QA-C8
Product Description
QA-C8, or 5,12-Dioctylquinolino[2,3-b]acridine-7,14(5H,12H)-dione, is a carefully designed organic compound that offers a unique set of properties beneficial for various technological applications. Its octyl side chains enhance its solubility in common organic solvents, making it easier to process and integrate into devices. This compound is particularly noted for its ability to absorb and emit light efficiently, which is crucial for applications in optoelectronics, such as organic light-emitting diodes (OLEDs) and photovoltaic cells. Its electronic structure also suggests potential use in electronic devices as a charge transport material, contributing to improved device performance. Furthermore, its chemical stability and thermal resistance make it a reliable component in devices subjected to harsh operating conditions.
Application
In practical applications, QA-C8 is utilized in the fabrication of high-performance OLEDs and photovoltaic devices, where its light absorption and emission properties are leveraged to enhance device efficiency and color accuracy. Its role extends to the development of electronic devices that require stable and efficient charge transport, such as transistors and sensors. Additionally, its unique properties make it a promising candidate for use in the development of new materials and devices aimed at advancing the field of optoelectronics. Lastly, its compatibility with a wide range of processing techniques underscores its versatility in various applications within the electronics industry.
Articles:
- Thiocarbonyl quinacridone-based “turn on” fluorescent chemodosimeters for highly sensitive and selective detection of Hg(II)
Publication Date: Available online 12 November 2011
Yi Qu, Jiabao Yang, Jianli Hua, Lei Zou
https://doi.org/10.1016/j.snb.2011.10.087
- Organic field-effect transistors fabricated with N,N’-substituted dialkyl-1,3,8,10-tetramethylquinacridone compounds
Publication Date: SEPTEMBER 22 2009
Zong-Xiang Xu; Hai-Feng Xiang; V. A. L. Roy; Stephen Sin-Yin Chui; Yue Wang; P. T. Lai; Chi-Ming Che