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CAS:331714-58-0 | 1,3-Benzenedicarbonitrile, 5-formyl- (9CI)

CAS:331714-58-0 | 1,3-Benzenedicarbonitrile, 5-formyl- (9CI)

Molecular Formula:C9H4N2O
Molecular Weight:156.14
Purity:95%
Package:1g 5g 10g
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Product Introduction

Introduction of CAS:331714-58-0 | 1,3-Benzenedicarbonitrile, 5-formyl- (9CI)

 

5-Formylisophthalonitrile is a chemical compound with the molecular formula C9H4N2O . It is used in scientific research, particularly in the fields of organic synthesis, materials science, and pharmaceutical research.

 

Specification of CAS:331714-58-0 | 1,3-Benzenedicarbonitrile, 5-formyl- (9CI)

 

ITEMS

SPECIFICATION

Purity

95%

Density

1.26±0.1 g/cm3(Predicted)

Molecular Weight

156.14

Boiling point

214.5±20.0 °C(Predicted)

 

Research Application of CAS:331714-58-0 | 1,3-Benzenedicarbonitrile, 5-formyl- (9CI)

Electrochemical and Gas Sensing Properties

5-Formylisophthalonitrile has been studied for its electrochemical properties and potential in gas sensing. In research conducted by Ceyhan et al. (2007), a novel compound was synthesized using a derivative of phthalonitrile, demonstrating significant electrochemical behavior and gas sensing properties for volatile organic solvent vapors. This implies potential applications in environmental monitoring and industrial process control (Ceyhan, Altındal, Özkaya, Erbil, & Bekaroğlu, 2007).

Photophysical and Photochemical Properties

Research by Demirbaş et al. (2016) explored the photophysical and photochemical parameters of novel metal-free and metal phthalocyanines derived from phthalonitrile. These compounds, including variants with this compound, showed potential as Type II photosensitizers in photodynamic therapy for cancer, due to their efficient singlet oxygen generation and photodegradation properties (Demirbaş, Pişkin, Bayrak, Ünlüer, Düğdü, Durmuş, & Kantekin, 2016).

Thermostability in Rigid-Rod Networks

Yu et al. (2012) investigated phthalazinone rigid-rod networks with excellent thermostability prepared from phthalonitrile-functional phthalazinones, including this compound derivatives. These networks demonstrated superior thermal properties and long-term thermo-oxidative stabilities, suggesting applications in high-performance materials and engineering (Yu, Liu, Li, Wang, Jian, & Pan, 2012).

Electrophysiological Studies

The work of Terekhov et al. (1996) on the synthesis of octaalkynylphthalocyanines, derived from diiodophthalonitriles (including this compound), provided insights into the electrophysiological properties of these compounds. Their findings are important for understanding the effects of aggregation phenomena on the chemical shifts in NMR spectroscopy, which is crucial in material science and molecular engineering (Terekhov, Nolan, Mcarthur, & Leznoff, 1996).

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