, Yanfei,Zhang, Hongye,Liu, Zhimin

, p. 449 - 456 (2018/02/06)

CO2 incorporation into C–H bonds is an important and interesting topic. Herein a sequential protocol for C(sp)–H carboxylation by employing a metal-free C–H activation/catalytic silylation reaction in conjunction with KOtBu-mediated carboxylation with CO2 was established, in which KOtBu catalyzes silylation of terminal alkynes to form alkynylsilanes at low temperature, and simultaneously mediates carboxylation of the alkynesilanes with atmospheric CO2. Importantly, the carboxylation further promotes the silylation, which makes the whole reaction proceed very rapidly. Moreover, this methodology is simple and scalable, which is characterized by short reaction time, wide substrate scope, excellent functional-group tolerance and mild reaction conditions, affording a range of corresponding propiolic acid products in excellent yields in most cases. In addition, it also allows for a convenient 13C-labeling through the use of 13CO2.

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