Itaconic anhydride functionalized cyanoethyl cellulose with crosslinked structure enabled improved dielectric properties

Author:

Cheng Sen123,Wang Xinyu123,Yang Rui123,Wang Jiabao123,Lu Chunhua123,Guo Kai24ORCID,Zhu Ning24ORCID,Hu Xin123ORCID

Affiliation:

1. College of Materials Science and Engineering Nanjing Tech University Nanjing China

2. State Key Laboratory of Materials‐Oriented Chemical Engineering Nanjing Tech University Nanjing China

3. Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM) Nanjing China

4. College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University Nanjing Jiangsu China

Abstract

AbstractAs a type of cellulose ether, cyanoethyl cellulose (CEC) is considered to be a promising candidate for polymer dielectrics due to its sustainable nature and high dielectric constant induced by the cyano groups. However, the relatively high conduction loss of CEC arising from the charge motion across the polymer degrades its dielectric properties. In this work, we designed and synthesized an all‐organic polymer composite of CEC/itaconic anhydride (ITA) to improve dielectric properties. The CEC matrix was graft functionalized by ITA via an esterification reaction between the anhydride groups of ITA and hydroxyl groups of CEC. Meanwhile, crosslinking structure was also established in the composite by the generation of diester. Significantly improved dielectric constant (εr), elevated breakdown strength (Eb), restrained dielectric loss (tan δ) and decreased conductivity (σ) were observed in the composites compared with unmodified CEC. The εr increased from 17 for pure CEC to 32 for CEC/ITA at 1 kHz, and Eb also soared from 145 MV m−1 for CEC to 226 MV m−1 for the composite. The tan δ reduced from 0.24 for pure CEC to about 0.05 for the composite at 100 Hz. This should be attributed to the molecule trapping centers arising from the high electron affinity ITA and the formation of crosslinked networks as well as hydrogen bonding, which impeded the electric conduction. It also provided additional advantages of better dielectric properties for the CEC/ITA composites than pure CEC at high temperatures, which may offer inspiration for the design and preparation of bio‐based dielectrics for high temperatures. © 2024 Society of Chemical Industry.

Funder

National Natural Science Foundation of China

Sinopec Ministry of Science and Technology Basic Prospective Research Project

Publisher

Wiley

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